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== References == <ol> <li><span id="fn:r1">Inniss, L. et al., 2017: The First Global Integrated Marine Assessment: World Ocean Assessment I. United Nations, New York, 1752 pp.</span></li> <li><span id="fn:r2">IPCC, 2013: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1535 pp.</span></li> <li><span id="fn:r3">Pörtner, H.O., 2012: Integrating climate-related stressor effects on marine organisms: unifying principles linking molecule to ecosystem-level changes. Mar. Ecol. Prog. Ser., 470, 273–290, doi:10.3354/meps10123.</span></li> <li><span id="fn:r4">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r5">Rhein, M. et al., 2013: Observations: Ocean. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 255–316.</span></li> <li><span id="fn:r6">Bindoff, N.L. et al., 2013: Detection and Attribution of Climate Change: from Global to Regional. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 867–952.</span></li> <li><span id="fn:r7">Collins, M. et al., 2013: Long-term Climate Change: Projections, Commitments and Irreversibility. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1029–1136.</span></li> <li><span id="fn:r8">Rhein, M. et al., 2013: Observations: Ocean. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 255–316.</span></li> <li><span id="fn:r9">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r10">IPCC, 2013: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1535 pp.</span></li> <li><span id="fn:r11">Roemmich, D., W. John Gould and J. Gilson, 2012: 135 years of global ocean warming between the Challenger expedition and the Argo Programme. Nat. Clim. Change, 2, 425, doi:10.1038/nclimate1461.</span></li> <li><span id="fn:r12">Abraham, J.P. et al., 2013: A review of global ocean temperature observations: Implications for ocean heat content estimates and climate change. Rev. Geophys., 51(3), 450–483, doi:10.1002/rog.20022.</span></li> <li><span id="fn:r13">Abraham, J.P. et al., 2013: A review of global ocean temperature observations: Implications for ocean heat content estimates and climate change. Rev. Geophys., 51(3), 450–483, doi:10.1002/rog.20022.</span></li> <li><span id="fn:r14">Riser, S.C. et al., 2016: Fifteen years of ocean observations with the global Argo array. Nat. Clim. Change, 6, 145, doi:10.1038/nclimate2872.</span></li> <li><span id="fn:r15">Wong, A.P.S. and S.C. Riser, 2011: Profiling Float Observations of the Upper Ocean under Sea Ice off the Wilkes Land Coast of Antarctica. J. Phys. Oceanogr., 41(6), 1102–1115, doi:10.1175/2011JPO4516.1.</span></li> <li><span id="fn:r16">Wong, A.P.S. and S.C. Riser, 2013: Modified shelf water on the continental slope north of Mac Robertson Land, East Antarctica. Geophys. Res. Lett., 40(23), 6186–6190, doi:10.1002/2013gl058125.</span></li> <li><span id="fn:r17">Johnson, G.C., J.M. Lyman and S.G. Purkey, 2015: Informing Deep Argo Array Design Using Argo and Full-Depth Hydrographic Section Data. J. Atmos. Ocean. Tech., 32(11), 2187–2198, doi:10.1175/JTECH-D-15-0139.1.</span></li> <li><span id="fn:r18">Zilberman, N., 2017: Deep Argo – Sampling the total ocean volume. Bull. Am. Meteorol. Soc., State of the Climate in 2016 report, 8(98), 73–74.</span></li> <li><span id="fn:r19">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r20">Roemmich, D. et al., 2015: Unabated planetary warming and its ocean structure since 2006. Nat. Clim. Change, 5, 240, doi:10.1038/nclimate2513,</span></li> <li><span id="fn:r21">Riser, S.C. et al., 2016: Fifteen years of ocean observations with the global Argo array. Nat. Clim. Change, 6, 145, doi:10.1038/nclimate2872.</span></li> <li><span id="fn:r22">Bindoff, N.L. et al., 2013: Detection and Attribution of Climate Change: from Global to Regional. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 867–952.</span></li> <li><span id="fn:r23">Bindoff, N.L. et al., 2013: Detection and Attribution of Climate Change: from Global to Regional. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 867–952.</span></li> <li><span id="fn:r24">Rhein, M. et al., 2013: Observations: Ocean. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 255–316.</span></li> <li><span id="fn:r25">Abraham, J.P. et al., 2013: A review of global ocean temperature observations: Implications for ocean heat content estimates and climate change. Rev. Geophys., 51(3), 450–483, doi:10.1002/rog.20022.</span></li> <li><span id="fn:r26">Durack, P.J., 2015: Ocean Salinity and the Global Water Cycle. Oceanography, 28(1), 20–31.</span></li> <li><span id="fn:r27">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r28">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r29">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r30">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r31">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r32">Ishii, M. et al., 2017: Accuracy of Global Upper Ocean Heat Content Estimation Expected from Present Observational Data Sets. SOLA, 13, 163–167.</span></li> <li><span id="fn:r33">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r34">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r35">Ishii, M. et al., 2017: Accuracy of Global Upper Ocean Heat Content Estimation Expected from Present Observational Data Sets. SOLA, 13, 163–167.</span></li> <li><span id="fn:r36">Gleckler, P.J. et al., 2012: Human-induced global ocean warming on multidecadal timescales. Nat. Clim. Change, 2, 524, doi:10.1038/nclimate1553.</span></li> <li><span id="fn:r37">Gleckler, P.J. et al., 2012: Human-induced global ocean warming on multidecadal timescales. Nat. Clim. Change, 2, 524, doi:10.1038/nclimate1553.</span></li> <li><span id="fn:r38">Cheng, L., J. Abraham, Z. Hausfather and K.E. Trenberth, 2019: How fast are the oceans warming? Science, 363(6423), 128, doi:10.1126/science.aav7619.</span></li> <li><span id="fn:r39">Bindoff, N.L. et al., 2013: Detection and Attribution of Climate Change: from Global to Regional. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 867–952.</span></li> <li><span id="fn:r40">Gleckler, P.J. et al., 2016: Industrial-era global ocean heat uptake doubles in recent decades. Nat. Clim. Change, 6, 394, doi:10.1038/nclimate2915.</span></li> <li><span id="fn:r41">Cheng, L., J. Abraham, Z. Hausfather and K.E. Trenberth, 2019: How fast are the oceans warming? Science, 363(6423), 128, doi:10.1126/science.aav7619.</span></li> <li><span id="fn:r42">Palmer, M., K. Haines, S. Tett and T. Ansell, 2007: Isolating the signal of ocean global warming. Geophys. Res. Lett., 34(23), 1–6.</span></li> <li><span id="fn:r43">Levin, L.A. and M. Sibuet, 2012: Understanding Continental Margin Biodiversity: A New Imperative. Annu. Rev. Mar. Sci., 4(1), 79–112, doi:10.1146/annurev-marine-120709-142714.</span></li> <li><span id="fn:r44">Lyman, J.M. and G.C. Johnson, 2014: Estimating global ocean heat content changes in the upper 1800 m since 1950 and the influence of climatology choice. J. Clim., 27(5), 1945–1957.</span></li> <li><span id="fn:r45">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r46">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r47">Ishii, M. et al., 2017: Accuracy of Global Upper Ocean Heat Content Estimation Expected from Present Observational Data Sets. SOLA, 13, 163–167.</span></li> <li><span id="fn:r48">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r49">Palmer, M., K. Haines, S. Tett and T. Ansell, 2007: Isolating the signal of ocean global warming. Geophys. Res. Lett., 34(23), 1–6.</span></li> <li><span id="fn:r50">Lyman, J.M. and G.C. Johnson, 2014: Estimating global ocean heat content changes in the upper 1800 m since 1950 and the influence of climatology choice. J. Clim., 27(5), 1945–1957.</span></li> <li><span id="fn:r51">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r52">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r53">Ishii, M. et al., 2017: Accuracy of Global Upper Ocean Heat Content Estimation Expected from Present Observational Data Sets. SOLA, 13, 163–167.</span></li> <li><span id="fn:r54">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r55">Good, S.A., M.J. Martin and N.A. Rayner, 2013: EN4: Quality controlled ocean temperature and salinity profiles and monthly objective analyses with uncertainty estimates. J. Geophys. Res-Oceans, 118(12), 6704–6716, doi:10.1002/2013JC009067.</span></li> <li><span id="fn:r56">Cartapanis, O., E.D. Galbraith, D. Bianchi and S. L. Jaccard, 2018: Carbon burial in deep sea sediment and implications for oceanic inventories of carbon and alkalinity over the last glacial cycle. Clim. Past, 14(11), 1819–1850, doi:10.5194/cp-14-1819-2018.</span></li> <li><span id="fn:r57">Meehl, G.A. et al., 2011: Model-based evidence of deep-ocean heat uptake during surface-temperature hiatus periods. Nat. Clim. Change, 1, 360, doi:10.1038/nclimate1229.</span></li> <li><span id="fn:r58">Trenberth, K.E., M. Marquis and S. Zebiak, 2016: The vital need for a climate information system. Nat. Clim. Change, 6, 1057, doi:10.1038/nclimate3170.</span></li> <li><span id="fn:r59">Meehl, G.A. et al., 2011: Model-based evidence of deep-ocean heat uptake during surface-temperature hiatus periods. Nat. Clim. Change, 1, 360, doi:10.1038/nclimate1229.</span></li> <li><span id="fn:r60">England, M.H., J.B. Kajtar and N. Maher, 2015: Robust warming projections despite the recent hiatus. Nat. Clim. Change, 5, 394, doi:10.1038/nclimate2575.</span></li> <li><span id="fn:r61">Knutson, T.R., R. Zhang and L. W. Horowitz, 2016: Prospects for a prolonged slowdown in global warming in the early 21st century. Nat. Commun., 7, 13676, doi:10.1038/ncomms13676.</span></li> <li><span id="fn:r62">Collins, M. et al., 2013: Long-term Climate Change: Projections, Commitments and Irreversibility. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1029–1136.</span></li> <li><span id="fn:r63">Jones, D.C. et al., 2016a: How does subantarctic mode water ventilate the Southern Hemisphere subtropics? J. Geophys. Res-Oceans, 121(9), 6558–6582.</span></li> <li><span id="fn:r64">Frölicher, T.L., K.B. Rodgers, C.A. Stock and W.W.L. Cheung, 2016: Sources of uncertainties in 21st century projections of potential ocean ecosystem stressors. Global Biogeochem. Cy., 30(8), 1224–1243, doi:10.1002/2015gb005338.</span></li> <li><span id="fn:r65">Terada, M. and S. Minobe, 2018: Projected sea level rise, gyre circulation and water mass formation in the western North Pacific: CMIP5 inter-model analysis. Clim. Dyn., 50(11), 4767–4782, doi:10.1007/s00382-017-3902-8.</span></li> <li><span id="fn:r66">Collins, M. et al., 2013: Long-term Climate Change: Projections, Commitments and Irreversibility. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1029–1136.</span></li> <li><span id="fn:r67">Armour, K.C. et al., 2016: Southern Ocean warming delayed by circumpolar upwelling and equatorward transport. Nat. Geosci., 9(7), 549.</span></li> <li><span id="fn:r68">Mitchell, J.F., T. Johns, J.M. Gregory and S. Tett, 1995: Climate response to increasing levels of greenhouse gases and sulphate aerosols. Nature, 376(6540), 501.</span></li> <li><span id="fn:r69">Collins, S., B. Rost and T.A. Rynearson, 2014: Evolutionary potential of marine phytoplankton under ocean acidification. Evol. Appl., 7(1), 140–155, doi:doi:10.1111/eva.12120.</span></li> <li><span id="fn:r70">Durack, P.J., 2015: Ocean Salinity and the Global Water Cycle. Oceanography, 28(1), 20–31.</span></li> <li><span id="fn:r71">Zika, J.D. et al., 2018: Improved estimates of water cycle change from ocean salinity: the key role of ocean warming. Environ. Res. Lett., 13(7), 074036, doi:10.1088/1748-9326/aace42.</span></li> <li><span id="fn:r72">Rhein, M. et al., 2013: Observations: Ocean. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 255–316.</span></li> <li><span id="fn:r73">Held, I.M. and B.J. Soden, 2006: Robust Responses of the Hydrological Cycle to Global Warming. J. Clim., 19(21), 5686–5699, doi:10.1175/JCLI3990.1.</span></li> <li><span id="fn:r74">Collins, M. et al., 2013: Long-term Climate Change: Projections, Commitments and Irreversibility. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1029–1136.</span></li> <li><span id="fn:r75">Purich, A. et al., 2018: Impacts of broad-scale surface freshening of the Southern Ocean in a coupled climate model. J. Clim., 31(7), 2613–2632.</span></li> <li><span id="fn:r76">Jordà, G. et al., 2017: The Mediterranean Sea heat and mass budgets: Estimates, uncertainties and perspectives. Progr. Oceanogr., 156, 174–208, doi:10.1016/j.pocean.2017.07.001.</span></li> <li><span id="fn:r77">Collins, M. et al., 2013: Long-term Climate Change: Projections, Commitments and Irreversibility. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1029–1136.</span></li> <li><span id="fn:r78">Rhein, M. et al., 2013: Observations: Ocean. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 255–316.</span></li> <li><span id="fn:r79">Helland-Hansen, B., 1916: Nogen hydrografiske metoder. Scand. Naturforsker Mote, Kristiana, Oslo.</span></li> <li><span id="fn:r80">Sverdrup, H.U., M.W. Johnson and R.H. Fleming, 1942: The Oceans: Their physics, chemistry, and general biology. Prentice-Hall, New York.</span></li> <li><span id="fn:r81">Roemmich, D. et al., 2015: Unabated planetary warming and its ocean structure since 2006. Nat. Clim. Change, 5, 240, doi:10.1038/nclimate2513,</span></li> <li><span id="fn:r82">Desbruyères, D., E. L. McDonagh, B.A. King and V. Thierry, 2016a: Global and Full-Depth Ocean Temperature Trends during the Early Twenty-First Century from Argo and Repeat Hydrography. J. Clim., 30(6), 1985–1997, doi:10.1175/JCLI-D-16-0396.1.</span></li> <li><span id="fn:r83">Roemmich, D. et al., 2015: Unabated planetary warming and its ocean structure since 2006. Nat. Clim. Change, 5, 240, doi:10.1038/nclimate2513,</span></li> <li><span id="fn:r84">Trenberth, K.E., M. Marquis and S. Zebiak, 2016: The vital need for a climate information system. Nat. Clim. Change, 6, 1057, doi:10.1038/nclimate3170.</span></li> <li><span id="fn:r85">Roemmich, D. et al., 2015: Unabated planetary warming and its ocean structure since 2006. Nat. Clim. Change, 5, 240, doi:10.1038/nclimate2513,</span></li> <li><span id="fn:r86">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r87">Roemmich, D. et al., 2015: Unabated planetary warming and its ocean structure since 2006. Nat. Clim. Change, 5, 240, doi:10.1038/nclimate2513,</span></li> <li><span id="fn:r88">Shi, J.-R., S.-P. Xie and L.D. Talley, 2018: Evolving Relative Importance of the Southern Ocean and North Atlantic in Anthropogenic Ocean Heat Uptake. J. Clim., 31(18), 7459–7479, doi:10.1175/jcli-d-18-0170.1.</span></li> <li><span id="fn:r89">England, M.H. et al., 2014: Recent intensification of wind-driven circulation in the Pacific and the ongoing warming hiatus. Nat. Clim. Change, 4, 222, doi:10.1038/nclimate2106.</span></li> <li><span id="fn:r90">Liu, W., S.-P. Xie and J. Lu, 2016: Tracking ocean heat uptake during the surface warming hiatus. Nat. Commun., 7, 10926, doi:10.1038/ncomms10926.</span></li> <li><span id="fn:r91">Buckley, M.W. and J. Marshall, 2015: Observations, inferences, and mechanisms of the Atlantic Meridional Overturning Circulation: A review. Rev. Geophys., 54(1), 5–63, doi:10.1002/2015RG000493.</span></li> <li><span id="fn:r92">Gao, L., S.R. Rintoul and W. Yu, 2018: Recent wind-driven change in Subantarctic Mode Water and its impact on ocean heat storage. Nat. Clim. Change, 8(1), 58–63, doi:10.1038/s41558-017-0022-8.</span></li> <li><span id="fn:r93">Josey, S.A. et al., 2018: The Recent Atlantic Cold Anomaly: Causes, Consequences, and Related Phenomena. Annu. Rev. Mar. Sci., 10(1), 475–501, doi:10.1146/annurev-marine-121916-063102.</span></li> <li><span id="fn:r94">Smeed, D.A. et al., 2018: The North Atlantic Ocean Is in a State of Reduced Overturning. Geophys. Res. Lett., 45(3), 1527–1533, doi:10.1002/2017gl076350.</span></li> <li><span id="fn:r95">Yashayaev, I. and J.W. Loder, 2017: Further intensification of deep convection in the Labrador Sea in 2016. Geophys. Res. Lett., 44(3), 1429–1438, doi:10.1002/2016gl071668.</span></li> <li><span id="fn:r96">Robson, J., R. Sutton and D. Smith, 2014: Decadal predictions of the cooling and freshening of the North Atlantic in the 1960s and the role of ocean circulation. Clim. Dyn., 42(9), 2353–2365, doi:10.1007/s00382-014-2115-7.</span></li> <li><span id="fn:r97">Yeager, S.G., A.R. Karspeck and G. Danabasoglu, 2015: Predicted slowdown in the rate of Atlantic sea ice loss. Geophys. Res. Lett., 42(24), 10,704–10,713, doi:10.1002/2015gl065364.</span></li> <li><span id="fn:r98">Han, W. et al., 2014: Indian Ocean Decadal Variability: A Review. Bull. Am. Meteorol. Soc., 95(11), 1679–1703, doi:10.1175/BAMS-D-13-00028.1.</span></li> <li><span id="fn:r99">Kay, J.E. et al., 2014: The Community Earth System Model (CESM) Large Ensemble Project: A Community Resource for Studying Climate Change in the Presence of Internal Climate Variability. Bull. Am. Meteorol. Soc., 96(8), 1333–1349, doi:10.1175/BAMS-D-13-00255.1.</span></li> <li><span id="fn:r100">Abraham, J.P. et al., 2013: A review of global ocean temperature observations: Implications for ocean heat content estimates and climate change. Rev. Geophys., 51(3), 450–483, doi:10.1002/rog.20022.</span></li> <li><span id="fn:r101">Ishii, M. et al., 2017: Accuracy of Global Upper Ocean Heat Content Estimation Expected from Present Observational Data Sets. SOLA, 13, 163–167.</span></li> <li><span id="fn:r102">Bindoff, N.L. et al., 2013: Detection and Attribution of Climate Change: from Global to Regional. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 867–952.</span></li> <li><span id="fn:r103">Kay, J.E. et al., 2014: The Community Earth System Model (CESM) Large Ensemble Project: A Community Resource for Studying Climate Change in the Presence of Internal Climate Variability. Bull. Am. Meteorol. Soc., 96(8), 1333–1349, doi:10.1175/BAMS-D-13-00255.1.</span></li> <li><span id="fn:r104">Weller, E. et al., 2016: Multi-model attribution of upper-ocean temperature changes using an isothermal approach. Sci. Rep., 6, 26926, doi:10.1038/srep26926.</span></li> <li><span id="fn:r105">Frajka-Williams, E. et al., 2016: Compensation between meridional flow components of the Atlantic MOC at 26N. Ocean Sci., 12(2), 481–493.</span></li> <li><span id="fn:r106">Purkey, S.G. and G.C. Johnson, 2010: Warming of Global Abyssal and Deep Southern Ocean Waters between the 1990s and 2000s: Contributions to Global Heat and Sea Level Rise Budgets. J. Clim., 23(23), 6336–6351, doi:10.1175/2010JCLI3682.1.</span></li> <li><span id="fn:r107">Desbruyères, D.G. et al., 2016b: Deep and abyssal ocean warming from 35 years of repeat hydrography. Geophys. Res. Lett., 43(19), 10,356–10,365, doi:10.1002/2016gl070413.</span></li> <li><span id="fn:r108">Desbruyères, D.G. et al., 2014: Full-depth temperature trends in the northeastern Atlantic through the early 21st century. Geophys. Res. Lett., 41(22), 7971–7979, doi:10.1002/2014GL061844.</span></li> <li><span id="fn:r109">Caesar, L. et al., 2018: Observed fingerprint of a weakening Atlantic Ocean overturning circulation. Nature, 556(7700), 191–196, doi:10.1038/s41586-018-0006-5.</span></li> <li><span id="fn:r110">Thornalley, D.J.R. et al., 2018: Anomalously weak Labrador Sea convection and Atlantic overturning during the past 150 years. Nature, 556(7700), 227–230, doi:10.1038/s41586-018-0007-4.</span></li> <li><span id="fn:r111">Purkey, S.G., G.C. Johnson and P. Chambers Don, 2014: Relative contributions of ocean mass and deep steric changes to sea level rise between 1993 and 2013. J. Geophys. Res-Oceans, 119(11), 7509–7522, doi:10.1002/2014JC010180.</span></li> <li><span id="fn:r112">Lyman, J.M. and G.C. Johnson, 2014: Estimating global ocean heat content changes in the upper 1800 m since 1950 and the influence of climatology choice. J. Clim., 27(5), 1945–1957.</span></li> <li><span id="fn:r113">Desbruyères, D.G. et al., 2016b: Deep and abyssal ocean warming from 35 years of repeat hydrography. Geophys. Res. Lett., 43(19), 10,356–10,365, doi:10.1002/2016gl070413.</span></li> <li><span id="fn:r114">Talley, L.D. et al., 2016: Changes in Ocean Heat, Carbon Content, and Ventilation: A Review of the First Decade of GO-SHIP Global Repeat Hydrography. Annu. Rev. Mar. Sci., 8(1), 185–215, doi:10.1146/annurev-marine-052915-100829.</span></li> <li><span id="fn:r115">Johnson, G.C., S.G. Purkey, N.V. Zilberman and D. Roemmich, 2019: Deep Argo Quantifies Bottom Water Warming Rates in the Southwest Pacific Basin. Geophys. Res. Lett., 46(5), 2662–2669, doi:10.1029/2018GL081685.</span></li> <li><span id="fn:r116">Johnson, G.C., J.M. Lyman and S.G. Purkey, 2015: Informing Deep Argo Array Design Using Argo and Full-Depth Hydrographic Section Data. J. Atmos. Ocean. Tech., 32(11), 2187–2198, doi:10.1175/JTECH-D-15-0139.1.</span></li> <li><span id="fn:r117">Llovel, W., J.K. Willis, F.W. Landerer and I. Fukumori, 2014: Deep-ocean contribution to sea level and energy budget not detectable over the past decade. Nat. Clim. Change, 4, 1031, doi:10.1038/nclimate2387.</span></li> <li><span id="fn:r118">Heuzé, C., K.J. Heywood, D.P. Stevens and J.K. Ridley, 2015: Changes in global ocean bottom properties and volume transports in CMIP5 models under climate change scenarios. J. Clim., 28(8), 2917–2944.</span></li> <li><span id="fn:r119">Kawase, M., 1987: Establishment of Deep Ocean Circulation Driven by Deep-Water Production. J. Phys. Oceanogr., 17(12), 2294–2317, doi:10.1175/1520-0485(1987)017<2294:EODOCD>2.0.CO;2.</span></li> <li><span id="fn:r120">Purkey, S.G. and G.C. Johnson, 2010: Warming of Global Abyssal and Deep Southern Ocean Waters between the 1990s and 2000s: Contributions to Global Heat and Sea Level Rise Budgets. J. Clim., 23(23), 6336–6351, doi:10.1175/2010JCLI3682.1.</span></li> <li><span id="fn:r121">Purkey, S.G. and G.C. Johnson, 2013: Antarctic Bottom Water Warming and Freshening: Contributions to Sea Level Rise, Ocean Freshwater Budgets, and Global Heat Gain. J. Clim., 26(16), 6105–6122, doi:10.1175/JCLI-D-12-00834.1.</span></li> <li><span id="fn:r122">Menezes, V.V., A.M. Macdonald and C. Schatzman, 2017: Accelerated freshening of Antarctic Bottom Water over the last decade in the Southern Indian Ocean. Sci. Adv., 3(1), e1601426, doi:10.1126/sciadv.1601426.</span></li> <li><span id="fn:r123">Spence, P. et al., 2017: Localized rapid warming of West Antarctic subsurface waters by remote winds. Nat. Clim. Change, 7, 595, doi:10.1038/nclimate3335.</span></li> <li><span id="fn:r124">Martin, R.M. and S. Moseman-Valtierra, 2015: Greenhouse gas fluxes vary between Phragmites australis and native vegetation zones in coastal wetlands along a salinity gradient. Wetlands, 35(6), 1021–1031.</span></li> <li><span id="fn:r125">Zanowski, H. and R. Hallberg, 2017: Weddell Polynya Transport Mechanisms in the Abyssal Ocean. J. Phys. Oceanogr., doi:10.1175/JPO-D-17-0091.1.</span></li> <li><span id="fn:r126">Zanowski, H., R. Hallberg and J.L. Sarmiento, 2015: Abyssal Ocean Warming and Salinification after Weddell Polynyas in the GFDL CM2G Coupled Climate Model. J. Phys. Oceanogr., 45(11), 2755–2772, doi:10.1175/JPO-D-15-0109.1.</span></li> <li><span id="fn:r127">Helm, K.P., N.L. Bindoff and J.A. Church, 2011: Observed decreases in oxygen content of the global ocean. Geophys. Res. Lett., 38(23), doi:10.1029/2011GL049513.</span></li> <li><span id="fn:r128">Talley, L.D. et al., 2016: Changes in Ocean Heat, Carbon Content, and Ventilation: A Review of the First Decade of GO-SHIP Global Repeat Hydrography. Annu. Rev. Mar. Sci., 8(1), 185–215, doi:10.1146/annurev-marine-052915-100829.</span></li> <li><span id="fn:r129">Capotondi, A. et al., 2012: Enhanced upper ocean stratification with climate change in the CMIP3 models. J. Geophys. Res-Oceans, 117(C4), doi:10.1029/2011JC007409.</span></li> <li><span id="fn:r130">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r131">Good, S.A., M.J. Martin and N.A. Rayner, 2013: EN4: Quality controlled ocean temperature and salinity profiles and monthly objective analyses with uncertainty estimates. J. Geophys. Res-Oceans, 118(12), 6704–6716, doi:10.1002/2013JC009067.</span></li> <li><span id="fn:r132">Lyman, J.M. and G.C. Johnson, 2014: Estimating global ocean heat content changes in the upper 1800 m since 1950 and the influence of climatology choice. J. Clim., 27(5), 1945–1957.</span></li> <li><span id="fn:r133">Desbruyères, D.G. et al., 2016b: Deep and abyssal ocean warming from 35 years of repeat hydrography. Geophys. Res. Lett., 43(19), 10,356–10,365, doi:10.1002/2016gl070413.</span></li> <li><span id="fn:r134">Wang, D., T.C. Gouhier, B.A. Menge and A.R. Ganguly, 2015a: Intensification and spatial homogenization of coastal upwelling under climate change. Nature, 518(7539), 390–394, doi:10.1038/nature14235.</span></li> <li><span id="fn:r135">Adloff, F. et al., 2015: Mediterranean Sea response to climate change in an ensemble of twenty first century scenarios. Clim. Dyn., 45(9), 2775–2802, doi:10.1007/s00382-015-2507-3.</span></li> <li><span id="fn:r136">Tinker, J. et al., 2016: Uncertainty in climate projections for the 21st century northwest European shelf seas. Progr. Oceanogr., 148, 56–73, doi:10.1016/j.pocean.2016.09.003.</span></li> <li><span id="fn:r137">Saba, V.S. et al., 2016: Enhanced warming of the Northwest Atlantic Ocean under climate change. J. Geophys. Res-Oceans, 121(1), 118–132, doi:10.1002/2015JC011346.</span></li> <li><span id="fn:r138">Arbic, B.K., R.H. Karsten and C. Garrett, 2009: On tidal resonance in the global ocean and the back‐effect of coastal tides upon open‐ocean tides. Atmos. Ocean, 47(4), 239–266, doi:10.3137/OC311.2009.</span></li> <li><span id="fn:r139">Newton, I., 1687: Philosophiæ Naturalis Principia Mathematica. London.</span></li> <li><span id="fn:r140">Laplace, P.S., 1799: Traité de Mécanique Céleste, Vol. 1. Duprat, Paris.</span></li> <li><span id="fn:r141">Müller, M., 2012: The influence of changing stratification conditions on barotropic tidal transport and its implications for seasonal and secular changes of tides. Cont. Shelf Res., 47(Supplement C), 107–118, doi:10.1016/j.csr.2012.07.003.</span></li> <li><span id="fn:r142">Schindelegger, M., J.A.M. Green, S.B. Wilmes and I.D. Haigh, 2018: Can We Model the Effect of Observed Sea Level Rise on Tides? J. Geophys. Res-Oceans, 123(7), 4593–4609, doi:10.1029/2018JC013959.</span></li> <li><span id="fn:r143">Woodworth, P L., 2010: A survey of recent changes in the main components of the ocean tide. Cont. Shelf Res., 30(15), 1680–1691, doi:10.1016/j.csr.2010.07.002.</span></li> <li><span id="fn:r144">Müller, M., B.K. Arbic and J.X. Mitrovica, 2011: Secular trends in ocean tides: Observations and model results. J. Geophys. Res-Oceans, 116(C5), n/a–n/a, doi:10.1029/2010JC006387.</span></li> <li><span id="fn:r145">Devlin, A.T. et al., 2017: Tidal Variability Related to Sea Level Variability in the Pacific Ocean. J. Geophys. Res-Ocean, 122(11), 8445-8463 doi:10.1002/2017JC013165.</span></li> <li><span id="fn:r146">Jayne, S.R. and L.C. St. Laurent, 2001: Parameterizing tidal dissipation over rough topography. Geophys. Res. Lett., 28(5), 811–814.</span></li> <li><span id="fn:r147">Müller, M., 2012: The influence of changing stratification conditions on barotropic tidal transport and its implications for seasonal and secular changes of tides. Cont. Shelf Res., 47(Supplement C), 107–118, doi:10.1016/j.csr.2012.07.003.</span></li> <li><span id="fn:r148">Zhao, Q. et al., 2016a: A review of methodologies and success indicators for coastal wetland restoration. Ecol. Indic., 60, 442–452, doi:10.1016/j.ecolind.2015.07.003.</span></li> <li><span id="fn:r149">Ward, S.L., J.A.M. Green and H.E. Pelling, 2012: Tides, sea level rise and tidal power extraction on the European shelf. Ocean Dyn., 62(8), 1153–1167, doi:10.1007/s10236-012-0552-6.</span></li> <li><span id="fn:r150">Pickering, M.D., N.C. Wells, K.J. Horsburgh and J.A.M. Green, 2012: The impact of future sea level rise on the European Shelf tides. Cont. Shelf Res., 35(Supplement C), 1–15, doi:10.1016/j.csr.2011.11.011.</span></li> <li><span id="fn:r151">Devlin, A.T. et al., 2017: Tidal Variability Related to Sea Level Variability in the Pacific Ocean. J. Geophys. Res-Ocean, 122(11), 8445-8463 doi:10.1002/2017JC013165.</span></li> <li><span id="fn:r152">Pickering, M.D. et al., 2017: The impact of future sea level rise on the global tides. Cont. Shelf Res., 142, 50–68, doi:10.1016/j.csr.2017.02.004.</span></li> <li><span id="fn:r153">Pickering, M.D. et al., 2017: The impact of future sea level rise on the global tides. Cont. Shelf Res., 142, 50–68, doi:10.1016/j.csr.2017.02.004.</span></li> <li><span id="fn:r154">Schindelegger, M., J.A.M. Green, S.B. Wilmes and I.D. Haigh, 2018: Can We Model the Effect of Observed Sea Level Rise on Tides? J. Geophys. Res-Oceans, 123(7), 4593–4609, doi:10.1029/2018JC013959.</span></li> <li><span id="fn:r155">Pelling, H.E., K. Uehara and J.A.M. Green, 2013: The impact of rapid coastline changes and sea level rise on the tides in the Bohai Sea, China. J. Geophys. Res-Oceans, 118(7), 3462–3472, doi:10.1002/jgrc.20258.</span></li> <li><span id="fn:r156">Hwang, J.H. et al., 2014: The physical processes in the Yellow Sea. Ocean Coast. Manage., 102, 449–457.</span></li> <li><span id="fn:r157">Hwang, J.H. et al., 2014: The physical processes in the Yellow Sea. Ocean Coast. Manage., 102, 449–457.</span></li> <li><span id="fn:r158">Pickering, M.D., N.C. Wells, K.J. Horsburgh and J.A.M. Green, 2012: The impact of future sea level rise on the European Shelf tides. Cont. Shelf Res., 35(Supplement C), 1–15, doi:10.1016/j.csr.2011.11.011.</span></li> <li><span id="fn:r159">Ilıcak, M., A.J. Adcroft, S.M. Griffies and R.W. Hallberg, 2012: Spurious dianeutral mixing and the role of momentum closure. Ocean Model.., 45–46(Supplement C), 37–58, doi:10.1016/j.ocemod.2011.10.003.</span></li> <li><span id="fn:r160">Megann, A., 2018: Estimating the numerical diapycnal mixing in an eddy-permitting ocean model. Ocean Model.., 121, 19–33, doi:10.1016/j.ocemod.2017.11.001.</span></li> <li><span id="fn:r161">Hallberg, R. et al., 2012: Sensitivity of Twenty-First-Century Global-Mean Steric Sea Level Rise to Ocean Model Formulation. J. Clim., 26(9), 2947–2956, doi:10.1175/JCLI-D-12-00506.1.</span></li> <li><span id="fn:r162">Bachman, S.D., J.R. Taylor, K.A. Adams and P.J. Hosegood, 2017: Mesoscale and Submesoscale Effects on Mixed Layer Depth in the Southern Ocean. J. Phys. Oceanogr., 47(9), 2173–2188, doi:10.1175/JPO-D-17-0034.1.</span></li> <li><span id="fn:r163">Lévy, M. et al., 2012: Bringing physics to life at the submesoscale. Geophys. Res. Lett., 39(14), doi:10.1029/2012GL052756.</span></li> <li><span id="fn:r164">Bachman, S.D., J.R. Taylor, K.A. Adams and P.J. Hosegood, 2017: Mesoscale and Submesoscale Effects on Mixed Layer Depth in the Southern Ocean. J. Phys. Oceanogr., 47(9), 2173–2188, doi:10.1175/JPO-D-17-0034.1.</span></li> <li><span id="fn:r165">Brannigan, L. et al., 2017: Submesoscale Instabilities in Mesoscale Eddies. J. Phys. Oceanogr., 47(12), 3061–3085, doi:10.1175/JPO-D-16-0178.1.</span></li> <li><span id="fn:r166">Hallberg, R., 2013: Using a resolution function to regulate parameterizations of oceanic mesoscale eddy effects. Ocean Model.., 72, 92–103, doi:10.1016/j.ocemod.2013.08.007.</span></li> <li><span id="fn:r167">Schmittner, A., M. Urban Nathan, K. Keller and D. Matthews, 2009: Using tracer observations to reduce the uncertainty of ocean diapycnal mixing and climate–carbon cycle projections. Global Biogeochem. Cy., 23(4), doi:10.1029/2008GB003421.</span></li> <li><span id="fn:r168">MacKinnon, J.A. et al., 2017: Climate Process Team on Internal-Wave Driven Ocean Mixing. Bull. Am. Meteorol. Soc., 98(11), 2429-2454. doi:10.1175/BAMS-D-16-0030.1.</span></li> <li><span id="fn:r169">Whalen, C.B., L.D. Talley and J.A. MacKinnon, 2012: Spatial and temporal variability of global ocean mixing inferred from Argo profiles. Geophys. Res. Lett., 39(18), doi:10.1029/2012GL053196.</span></li> <li><span id="fn:r170">Polzin, K.L., J.M. Toole, J.R. Ledwell and R.W. Schmitt, 1997: Spatial Variability of Turbulent Mixing in the Abyssal Ocean. Science, 276(5309), 93.</span></li> <li><span id="fn:r171">Waterman, S., A.C. Naveira Garabato and K.L. Polzin, 2012: Internal Waves and Turbulence in the Antarctic Circumpolar Current. J. Phys. Oceanogr., 43(2), 259–282, doi:10.1175/JPO-D-11-0194.1.</span></li> <li><span id="fn:r172">Whalen, C.B., L.D. Talley and J.A. MacKinnon, 2012: Spatial and temporal variability of global ocean mixing inferred from Argo profiles. Geophys. Res. Lett., 39(18), doi:10.1029/2012GL053196.</span></li> <li><span id="fn:r173">Alford, M.H. et al., 2013: Turbulent mixing and hydraulic control of abyssal water in the Samoan Passage. Geophys. Res. Lett., 40(17), 4668–4674, doi:10.1002/grl.50684.</span></li> <li><span id="fn:r174">Hummels, R., M. Dengler and B. Bourlès, 2013: Seasonal and regional variability of upper ocean diapycnal heat flux in the Atlantic cold tongue. Progr. Oceanogr., 111, 52–74, doi:10.1016/j.pocean.2012.11.001.</span></li> <li><span id="fn:r175">Sheen, K.L. et al., 2013: Rates and mechanisms of turbulent dissipation and mixing in the Southern Ocean: Results from the Diapycnal and Isopycnal Mixing Experiment in the Southern Ocean (DIMES). J. Geophys. Res-Oceans, 118(6), 2774–2792, doi:10.1002/jgrc.20217.</span></li> <li><span id="fn:r176">Waterhouse, A.F. et al., 2014: Global Patterns of Diapycnal Mixing from Measurements of the Turbulent Dissipation Rate. J. Phys. Oceanogr., 44(7), 1854–1872, doi:10.1175/JPO-D-13-0104.1.</span></li> <li><span id="fn:r177">Kunze, E., 2017: Internal-Wave-Driven Mixing: Global Geography and Budgets. J. Phys. Oceanogr., 47(6), 1325–1345, doi:10.1175/JPO-D-16-0141.1.</span></li> <li><span id="fn:r178">Whalen, C.B., L.D. Talley and J.A. MacKinnon, 2012: Spatial and temporal variability of global ocean mixing inferred from Argo profiles. Geophys. Res. Lett., 39(18), doi:10.1029/2012GL053196.</span></li> <li><span id="fn:r179">Klymak, J.M., R. Pinkel and L. Rainville, 2008: Direct Breaking of the Internal Tide near Topography: Kaena Ridge, Hawaii. J. Phys. Oceanogr., 38(2), 380–399, doi:10.1175/2007JPO3728.1.</span></li> <li><span id="fn:r180">Whalen, C.B., J.A. MacKinnon and L.D. Talley, 2018: Large-scale impacts of the mesoscale environment on mixing from wind-driven internal waves. Nat. Geosci., 11(11), 842–847, doi:10.1038/s41561-018-0213-6.</span></li> <li><span id="fn:r181">Sloyan, B.M. et al., 2010: Antarctic Intermediate Water and Subantarctic Mode Water Formation in the Southeast Pacific: The Role of Turbulent Mixing. J. Phys. Oceanogr., 40(7), 1558–1574, doi:10.1175/2010JPO4114.1.</span></li> <li><span id="fn:r182">Moum, J.N., A. Perlin, J.D. Nash and M.J. McPhaden, 2013: Seasonal sea surface cooling in the equatorial Pacific cold tongue controlled by ocean mixing. Nature, 500, 64, doi:10.1038/nature12363.</span></li> <li><div id="fn:r183"></div> <li><span id="fn:r184">Tanaka, Y., T. Hibiya and H. Sasaki, 2015: Downward lee wave radiation from tropical instability waves in the central equatorial Pacific Ocean: A possible energy pathway to turbulent mixing. J. Geophys. Res-Oceans, 120(11), 7137–7149, doi:10.1002/2015JC011017.</span></li> <li><span id="fn:r185">Wunsch, C. and R. Ferrari, 2004: Vertical mixing, energy, and the general circulation of the oceans. Annu. Rev. Fluid Mech., 36(1), 281–314, doi:10.1146/annurev.fluid.36.050802.122121.</span></li> <li><span id="fn:r186">Eden, C. and D. Olbers, 2014: An Energy Compartment Model for Propagation, Nonlinear Interaction, and Dissipation of Internal Gravity Waves. J. Phys. Oceanogr., 44(8), 2093–2106, doi:10.1175/JPO-D-13-0224.1.</span></li> <li><span id="fn:r187">Alford, M.H., J.A. MacKinnon, H.L. Simmons and J.D. Nash, 2016: Near-Inertial Internal Gravity Waves in the Ocean. Annu. Rev. Mar. Sci., 8(1), 95–123, doi:10.1146/annurev-marine-010814-015746.</span></li> <li><span id="fn:r188">Melet, A., S. Legg and R. Hallberg, 2016: Climatic Impacts of Parameterized Local and Remote Tidal Mixing. J. Clim., 29(10), 3473–3500, doi:10.1175/jcli-d-15-0153.1.</span></li> <li><span id="fn:r189">Meyer, A., K L. Polzin, B.M. Sloyan and H.E. Phillips, 2016: Internal Waves and Mixing near the Kerguelen Plateau. J. Phys. Oceanogr., 46(2), 417–437, doi:10.1175/jpo-d-15-0055.1.</span></li> <li><span id="fn:r190">Zhao, Z. et al., 2016b: Global Observations of Open-Ocean Mode-1 M2 Internal Tides. J. Phys. Oceanogr., 46(6), 1657–1684, doi:10.1175/JPO-D-15-0105.1.</span></li> <li><span id="fn:r191">Dosser, H.V. and L. Rainville, 2016: Dynamics of the Changing Near-Inertial Internal Wave Field in the Arctic Ocean. J. Phys. Oceanogr., 46(2), 395–415, doi:10.1175/jpo-d-15-0056.1.</span></li> <li><span id="fn:r192">Young, I.R., S. Zieger and A.V. Babanin, 2011: Global Trends in Wind Speed and Wave Height. Science, 332(6028), 451.</span></li> <li><span id="fn:r193">Jones, J.M. et al., 2016b: Assessing recent trends in high-latitude Southern Hemisphere surface climate. Nat. Clim. Change, 6, 917, doi:10.1038/nclimate3103.</span></li> <li><span id="fn:r194">Hogg, A.M. et al., 2015: Recent trends in the Southern Ocean eddy field. J. Geophys. Res-Oceans, 120(1), 257–267, doi:10.1002/2014JC010470.</span></li> <li><span id="fn:r195">Jayne, S.R. and L.C. St. Laurent, 2001: Parameterizing tidal dissipation over rough topography. Geophys. Res. Lett., 28(5), 811–814.</span></li> <li><span id="fn:r196">Eden, C. and D. Olbers, 2014: An Energy Compartment Model for Propagation, Nonlinear Interaction, and Dissipation of Internal Gravity Waves. J. Phys. Oceanogr., 44(8), 2093–2106, doi:10.1175/JPO-D-13-0224.1.</span></li> <li><span id="fn:r197">Rödenbeck, C. et al., 2014: Interannual sea-air CO 2 flux variability from an observation-driven ocean mixed-layer scheme. Biogeosciences, 11, 3167–3207.</span></li> <li><span id="fn:r198">Landschützer, P., N. Gruber and D.C.E. Bakker, 2016: Decadal variations and trends of the global ocean carbon sink. Global Biogeochem. Cy., 30(10), 1396–1417, doi:10.1002/2015gb005359.</span></li> <li><span id="fn:r199">Resplandy, L., R. F. Keeling, C. Roedenbeck, B. B. Stephens, S. Khatiwala, K. B. Rodgers, M. C. Long, L. Bopp and P. P. Tans (2018): Revision of global carbon fluxes based on a reassessment of oceanic and riverine carbon transport. Nature Geoscience 11(7): 504-508.</span></li> <li><span id="fn:r200">Rödenbeck, C. et al., 2014: Interannual sea-air CO 2 flux variability from an observation-driven ocean mixed-layer scheme. Biogeosciences, 11, 3167–3207.</span></li> <li><span id="fn:r201">Landschützer, P., N. Gruber and D.C.E. Bakker, 2016: Decadal variations and trends of the global ocean carbon sink. Global Biogeochem. Cy., 30(10), 1396–1417, doi:10.1002/2015gb005359.</span></li> <li><span id="fn:r202">Talley, L.D. et al., 2016: Changes in Ocean Heat, Carbon Content, and Ventilation: A Review of the First Decade of GO-SHIP Global Repeat Hydrography. Annu. Rev. Mar. Sci., 8(1), 185–215, doi:10.1146/annurev-marine-052915-100829.</span></li> <li><span id="fn:r203">Olsen, A. et al., 2016a: The Global Ocean Data Analysis Project version 2 (GLODAPv2)–an internally consistent data product for the world ocean. Earth Syst. Sci. Data (Online), 8(2), 297–323.</span></li> <li><span id="fn:r204">Wanninkhof, R. et al., 2010: Detecting anthropogenic CO2 changes in the interior Atlantic Ocean between 1989 and 2005. J. Geophys. Res-Oceans, 115(C11). https://doi.org/10.1029/2010JC006251</span></li> <li><span id="fn:r205">Pérez, F.F. et al., 2013: Atlantic Ocean CO 2 uptake reduced by weakening of the meridional overturning circulation. Nat. Geosci., 6(2), 146.</span></li> <li><span id="fn:r206">Woosley, R.J., F.J. Millero and R. Wanninkhof, 2016: Rapid anthropogenic changes in CO2 and pH in the Atlantic Ocean: 2003–2014. Global Biogeochem. Cy., 30(1), 70–90.</span></li> <li><span id="fn:r207">Carter, B. et al., 2017: Two decades of Pacific anthropogenic carbon storage and ocean acidification along Global Ocean Ship‐based Hydrographic Investigations Program sections P16 and P02. Global Biogeochem. Cy., 31(2), 306–327.</span></li> <li><span id="fn:r208">Gruber, N., 2019: A diagnosis for marine nitrogen fixation. Nature, 566(7743), 191–193.</span></li> <li><span id="fn:r209">Khatiwala, S. et al., 2013: Global ocean storage of anthropogenic carbon. Biogeosciences, 10(4), 2169–2191.</span></li> <li><span id="fn:r210">DeVries, T., 2014: The oceanic anthropogenic CO2 sink: Storage, air‐sea fluxes, and transports over the industrial era. Global Biogeochem. Cy., 28(7), 631–647, doi:10.1002/2013GB004739.</span></li> <li><span id="fn:r211">Gruber, N., 2019: A diagnosis for marine nitrogen fixation. Nature, 566(7743), 191–193.</span></li> <li><span id="fn:r212">Rödenbeck, C. et al., 2015: Data-based estimates of the ocean carbon sink variability–first results of the Surface Ocean pCO2 Mapping intercomparison (SOCOM). Biogeosciences, 12, 7251–7278.</span></li> <li><span id="fn:r213">Landschützer, P., N. Gruber and D.C.E. Bakker, 2016: Decadal variations and trends of the global ocean carbon sink. Global Biogeochem. Cy., 30(10), 1396–1417, doi:10.1002/2015gb005359.</span></li> <li><span id="fn:r214">Rödenbeck, C. et al., 2015: Data-based estimates of the ocean carbon sink variability–first results of the Surface Ocean pCO2 Mapping intercomparison (SOCOM). Biogeosciences, 12, 7251–7278.</span></li> <li><span id="fn:r215">Landschützer, P., N. Gruber and D.C.E. Bakker, 2016: Decadal variations and trends of the global ocean carbon sink. Global Biogeochem. Cy., 30(10), 1396–1417, doi:10.1002/2015gb005359.</span></li> <li><span id="fn:r216">Landschützer, P., N. Gruber and D.C.E. Bakker, 2016: Decadal variations and trends of the global ocean carbon sink. Global Biogeochem. Cy., 30(10), 1396–1417, doi:10.1002/2015gb005359.</span></li> <li><span id="fn:r217">Munro, D.R. et al., 2015: Recent evidence for a strengthening CO2 sink in the Southern Ocean from carbonate system measurements in the Drake Passage (2002–2015). Geophys. Res. Lett., 42(18), 7623–7630.</span></li> <li><span id="fn:r218">Ritter, R. et al., 2017: Observation‐Based Trends of the Southern Ocean Carbon Sink. Geophys. Res. Lett., 44(24), 12,339–12,348.</span></li> <li><span id="fn:r219">Gruber, N., 2019: A diagnosis for marine nitrogen fixation. Nature, 566(7743), 191–193.</span></li> <li><span id="fn:r220">Pérez, F.F. et al., 2013: Atlantic Ocean CO 2 uptake reduced by weakening of the meridional overturning circulation. Nat. Geosci., 6(2), 146.</span></li> <li><span id="fn:r221">DeVries, T., M. Holzer and F. Primeau, 2017: Recent increase in oceanic carbon uptake driven by weaker upper-ocean overturning. Nature, 542(7640), 215.</span></li> <li><span id="fn:r222">Gruber, N., 2019: A diagnosis for marine nitrogen fixation. Nature, 566(7743), 191–193.</span></li> <li><span id="fn:r223">Sabine, C.L. et al., 2004: The oceanic sink for anthropogenic CO2. Science, 305(5682), 367–71, doi:10.1126/science.1097403.</span></li> <li><span id="fn:r224">Gruber, N., 2019: A diagnosis for marine nitrogen fixation. Nature, 566(7743), 191–193.</span></li> <li><span id="fn:r225">Dore, J.E. et al., 2009: Physical and biogeochemical modulation of ocean acidification in the central North Pacific. PNAS, 106(30), 12235, doi:10.1073/pnas.0906044106.</span></li> <li><span id="fn:r226">Takahashi, T. et al., 2014: Climatological distributions of pH, pCO2, total CO2, alkalinity, and CaCO3 saturation in the global surface ocean, and temporal changes at selected locations. Mar. Chem., 164, 95–125, doi:10.1016/j.marchem.2014.06.004.</span></li> <li><span id="fn:r227">Lauvset, S.K. et al., 2015: Trends and drivers in global surface ocean pH over the past 3 decades. Biogeosciences, 12(5), 1285–1298, doi:10.5194/bg-12-1285-2015.</span></li> <li><span id="fn:r228">Lauvset, S.K. et al., 2015: Trends and drivers in global surface ocean pH over the past 3 decades. Biogeosciences, 12(5), 1285–1298, doi:10.5194/bg-12-1285-2015.</span></li> <li><span id="fn:r229">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r230">Gattuso, J.-P. et al., 2015: OCEANOGRAPHY. Contrasting futures for ocean and society from different anthropogenic CO₂ emissions scenarios. Science, 349(6243), 1 -10, doi:10.1126/science.aac4722.</span></li> <li><span id="fn:r231">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r232">Gattuso, J.-P. et al., 2015: OCEANOGRAPHY. Contrasting futures for ocean and society from different anthropogenic CO₂ emissions scenarios. Science, 349(6243), 1 -10, doi:10.1126/science.aac4722.</span></li> <li><span id="fn:r233">Orr, J.C. et al., 2005: Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms. Nature, 437(7059), 681–686, doi:10.1038/nature04095.</span></li> <li><span id="fn:r234">Hauri, C., T. Friedrich and A. Timmermann, 2015: Abrupt onset and prolongation of aragonite undersaturation events in the Southern Ocean. Nat. Clim. Change, 6, 172, doi:10.1038/nclimate2844.</span></li> <li><span id="fn:r235">Sasse, T.P., B.I. McNeil, R.J. Matear and A. Lenton, 2015: Quantifying the influence of CO2 seasonality on future aragonite undersaturation onset. Biogeosciences, 12(20), 6017–6031, doi:10.5194/bg-12-6017-2015.</span></li> <li><span id="fn:r236">Franco, A.C., N. Gruber, T.L. Frölicher and L. Kropuenske Artman, 2018a: Contrasting Impact of Future CO2 Emission Scenarios on the Extent of CaCO3 Mineral Undersaturation in the Humboldt Current System. J. Geophys. Res-Oceans, 123(3), 2018–2036, doi:10.1002/2018JC013857.</span></li> <li><span id="fn:r237">Steiner, N.S. et al., 2014: Future ocean acidification in the Canada Basin and surrounding Arctic Ocean from CMIP5 earth system models. J. Geophys. Res-Oceans, 119(1), 332–347, doi:10.1002/2013JC009069.</span></li> <li><span id="fn:r238">Resplandy, L., L. Bopp, J.C. Orr and J.P. Dunne, 2013: Role of mode and intermediate waters in future ocean acidification: Analysis of CMIP5 models. Geophys. Res. Lett., 40(12), 3091–3095, doi:10.1002/grl.50414.</span></li> <li><span id="fn:r239">Chen, C.-T. A. et al., 2017: Deep oceans may acidify faster than anticipated due to global warming. Nat. Clim. Change, 7(12), 890–894, doi:10.1038/s41558-017-0003-y.</span></li> <li><span id="fn:r240">Gehlen, M. et al., 2014: Projected pH reductions by 2100 might put deep North Atlantic biodiversity at risk. Biogeosciences, 11(23), 6955–6967, doi:10.5194/bg-11-6955-2014.</span></li> <li><span id="fn:r241">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r242">Landschützer, P. et al., 2018: Strengthening seasonal marine CO2 variations due to increasing atmospheric CO2. Nat. Clim. Change, 8(2), 146–150, doi:10.1038/s41558-017-0057-x.</span></li> <li><span id="fn:r243">McNeil, B.I. and T.P. Sasse, 2016: Future ocean hypercapnia driven by anthropogenic amplification of the natural CO2 cycle. Nature, 529, 383, doi:10.1038/nature16156.</span></li> <li><span id="fn:r244">Kwiatkowski, L. and J. C. Orr, 2018: Diverging seasonal extremes for ocean acidification during the twenty45 first century. Nature Climate Change, 8 (2), 141-145, doi:10.1038/s41558-017-0054-0.</span></li> <li><span id="fn:r245">Frölicher, T.L., K.B. Rodgers, C.A. Stock and W.W.L. Cheung, 2016: Sources of uncertainties in 21st century projections of potential ocean ecosystem stressors. Global Biogeochem. Cy., 30(8), 1224–1243, doi:10.1002/2015gb005338.</span></li> <li><span id="fn:r246">Kwiatkowski, L. and J. C. Orr, 2018: Diverging seasonal extremes for ocean acidification during the twenty45 first century. Nature Climate Change, 8 (2), 141-145, doi:10.1038/s41558-017-0054-0.</span></li> <li><span id="fn:r247">Mongwe, N.P., M. Vichi and P.M.S. Monteiro, 2018: The seasonal cycle of p CO 2 and CO 2 fluxes in the Southern Ocean: diagnosing anomalies in CMIP5 Earth system models. Biogeosciences, 15(9), 2851.</span></li> <li><span id="fn:r248">Schmidtko, S., L. Stramma and M. Visbeck, 2017: Decline in global oceanic oxygen content during the past five decades. Nature, 542(7641), 335–339, doi:10.1038/nature21399.</span></li> <li><span id="fn:r249">Helm, K.P., N.L. Bindoff and J.A. Church, 2011: Observed decreases in oxygen content of the global ocean. Geophys. Res. Lett., 38(23), doi:10.1029/2011GL049513.</span></li> <li><span id="fn:r250">Ito, T., S. Minobe, M.C. Long and C. Deutsch, 2017: Upper ocean O2 trends: 1958–2015. Geophys. Res. Lett., 44(9), 4214–4223, doi:10.1002/2017GL073613.</span></li> <li><span id="fn:r251">Whitney, F.A., H.J. Freeland and M. Robert, 2007: Persistently declining oxygen levels in the interior waters of the eastern subarctic Pacific. Progr. Oceanogr., 75(2), 179–199, doi:10.1016/j.pocean.2007.08.007.</span></li> <li><span id="fn:r252">Sasano, D. et al., 2015: Multidecadal trends of oxygen and their controlling factors in the western North Pacific. Global Biogeochem. Cy., 29(7), 935–956, doi:10.1002/2014gb005065.</span></li> <li><span id="fn:r253">Bograd, S.J. et al., 2015: Changes in source waters to the Southern California Bight. Deep Sea Res. Pt. II, 112, 42–52, doi:10.1016/j.dsr2.2014.04.009.</span></li> <li><span id="fn:r254">Helm, K.P., N.L. Bindoff and J.A. Church, 2011: Observed decreases in oxygen content of the global ocean. Geophys. Res. Lett., 38(23), doi:10.1029/2011GL049513.</span></li> <li><span id="fn:r255">Schmidtko, S., L. Stramma and M. Visbeck, 2017: Decline in global oceanic oxygen content during the past five decades. Nature, 542(7641), 335–339, doi:10.1038/nature21399.</span></li> <li><span id="fn:r256">Talley, L.D. et al., 2016: Changes in Ocean Heat, Carbon Content, and Ventilation: A Review of the First Decade of GO-SHIP Global Repeat Hydrography. Annu. Rev. Mar. Sci., 8(1), 185–215, doi:10.1146/annurev-marine-052915-100829.</span></li> <li><span id="fn:r257">Helm, K.P., N.L. Bindoff and J.A. Church, 2011: Observed decreases in oxygen content of the global ocean. Geophys. Res. Lett., 38(23), doi:10.1029/2011GL049513.</span></li> <li><span id="fn:r258">Ito, T., S. Minobe, M.C. Long and C. Deutsch, 2017: Upper ocean O2 trends: 1958–2015. Geophys. Res. Lett., 44(9), 4214–4223, doi:10.1002/2017GL073613.</span></li> <li><span id="fn:r259">Schmidtko, S., L. Stramma and M. Visbeck, 2017: Decline in global oceanic oxygen content during the past five decades. Nature, 542(7641), 335–339, doi:10.1038/nature21399.</span></li> <li><span id="fn:r260">Oschlies, A., P. Brandt, L. Stramma and S. Schmidtko, 2018: Drivers and mechanisms of ocean deoxygenation. Nat. Geosci., 11(7), 467–473, doi:10.1038/s41561-018-0152-2.</span></li> <li><span id="fn:r261">Ito, T., S. Minobe, M.C. Long and C. Deutsch, 2017: Upper ocean O2 trends: 1958–2015. Geophys. Res. Lett., 44(9), 4214–4223, doi:10.1002/2017GL073613.</span></li> <li><span id="fn:r262">Oschlies, A., P. Brandt, L. Stramma and S. Schmidtko, 2018: Drivers and mechanisms of ocean deoxygenation. Nat. Geosci., 11(7), 467–473, doi:10.1038/s41561-018-0152-2.</span></li> <li><span id="fn:r263">Whitney, F.A., S.J. Bograd and T. Ono, 2013: Nutrient enrichment of the subarctic Pacific Ocean pycnocline. Geophys. Res. Lett., 40(10), 2200–2205, doi:10.1002/grl.50439.</span></li> <li><span id="fn:r264">Sasano, D. et al., 2015: Multidecadal trends of oxygen and their controlling factors in the western North Pacific. Global Biogeochem. Cy., 29(7), 935–956, doi:10.1002/2014gb005065.</span></li> <li><span id="fn:r265">Goericke, R., S.J. Bograd and D.S. Grundle, 2015: Denitrification and flushing of the Santa Barbara Basin bottom waters. Deep Sea Res. Pt. II, 112, 53–60, doi:10.1016/j.dsr2.2014.07.012.</span></li> <li><span id="fn:r266">Goericke, R., S.J. Bograd and D.S. Grundle, 2015: Denitrification and flushing of the Santa Barbara Basin bottom waters. Deep Sea Res. Pt. II, 112, 53–60, doi:10.1016/j.dsr2.2014.07.012.</span></li> <li><span id="fn:r267">Karstensen, J. et al., 2015: Open ocean dead zones in the tropical North Atlantic Ocean. Biogeosciences, 12(8), 2597–2605, doi:10.5194/bg-12-2597-2015.</span></li> <li><span id="fn:r268">Grundle, D.S. et al., 2017: Low oxygen eddies in the eastern tropical North Atlantic: Implications for N2O cycling. Sci. Rep., 7(1), 4806, doi:10.1038/s41598-017-04745-y.</span></li> <li><span id="fn:r269">Watanabe, Y.W. et al., 2003: Synchronous bidecadal periodic changes of oxygen, phosphate and temperature between the Japan Sea deep water and the North Pacific intermediate water. Geophys. Res. Lett., 30(24), doi:10.1029/2003GL018338.</span></li> <li><span id="fn:r270">Stendardo, I. and N. Gruber, 2012: Oxygen trends over five decades in the North Atlantic. J. Geophys. Res-Oceans, 117(C11), doi:10.1029/2012JC007909.</span></li> <li><span id="fn:r271">Ito, T., S. Minobe, M.C. Long and C. Deutsch, 2017: Upper ocean O2 trends: 1958–2015. Geophys. Res. Lett., 44(9), 4214–4223, doi:10.1002/2017GL073613.</span></li> <li><span id="fn:r272">Lachkar, Z., M. Lévy and S. Smith, 2018: Intensification and deepening of the Arabian Sea oxygen minimum zone in response to increase in Indian monsoon wind intensity. Biogeosciences, 15(1),159-186.</span></li> <li><span id="fn:r273">Deutsch, C. et al., 2011: Climate-Forced Variability of Ocean Hypoxia. Science, 333(6040), 336.</span></li> <li><span id="fn:r274">Ito, T. and C. Deutsch, 2013: Variability of the oxygen minimum zone in the tropical North Pacific during the late twentieth century. Global Biogeochem. Cy., 27(4), 1119–1128, doi:10.1002/2013gb004567.</span></li> <li><span id="fn:r275">Eddebbar, Y.A. et al., 2017: Impacts of ENSO on air-sea oxygen exchange: Observations and mechanisms. Global Biogeochem. Cy., 31(5), 901–921, doi:doi:10.1002/2017GB005630.</span></li> <li><span id="fn:r276">Duteil, O., F.U. Schwarzkopf, C.W. Böning and A. Oschlies, 2014: Major role of the equatorial current system in setting oxygen levels in the eastern tropical Atlantic Ocean: A high-resolution model study. Geophys. Res. Lett., 41(6), 2033–2040, doi:10.1002/2013GL058888.</span></li> <li><span id="fn:r277">Deutsch, C. et al., 2015: Climate change tightens a metabolic constraint on marine habitats. Science, 348(6239), 1132.</span></li> <li><span id="fn:r278">Llanillo, P.J., J. Karstensen, J.L. Pelegrí and L. Stramma, 2013: Physical and biogeochemical forcing of oxygen and nitrate changes during El Niño/El Viejo and La Niña/La Vieja upper-ocean phases in the tropical eastern South Pacific along 86° W. Biogeosciences, 10(10), 6339–6355, doi:10.5194/bg-10-6339-2013.</span></li> <li><span id="fn:r279">Duteil, O., A. Oschlies and C.W. Böning, 2018: Pacific Decadal Oscillation and recent oxygen decline in the eastern tropical Pacific Ocean. Biogeosciences, 15, 7111-7126.</span></li> <li><span id="fn:r280">Ito, T. et al., 2016: Acceleration of oxygen decline in the tropical Pacific over the past decades by aerosol pollutants. Nat. Geosci., 9, 443, doi:10.1038/ngeo2717.</span></li> <li><span id="fn:r281">Yang, S. and N. Gruber, 2016: The anthropogenic perturbation of the marine nitrogen cycle by atmospheric deposition: Nitrogen cycle feedbacks and the 15N Haber-Bosch effect. Global Biogeochem. Cy., 30(10), 1418–1440, doi:10.1002/2016GB005421.</span></li> <li><span id="fn:r282">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r283">Oschlies, A., P. Brandt, L. Stramma and S. Schmidtko, 2018: Drivers and mechanisms of ocean deoxygenation. Nat. Geosci., 11(7), 467–473, doi:10.1038/s41561-018-0152-2.</span></li> <li><span id="fn:r284">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r285">Cocco, V. et al., 2013: Oxygen and indicators of stress for marine life in multi-model global warming projections. Biogeosciences, 10(3), 1849–1868, doi:10.5194/bg-10-1849-2013.</span></li> <li><span id="fn:r286">Cabré, A., I. Marinov, R. Bernardello and D. Bianchi, 2015: Oxygen minimum zones in the tropical Pacific across CMIP5 models: mean state differences and climate change trends. Biogeosciences, 12(18), 5429–5454, doi:10.5194/bg-12-5429-2015.</span></li> <li><span id="fn:r287">Bopp, L. et al., 2017: Ocean (de)oxygenation from the Last Glacial Maximum to the twenty-first century: insights from Earth System models. Philos. Trans. Roy. Soc. A., 375(2102), 20160323, doi:10.1098/rsta.2016.0323.</span></li> <li><span id="fn:r288">Moore, C.M. et al., 2013: Processes and patterns of oceanic nutrient limitation. Nat. Geosci., 6(9), ngeo1765, doi:10.1038/ngeo1765.</span></li> <li><span id="fn:r289">Saito, M.A. et al., 2014: Multiple nutrient stresses at intersecting Pacific Ocean biomes detected by protein biomarkers. Science, 345(6201), 1173–1177, doi:10.1126/science.1256450.</span></li> <li><span id="fn:r290">Browning, T.J. et al., 2017: Nutrient co-limitation at the boundary of an oceanic gyre. Nature, 551(7679), 242–246, doi:10.1038/nature24063.</span></li> <li><span id="fn:r291">Tagliabue, A. et al., 2017: The integral role of iron in ocean biogeochemistry. Nature, 543(7643), 51–59, doi:10.1038/nature21058.</span></li> <li><span id="fn:r292">Browning, T.J. et al., 2017: Nutrient co-limitation at the boundary of an oceanic gyre. Nature, 551(7679), 242–246, doi:10.1038/nature24063.</span></li> <li><span id="fn:r293">Jickells, T.D. et al., 2017: A reevaluation of the magnitude and impacts of anthropogenic atmospheric nitrogen inputs on the ocean. Global Biogeochem. Cy., 31(2), 289–305, doi:10.1002/2016gb005586.</span></li> <li><span id="fn:r294">Kim, T.-W. et al., 2011: Increasing N Abundance in the Northwestern Pacific Ocean Due to Atmospheric Nitrogen Deposition. Science, 334(6055), 505, doi:10.1126/science.1206583.</span></li> <li><span id="fn:r295">Kim, I.-N. et al., 2014: Increasing anthropogenic nitrogen in the North Pacific Ocean. Science, 346(6213), 1102, doi:10.1126/science.1258396.</span></li> <li><span id="fn:r296">Ren, H. et al., 2017: 21st-century rise in anthropogenic nitrogen deposition on a remote coral reef. Science, 356(6339), 749, doi:10.1126/science.aal3869.</span></li> <li><span id="fn:r297">Yang, S. and N. Gruber, 2016: The anthropogenic perturbation of the marine nitrogen cycle by atmospheric deposition: Nitrogen cycle feedbacks and the 15N Haber-Bosch effect. Global Biogeochem. Cy., 30(10), 1418–1440, doi:10.1002/2016GB005421.</span></li> <li><span id="fn:r298">Somes, C.J., A. Landolfi, W. Koeve and A. Oschlies, 2016: Limited impact of atmospheric nitrogen deposition on marine productivity due to biogeochemical feedbacks in a global ocean model. Geophys. Res. Lett., 43(9), 4500–4509, doi:10.1002/2016GL068335.</span></li> <li><span id="fn:r299">Landolfi, A. et al., 2017: Oceanic nitrogen cycling and N2O flux perturbations in the Anthropocene. Global Biogeochem. Cy., 31(8), 1236–1255, doi:10.1002/2017GB005633.</span></li> <li><span id="fn:r300">Dave, A.C. and M.S. Lozier, 2013: Examining the global record of interannual variability in stratification and marine productivity in the low-latitude and mid-latitude ocean. J. Geophys. Res-Oceans, 118(6), 3114–3127, doi:10.1002/jgrc.20224.</span></li> <li><span id="fn:r301">Talley, L.D. et al., 2016: Changes in Ocean Heat, Carbon Content, and Ventilation: A Review of the First Decade of GO-SHIP Global Repeat Hydrography. Annu. Rev. Mar. Sci., 8(1), 185–215, doi:10.1146/annurev-marine-052915-100829.</span></li> <li><span id="fn:r302">Kwiatkowski, L., O. Aumont, L. Bopp and P. Ciais, 2018: The Impact of Variable Phytoplankton Stoichiometry on Projections of Primary Production, Food Quality, and Carbon Uptake in the Global Ocean. Global Biogeochem. Cy., 32(4), 516–528, doi:10.1002/2017GB005799.</span></li> <li><span id="fn:r303">Wang, R. et al., 2015b: Influence of anthropogenic aerosol deposition on the relationship between oceanic productivity and warming. Geophys. Res. Lett., 42(24), 10745–10754, doi:10.1002/2015GL066753.</span></li> <li><span id="fn:r304">Somes, C.J., A. Landolfi, W. Koeve and A. Oschlies, 2016: Limited impact of atmospheric nitrogen deposition on marine productivity due to biogeochemical feedbacks in a global ocean model. Geophys. Res. Lett., 43(9), 4500–4509, doi:10.1002/2016GL068335.</span></li> <li><span id="fn:r305">Yang, S. and N. Gruber, 2016: The anthropogenic perturbation of the marine nitrogen cycle by atmospheric deposition: Nitrogen cycle feedbacks and the 15N Haber-Bosch effect. Global Biogeochem. Cy., 30(10), 1418–1440, doi:10.1002/2016GB005421.</span></li> <li><span id="fn:r306">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r307">Battaglia, G. and F. Joos, 2018: Hazards of decreasing marine oxygen: the near-term and millennial-scale benefits of meeting the Paris climate targets. Earth Syst. Dyn., 9(2), 797.</span></li> <li><span id="fn:r308">Fu, W. et al., 2018: Reversal of Increasing Tropical Ocean Hypoxia Trends with Sustained Climate Warming. Global Biogeochem. Cy.,32(4), 551-564, doi:10.1002/2017gb005788.</span></li> <li><span id="fn:r309">Yamamoto, A. et al., 2015: Global deep ocean oxygenation by enhanced ventilation in the Southern Ocean under long-term global warming. Global Biogeochem. Cy., 29(10), 1801–1815, doi:10.1002/2015GB005181.</span></li> <li><span id="fn:r310">Battaglia, G. and F. Joos, 2018: Hazards of decreasing marine oxygen: the near-term and millennial-scale benefits of meeting the Paris climate targets. Earth Syst. Dyn., 9(2), 797.</span></li> <li><span id="fn:r311">Moore, C.M. et al., 2013: Processes and patterns of oceanic nutrient limitation. Nat. Geosci., 6(9), ngeo1765, doi:10.1038/ngeo1765.</span></li> <li><span id="fn:r312">Browning, T.J. et al., 2017: Nutrient co-limitation at the boundary of an oceanic gyre. Nature, 551(7679), 242–246, doi:10.1038/nature24063.</span></li> <li><span id="fn:r313">Shilova, I.N. et al., 2017: Differential effects of nitrate, ammonium, and urea as N sources for microbial communities in the North Pacific Ocean. Limnol. Oceanogr., 62(2), 2550–2574. doi:10.1002/lno.10590.</span></li> <li><span id="fn:r314">Misumi, K. et al., 2013: The iron budget in ocean surface waters in the 20th and 21st centuries: projections by the Community Earth System Model version 1. Biogeosciences, 10(5), 8505–8559.</span></li> <li><span id="fn:r315">Tagliabue, A. and C. Völker, 2011: Towards accounting for dissolved iron speciation in global ocean models. Biogeosciences, 8(10), 3025–3039, doi:10.5194/bg-8-3025-2011.</span></li> <li><span id="fn:r316">Tagliabue, A. et al., 2016: How well do global ocean biogeochemistry models simulate dissolved iron distributions? Global Biogeochem. Cy., 30(2), 149–174, doi:10.1002/2015gb005289.</span></li> <li><span id="fn:r317">Boyd, P.W. et al., 2019: Multi-faceted particle pumps drive carbon sequestration in the ocean. Nature, 568(7752), 327–335, doi:10.1038/s41586-019-1098-2.</span></li> <li><span id="fn:r318">Boyce, D.G., M. Dowd, M.R. Lewis and B. Worm, 2014: Estimating global chlorophyll changes over the past century. Progr. Oceanogr., 122, 163–173, doi:10.1016/j.pocean.2014.01.004.</span></li> <li><span id="fn:r319">Gregg, W.W. and C.S. Rousseaux, 2014: Decadal trends in global pelagic ocean chlorophyll: A new assessment integrating multiple satellites, in situ data, and models. J. Geophys. Res-Oceans, 119(9), 5921–5933, doi:10.1002/2014JC010158.</span></li> <li><span id="fn:r320">Boyce, D. G. and B. Worm, 2015: Patterns and ecological implications of historical marine phytoplankton change. Mar. Ecol. Prog. Ser., 534, 251–272, doi:10.3354/meps11411.</span></li> <li><span id="fn:r321">Hammond, M.L., C. Beaulieu, S.K. Sahu and S.A. Henson, 2017: Assessing trends and uncertainties in satellite-era ocean chlorophyll using space-time modeling. Global Biogeochem. Cy., 31(7), 1103–1117, doi:10.1002/2016gb005600.</span></li> <li><span id="fn:r322">Mélin, F. et al., 2017: Assessing the fitness-for-purpose of satellite multi-mission ocean color climate data records: A protocol applied to OC-CCI chlorophyll-a data. Remote Sens. Environ., 203, 139–151, doi:10.1016/j.rse.2017.03.039.</span></li> <li><span id="fn:r323">Mélin, F. et al., 2017: Assessing the fitness-for-purpose of satellite multi-mission ocean color climate data records: A protocol applied to OC-CCI chlorophyll-a data. Remote Sens. Environ., 203, 139–151, doi:10.1016/j.rse.2017.03.039.</span></li> <li><span id="fn:r324">Gómez-Letona, M., A.G. Ramos, J. Coca and J. Arístegui, 2017: Trends in Primary Production in the Canary Current Upwelling System—A Regional Perspective Comparing Remote Sensing Models. Front. Mar. Sci., 4, 1–18, doi:10.3389/fmars.2017.00370.</span></li> <li><span id="fn:r325">Lee, Z., J. Marra, M.J. Perry and M. Kahru, 2015: Estimating oceanic primary productivity from ocean color remote sensing: A strategic assessment. J. Mar. Syst., 149, 50–59, doi:10.1016/j.jmarsys.2014.11.015.</span></li> <li><span id="fn:r326">Kahru, M., R. Kudela, M. Manzano‐Sarabia and B.G. Mitchell, 2009: Trends in primary production in the California Current detected with satellite data. J. Geophys. Res-Oceans, 114(C2).</span></li> <li><span id="fn:r327">Beaulieu, C. et al., 2013: Factors challenging our ability to detect long-term trends in ocean chlorophyll. Biogeosciences, 10(4), 2711–2724, doi:10.5194/bg-10-2711-2013.</span></li> <li><span id="fn:r328">Laufkötter, C. et al., 2015: Drivers and uncertainties of future global marine primary production in marine ecosystem models. Biogeosciences, 12(23), 6955–6984, doi:10.5194/bg-12-6955-2015.</span></li> <li><span id="fn:r329">Kwiatkowski, L., O. Aumont, L. Bopp and P. Ciais, 2018: The Impact of Variable Phytoplankton Stoichiometry on Projections of Primary Production, Food Quality, and Carbon Uptake in the Global Ocean. Global Biogeochem. Cy., 32(4), 516–528, doi:10.1002/2017GB005799.</span></li> <li><span id="fn:r330">Laufkötter, C. et al., 2015: Drivers and uncertainties of future global marine primary production in marine ecosystem models. Biogeosciences, 12(23), 6955–6984, doi:10.5194/bg-12-6955-2015.</span></li> <li><span id="fn:r331">Kwiatkowski, L. and J. C. Orr, 2018: Diverging seasonal extremes for ocean acidification during the twenty45 first century. Nature Climate Change, 8 (2), 141-145, doi:10.1038/s41558-017-0054-0.</span></li> <li><span id="fn:r332">Boyd, P.W. et al., 2015a: Physiological responses of a Southern Ocean diatom to complex future ocean conditions. Nat. Clim. Change, 6(2), 207–213, doi:10.1038/nclimate2811.</span></li> <li><span id="fn:r333">Tagliabue, A. et al., 2017: The integral role of iron in ocean biogeochemistry. Nature, 543(7643), 51–59, doi:10.1038/nature21058.</span></li> <li><span id="fn:r334">Lima-Mendez, G. et al., 2015: Determinants of community structure in the global plankton interactome. Science, 348(6237), 1262073, doi:10.1126/science.1262073.</span></li> <li><span id="fn:r335">Wang, R. et al., 2015b: Influence of anthropogenic aerosol deposition on the relationship between oceanic productivity and warming. Geophys. Res. Lett., 42(24), 10745–10754, doi:10.1002/2015GL066753.</span></li> <li><span id="fn:r336">Wang, R. et al., 2015b: Influence of anthropogenic aerosol deposition on the relationship between oceanic productivity and warming. Geophys. Res. Lett., 42(24), 10745–10754, doi:10.1002/2015GL066753.</span></li> <li><span id="fn:r337">Fu, W., J.T. Randerson and J.K. Moore, 2016: Climate change impacts on net primary production (NPP) and export production (EP) regulated by increasing stratification and phytoplankton community structure in the CMIP5 models. Biogeosciences, 13(18), 5151–5170, doi:10.5194/bg-13-5151-2016.</span></li> <li><span id="fn:r338">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r339">Fu, W., J.T. Randerson and J.K. Moore, 2016: Climate change impacts on net primary production (NPP) and export production (EP) regulated by increasing stratification and phytoplankton community structure in the CMIP5 models. Biogeosciences, 13(18), 5151–5170, doi:10.5194/bg-13-5151-2016.</span></li> <li><span id="fn:r340">Laufkötter, C. et al., 2016: Projected decreases in future marine export production: the role of the carbon flux through the upper ocean ecosystem. Biogeosciences, 13(13), 4023–4047, doi:10.5194/bg-13-4023-2016.</span></li> <li><span id="fn:r341">Guidi, L. et al., 2016: Plankton networks driving carbon export in the oligotrophic ocean. Nature, 532, 465, doi:10.1038/nature16942.</span></li> <li><span id="fn:r342">Tréguer, P. et al., 2018: Influence of diatom diversity on the ocean biological carbon pump. Nat. Geosci., 11(1), 27–37, doi:10.1038/s41561-017-0028-x.</span></li> <li><span id="fn:r343">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r344">Fu, W., J.T. Randerson and J.K. Moore, 2016: Climate change impacts on net primary production (NPP) and export production (EP) regulated by increasing stratification and phytoplankton community structure in the CMIP5 models. Biogeosciences, 13(18), 5151–5170, doi:10.5194/bg-13-5151-2016.</span></li> <li><span id="fn:r345">Laufkötter, C. et al., 2016: Projected decreases in future marine export production: the role of the carbon flux through the upper ocean ecosystem. Biogeosciences, 13(13), 4023–4047, doi:10.5194/bg-13-4023-2016.</span></li> <li><span id="fn:r346">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r347">Laufkötter, C. et al., 2015: Drivers and uncertainties of future global marine primary production in marine ecosystem models. Biogeosciences, 12(23), 6955–6984, doi:10.5194/bg-12-6955-2015.</span></li> <li><span id="fn:r348">Tagliabue, A. et al., 2016: How well do global ocean biogeochemistry models simulate dissolved iron distributions? Global Biogeochem. Cy., 30(2), 149–174, doi:10.1002/2015gb005289.</span></li> <li><span id="fn:r349">Moreno, A.R. et al., 2017: Marine Phytoplankton Stoichiometry Mediates Nonlinear Interactions Between Nutrient Supply, Temperature, and Atmospheric CO2. Biogeosciences, 1–28, doi:10.5194/bg-2017-367.</span></li> <li><span id="fn:r350">Moreno, A.R. et al., 2017: Marine Phytoplankton Stoichiometry Mediates Nonlinear Interactions Between Nutrient Supply, Temperature, and Atmospheric CO2. Biogeosciences, 1–28, doi:10.5194/bg-2017-367.</span></li> <li><span id="fn:r351">Sarmiento, J.L. and N. Gruber, 2002: Sinks for Anthropogenic Carbon. Physics Today, 55(8), 30–36, doi:10.1063/1.1510279.</span></li> <li><span id="fn:r352">Fu, W., J.T. Randerson and J.K. Moore, 2016: Climate change impacts on net primary production (NPP) and export production (EP) regulated by increasing stratification and phytoplankton community structure in the CMIP5 models. Biogeosciences, 13(18), 5151–5170, doi:10.5194/bg-13-5151-2016.</span></li> <li><span id="fn:r353">Laufkötter, C. et al., 2015: Drivers and uncertainties of future global marine primary production in marine ecosystem models. Biogeosciences, 12(23), 6955–6984, doi:10.5194/bg-12-6955-2015.</span></li> <li><span id="fn:r354">Hawkins, E. and R. Sutton, 2012: Time of emergence of climate signals. Geophys. Res. Lett., 39(1); 1-6, doi:10.1029/2011gl050087.</span></li> <li><span id="fn:r355">Ilyina, T., R.E. Zeebe, E. Maier-Reimer and C. Heinze, 2009: Early detection of ocean acidification effects on marine calcification. Global Biogeochem. Cy., 23(1); 1-11, doi:10.1029/2008gb003278.</span></li> <li><span id="fn:r356">Friedrich, E. and D. Kretzinger, 2012: Vulnerability of wastewater infrastructure of coastal cities to sea level rise: A South African case study. Water SA, 38(5), 755–764.</span></li> <li><span id="fn:r357">Keller, K.M., F. Joos and C.C. Raible, 2014b: Time of emergence of trends in ocean biogeochemistry. Biogeosciences, 11(13), 3647–3659, doi:10.5194/bg-11-3647-2014.</span></li> <li><span id="fn:r358">Lovelock, C.E. et al., 2015: The vulnerability of Indo-Pacific mangrove forests to sea level rise. Nature, 526, 559, doi:10.1038/nature15538.</span></li> <li><span id="fn:r359">Rodgers, K.B., J. Lin and T.L. Frölicher, 2015: Emergence of multiple ocean ecosystem drivers in a large ensemble suite with an Earth system model. Biogeosciences, 12(11), 3301–3320, doi:10.5194/bg-12-3301-2015.</span></li> <li><span id="fn:r360">Keller, K.M., F. Joos and C.C. Raible, 2014b: Time of emergence of trends in ocean biogeochemistry. Biogeosciences, 11(13), 3647–3659, doi:10.5194/bg-11-3647-2014.</span></li> <li><span id="fn:r361">Rodgers, K.B., J. Lin and T.L. Frölicher, 2015: Emergence of multiple ocean ecosystem drivers in a large ensemble suite with an Earth system model. Biogeosciences, 12(11), 3301–3320, doi:10.5194/bg-12-3301-2015.</span></li> <li><span id="fn:r362">Henson, S.A., C. Beaulieu and R. Lampitt, 2016: Observing climate change trends in ocean biogeochemistry: when and where. Global Change Biol., 22(4), 1561–1571, doi:10.1111/gcb.13152.</span></li> <li><span id="fn:r363">Henson, S.A. et al., 2017: Rapid emergence of climate change in environmental drivers of marine ecosystems. Nat. Commun., 8, 14682, doi:10.1038/ncomms14682.</span></li> <li><span id="fn:r364">Frölicher, T.L., K.B. Rodgers, C.A. Stock and W.W.L. Cheung, 2016: Sources of uncertainties in 21st century projections of potential ocean ecosystem stressors. Global Biogeochem. Cy., 30(8), 1224–1243, doi:10.1002/2015gb005338.</span></li> <li><span id="fn:r365">Weatherhead, E.C. et al., 1998: Factors affecting the detection of trends: Statistical considerations and applications to environmental data. J. Geophys. Res-Atmos., 103(D14), 17149–17161, doi:10.1029/98jd00995.</span></li> <li><span id="fn:r366">Hameau, A., J. Mignot and F. Joos, 2019: Assessment of time of emergence of anthropogenic deoxygenation and warming: insights from a CESM simulation from 850 to 2100 CE. Biogeosciences, 16(8), 1755–1780, doi:10.5194/bg-16-1755-2019.</span></li> <li><span id="fn:r367">Stocker, T.F., D. Qin, G.-K. Plattner, LV. Alexander, S.K. Allen, N.L. Bindoff, F.-M. Bréon, J.A. Church, U. Cubasch, S. Emori, P. Forster, P. Friedlingstein, N. Gillett, J.M. Gregory, D.L. Hartmann, E. Jansen, B. Kirtman, R. Knutti, K. Krishna Kumar, P. Lemke, J. Marotzke, V. Masson-Delmotte, G.A. Meehl, I.I. Mokhov, S. Piao, V. Ramaswamy, D. Randall, M. Rhein, M. Rojas, C. Sabine, D. Shindell, L.D. Talley, D.G. Vaughan, 2014: Technical Summary. In: Climate Change 2013 – The Physical Science Basis: Working Group I Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Intergovernmental Panel on Climate, C. (ed.)]. Cambridge University Press, Cambridge, 31–116.</span></li> <li><span id="fn:r368">Henson, S.A. et al., 2017: Rapid emergence of climate change in environmental drivers of marine ecosystems. Nat. Commun., 8, 14682, doi:10.1038/ncomms14682.</span></li> <li><span id="fn:r369">Hameau, A., J. Mignot and F. Joos, 2019: Assessment of time of emergence of anthropogenic deoxygenation and warming: insights from a CESM simulation from 850 to 2100 CE. Biogeosciences, 16(8), 1755–1780, doi:10.5194/bg-16-1755-2019.</span></li> <li><span id="fn:r370">Frölicher, T.L., K.B. Rodgers, C.A. Stock and W.W.L. Cheung, 2016: Sources of uncertainties in 21st century projections of potential ocean ecosystem stressors. Global Biogeochem. Cy., 30(8), 1224–1243, doi:10.1002/2015gb005338.</span></li> <li><span id="fn:r371">Henson, S.A., C. Beaulieu and R. Lampitt, 2016: Observing climate change trends in ocean biogeochemistry: when and where. Global Change Biol., 22(4), 1561–1571, doi:10.1111/gcb.13152.</span></li> <li><span id="fn:r372">Mora, C. et al., 2013: The projected timing of climate departure from recent variability. Nature, 502(7470), 183–7, doi:10.1038/nature12540.</span></li> <li><span id="fn:r373">Pendleton, L.H., O. Thébaud, R.C. Mongruel and H. Levrel, 2016: Has the value of global marine and coastal ecosystem services changed? Mar. Policy, 64(Supplement C), 156–158, doi:10.1016/j.marpol.2015.11.018.</span></li> <li><span id="fn:r374">Deutsch, C. et al., 2015: Climate change tightens a metabolic constraint on marine habitats. Science, 348(6239), 1132.</span></li> <li><span id="fn:r375">Jones, K.R. et al., 2018: The Location and Protection Status of Earth’s Diminishing Marine Wilderness. Curr. Biol., 28(15), 2506–2512.e3, doi:10.1016/j.cub.2018.06.010.</span></li> <li><span id="fn:r376">Mackenzie, C.L. et al., 2014: Ocean Warming, More than Acidification, Reduces Shell Strength in a Commercial Shellfish Species during Food Limitation. PLoS One, 9(1), e86764, doi:10.1371/journal.pone.0086764.</span></li> <li><span id="fn:r377">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r378">Edwards, M. et al., 2013: Marine Ecosystem Response to the Atlantic Multidecadal Oscillation. PLoS One, 8(2), doi:10.1371/journal.pone.0057212.</span></li> <li><span id="fn:r379">Poloczanska, E.S. et al., 2013: Global imprint of climate change on marine life. Nat. Clim. Change, 3(10), 919–925, doi:10.1038/NCLIMATE1958.</span></li> <li><span id="fn:r380">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r381">Hoegh-Guldberg, O. et al., 2014: The Ocean. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part B: Regional Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Barros, V.R., C.B. Field, D.J. Dokken, M.D. Mastrandrea, K.J. Mach, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L.L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1655–1731 pp., ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r382">Herring, P.J. and D.R. Dixon, 1998: Extensive deep sea dispersal of postlarval shrimp from a hydrothermal vent. Deep sea Res. Pt. I, 45(12), 2105–2118, doi:10.1016/S0967-0637(98)00050-8.</span></li> <li><span id="fn:r383">Gage, J.D., 2003: Food inputs, utilization, carbon flow and energetics. In: Ecosystems of the Deep Sea [Tyler, P.A. (ed.)]. Elsevier, Amsterdam, Volume 28, 1st eddition, pp. 313–380. ISBN: 9780080494654</span></li> <li><span id="fn:r384">Frölicher, T.L., K.B. Rodgers, C.A. Stock and W.W.L. Cheung, 2016: Sources of uncertainties in 21st century projections of potential ocean ecosystem stressors. Global Biogeochem. Cy., 30(8), 1224–1243, doi:10.1002/2015gb005338.</span></li> <li><span id="fn:r385">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r386">Schulte, P.M., 2015: The effects of temperature on aerobic metabolism: towards a mechanistic understanding of the responses of ectotherms to a changing environment. J. Exp. Biol., 218(12), 1856, doi:10.1242/jeb.118851.</span></li> <li><span id="fn:r387">Pörtner, H.-O., C. Bock and F.C. Mark, 2017: Oxygen- and capacity-limited thermal tolerance: bridging ecology and physiology. J. Exp. Biol., 220(15), 2685.</span></li> <li><span id="fn:r388">Somero, G. ., B.L. Lockwood and L. Tomanek, 2017: Biochemical adaptation: response to environmental challenges, from life’s origins to the Anthropocene. Sinauer Associates, Incorporated Publishers, Oxford University Press, Sunderland, Massachusetts, p. 572. ISBN: 9781605355641.</span></li> <li><span id="fn:r389">Payne, N.L. et al., 2016: Temperature dependence of fish performance in the wild: links with species biogeography and physiological thermal tolerance. Funct. Ecol., 30(6), 903–912, doi:10.1111/1365-2435.12618.</span></li> <li><span id="fn:r390">Pörtner, H.O. and J. Gutt, 2016: Impacts of Climate Variability and Change on (Marine) Animals: Physiological Underpinnings and Evolutionary Consequences. Integr. Comp. Biol., 56(1), 31–44, doi:10.1093/icb/icw019.</span></li> <li><span id="fn:r391">Gunderson, A.R., B. Tsukimura and J.H. Stillman, 2017: Indirect Effects of Global Change: From Physiological and Behavioral Mechanisms to Ecological Consequences. Integr. Comp. Biol., 57(1), 48–54, doi:10.1093/icb/icx056.</span></li> <li><span id="fn:r392">Beaugrand, G. et al., 2015: Future vulnerability of marine biodiversity compared with contemporary and past changes. Nat. Clim. Change, 5(7), 695–701, doi:10.1038/nclimate2650.</span></li> <li><span id="fn:r393">Stuart-Smith, R.D. et al., 2015: Thermal biases and vulnerability to warming in the world’s marine fauna. Nature, 528, 88, doi:10.1038/nature16144.</span></li> <li><span id="fn:r394">Pinsky, M.L. et al., 2019: Greater vulnerability to warming of marine versus terrestrial ectotherms. Nature, 569(7754), 108–111, doi:10.1038/s41586-019-1132-4.</span></li> <li><span id="fn:r395">Mackenzie, C.L. et al., 2014: Ocean Warming, More than Acidification, Reduces Shell Strength in a Commercial Shellfish Species during Food Limitation. PLoS One, 9(1), e86764, doi:10.1371/journal.pone.0086764.</span></li> <li><span id="fn:r396">Rosas-Navarro, A., G. Langer and P. Ziveri, 2016: Temperature affects the morphology and calcification of Emiliania huxleyi strains. Biogeosciences, 13(10), 2913–2926, doi:10.5194/bg-13-2913-2016.</span></li> <li><span id="fn:r397">Pörtner, H.-O., C. Bock and F.C. Mark, 2017: Oxygen- and capacity-limited thermal tolerance: bridging ecology and physiology. J. Exp. Biol., 220(15), 2685.</span></li> <li><span id="fn:r398">Gobler, C.J. and H. Baumann, 2016: Hypoxia and acidification in ocean ecosystems: coupled dynamics and effects on marine life. Biol. Lett., 12(5), 20150976, doi:10.1098/rsbl.2015.0976.</span></li> <li><span id="fn:r399">Lefevre, S., 2016: Are global warming and ocean acidification conspiring against marine ectotherms? A meta-analysis of the respiratory effects of elevated temperature, high CO2 and their interaction. Conserv. Physiol., 4(1), cow009–cow009, doi:10.1093/conphys/cow009.</span></li> <li><span id="fn:r400">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r401">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r402">Jonkers, L., H. Hillebrand and M. Kucera, 2019: Global change drives modern plankton communities away from the pre-industrial state. Nature, 570, 372-375, doi:10.1038/s41586-019-1230-3.</span></li> <li><span id="fn:r403">Pinsky, M.L. et al., 2013: Marine Taxa Track Local Climate Velocities. Science, 341(6151), 1239–1242, doi:10.1126/science.1239352.</span></li> <li><span id="fn:r404">Asch, R.G., 2015: Climate change and decadal shifts in the phenology of larval fishes in the California Current ecosystem. PNAS, 112(30), E4065–E4074, doi:10.1073/pnas.1421946112.</span></li> <li><span id="fn:r405">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r406">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r407">Chivers, W.J., A.W. Walne and G.C. Hays, 2017: Mismatch between marine plankton range movements and the velocity of climate change. Nat. Commun., 8, doi:10.1038/ncomms14434.</span></li> <li><span id="fn:r408">Beaugrand, G., 2009: Decadal changes in climate and ecosystems in the North Atlantic Ocean and adjacent seas. Deep Sea Res. Pt. II, 56(8–10), 656–673, doi:10.1016/j.dsr2.2008.12.022.</span></li> <li><span id="fn:r409">Chivers, W.J., A.W. Walne and G.C. Hays, 2017: Mismatch between marine plankton range movements and the velocity of climate change. Nat. Commun., 8, doi:10.1038/ncomms14434.</span></li> <li><span id="fn:r410">Philippart, C.J.M. et al., 2003: Climate-related changes in recruitment of the bivalve Macoma balthica. Limnol. Oceanogr., 48(6), 2171–2185, doi:10.4319/lo.2003.48.6.2171.</span></li> <li><span id="fn:r411">Edwards, M. and A.J. Richardson, 2004: Impact of climate change on marine pelagic phenology and trophic mismatch. Nature, 430(7002), nature02808-884, doi:10.1038/nature02808.</span></li> <li><span id="fn:r412">Asch, R.G., 2015: Climate change and decadal shifts in the phenology of larval fishes in the California Current ecosystem. PNAS, 112(30), E4065–E4074, doi:10.1073/pnas.1421946112.</span></li> <li><span id="fn:r413">Crespo, O., D. Guillermo and C. Daniel, 2017: A review of the impacts of fisheries on open-ocean ecosystems. ICES J. Mar. Sci., 74(9), 2283–2297, doi:10.1093/icesjms/fsx084.</span></li> <li><span id="fn:r414">Poloczanska, E.S. et al., 2013: Global imprint of climate change on marine life. Nat. Clim. Change, 3(10), 919–925, doi:10.1038/NCLIMATE1958.</span></li> <li><span id="fn:r415">Sydeman, W.J., E. Poloczanska, T.E. Reed and S.A. Thompson, 2015: Climate change and marine vertebrates. Science, 350(6262), 772–777, doi:10.1126/science.aac9874.</span></li> <li><span id="fn:r416">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r417">Cheung, W.W.L., R. Watson and D. Pauly, 2013: Signature of ocean warming in global fisheries catch. Nature, 497, 365, doi:10.1038/nature121.</span></li> <li><span id="fn:r418">Deutsch, C. et al., 2015: Climate change tightens a metabolic constraint on marine habitats. Science, 348(6239), 1132.</span></li> <li><span id="fn:r419">Burrows, M.T. et al., 2014: Geographical limits to species-range shifts are suggested by climate velocity. Nature, 507(7493), 492–495, doi:10.1038/nature12976.</span></li> <li><span id="fn:r420">Barton, A.D., A.J. Irwin, Z.V. Finkel and C.A. Stock, 2016: Anthropogenic climate change drives shift and shuffle in North Atlantic phytoplankton communities. PNAS, 113(11), 2964–2969, doi:10.1073/pnas.1519080113.</span></li> <li><span id="fn:r421">Sunday, J.M. et al., 2015: Species traits and climate velocity explain geographic range shifts in an ocean-warming hotspot. Ecol. Lett., 18(9), 944–953, doi:10.1111/ele.12474.</span></li> <li><span id="fn:r422">Barton, A.D., A.J. Irwin, Z.V. Finkel and C.A. Stock, 2016: Anthropogenic climate change drives shift and shuffle in North Atlantic phytoplankton communities. PNAS, 113(11), 2964–2969, doi:10.1073/pnas.1519080113.</span></li> <li><span id="fn:r423">García Molinos, J., M.T. Burrows and E.S. Poloczanska, 2017: Ocean currents modify the coupling between climate change and biogeographical shifts. Sci. Rep., 7(1), 1332, doi:10.1038/s41598-017-01309-y.</span></li> <li><span id="fn:r424">Pinsky, M.L. et al., 2013: Marine Taxa Track Local Climate Velocities. Science, 341(6151), 1239–1242, doi:10.1126/science.1239352.</span></li> <li><span id="fn:r425">Kleisner, K.M. et al., 2015: Evaluating changes in marine communities that provide ecosystem services through comparative assessments of community indicators. Ecosyst. Serv., 16(Supplement C), 413–429, doi:10.1016/j.ecoser.2015.02.002.</span></li> <li><span id="fn:r426">Pinsky, M.L. et al., 2013: Marine Taxa Track Local Climate Velocities. Science, 341(6151), 1239–1242, doi:10.1126/science.1239352.</span></li> <li><span id="fn:r427">Burrows, M.T. et al., 2014: Geographical limits to species-range shifts are suggested by climate velocity. Nature, 507(7493), 492–495, doi:10.1038/nature12976.</span></li> <li><span id="fn:r428">Sydeman, W.J., E. Poloczanska, T.E. Reed and S.A. Thompson, 2015: Climate change and marine vertebrates. Science, 350(6262), 772–777, doi:10.1126/science.aac9874.</span></li> <li><span id="fn:r429">Engel, J. et al., 2014: Towards the Disease Biomarker in an Individual Patient Using Statistical Health Monitoring. PLoS One, 9(4), e92452, doi:10.1371/journal.pone.0092452.</span></li> <li><span id="fn:r430">Hoegh-Guldberg, O. et al., 2014: The Ocean. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part B: Regional Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Barros, V.R., C.B. Field, D.J. Dokken, M.D. Mastrandrea, K.J. Mach, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L.L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1655–1731 pp., ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r431">Edwards, M. et al., 2013: Marine Ecosystem Response to the Atlantic Multidecadal Oscillation. PLoS One, 8(2), doi:10.1371/journal.pone.0057212.</span></li> <li><span id="fn:r432">Harris, P.T., M. Macmillan-Lawler, J. Rupp and E.K. Baker, 2014: Geomorphology of the oceans. Mar. Geol., 352(Supplement C), 4–24.</span></li> <li><span id="fn:r433">Dornelas, M. et al., 2018: BioTIME: A database of biodiversity time series for the Anthropocene. Global Ecol. Biogeogr., 27(7), 760–786, doi:10.1111/geb.12729.</span></li> <li><span id="fn:r434">Chivers, W.J., A.W. Walne and G.C. Hays, 2017: Mismatch between marine plankton range movements and the velocity of climate change. Nat. Commun., 8, doi:10.1038/ncomms14434.</span></li> <li><span id="fn:r435">Pecl, G.T. et al., 2017: Biodiversity redistribution under climate change: Impacts on ecosystems and human well–being. Science, 355(6332), eaai9214, doi:10.1126/science.aai9214.</span></li> <li><span id="fn:r436">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r437">Cavallo, C. et al., 2015: Predicting climate warming effects on green turtle hatchling viability and dispersal performance. Funct. Ecol., 29(6), 768–778, doi:10.1111/1365-2435.12389.</span></li> <li><span id="fn:r438">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r439">Henderson, E.E. et al., 2014: Effects of fluctuations in sea-surface temperature on the occurrence of small cetaceans off Southern California. Fish-B NOAA, 112(2–3), 159–177, doi:10.7755/fb.112.2-3.5.</span></li> <li><span id="fn:r440">Hiscock, J.A. and B.L. Chilvers, 2014: Declining eastern rockhopper (Eudyptes filholi) and erect-crested (E-sclateri) penguins on the Antipodes Islands, New Zealand. New Zeal. J. Ecol., 38(1), 124–131.</span></li> <li><span id="fn:r441">Ramp, C. et al., 2015: Adapting to a Warmer Ocean-Seasonal Shift of Baleen Whale Movements over Three Decades. PLoS One, 10(3), e0121374, doi:10.1371/journal.pone.0121374.</span></li> <li><span id="fn:r442">Descamps, S. et al., 2015: Demographic effects of extreme weather events: snow storms, breeding success, and population growth rate in a long-lived Antarctic seabird. Ecol. Evol., 5(2), 314–325, doi:10.1002/ece3.1357.</span></li> <li><span id="fn:r443">Thorne, L.H. et al., 2016: Effects of El Niño-driven changes in wind patterns on North Pacific albatrosses. J R Soc Interface, 13(119), 20160196, doi:10.1098/rsif.2016.0196.</span></li> <li><span id="fn:r444">Hays, G.C., A.C. Broderick, F. Glen and B.J. Godley, 2003: Climate change and sea turtles: a 150-year reconstruction of incubation temperatures at a major marine turtle rookery. Global Change Biol., 9(4), 642–646, doi:10.1046/j.1365-2486.2003.00606.x.</span></li> <li><span id="fn:r445">Pike, D.A., 2014: Forecasting the viability of sea turtle eggs in a warming world. Global Change Biol., 20(1), 7–15, doi:10.1111/gcb.12397.</span></li> <li><span id="fn:r446">Dudley, P.N., R. Bonazza and W P. Porter, 2016: Climate change impacts on nesting and internesting leatherback sea turtles using 3D animated computational fluid dynamics and finite volume heat transfer. Ecol. Modell., 320(Supplement C), 231–240, doi:10.1016/j.ecolmodel.2015.10.012.</span></li> <li><span id="fn:r447">Santora, J.A. et al., 2017: Impacts of ocean climate variability on biodiversity of pelagic forage species in an upwelling ecosystem. Mar. Ecol. Prog. Ser., 580, 205–220, doi:10.3354/meps12278.</span></li> <li><span id="fn:r448">Hatfield, J.S., M.H. Reynolds, N.E. Seavy and C.M. Krause, 2012: Population dynamics of Hawaiian seabird colonies vulnerable to sea level rise. Conserv. Biol., 26(4), 667–78, doi:10.1111/j.1523-1739.2012.01853.x.</span></li> <li><span id="fn:r449">Santidrián Tomillo, P. et al., 2014: High beach temperatures increased female-biased primary sex ratios but reduced output of female hatchlings in the leatherback turtle. Biol. Conserv., 176(Supplement C), 71–79, doi:10.1016/j.biocon.2014.05.011.</span></li> <li><span id="fn:r450">Patricio, A.R. et al., 2017: Balanced primary sex ratios and resilience to climate change in a major sea turtle population. Mar. Ecol. Prog. Ser., 577, 189–203, doi:10.3354/meps12242.</span></li> <li><span id="fn:r451">Fish, M.R. et al., 2005: Predicting the impact of sea level rise on Caribbean sea turtle nesting habitat. Conserv. Biol., 19(2), 482–491, doi:10.1111/j.1523-1739.2005.00146.x.</span></li> <li><span id="fn:r452">Fuentes, M., C.J. Limpus, M. Hamann and J. Dawson, 2010: Potential impacts of projected sea level rise on sea turtle rookeries. Aquat. Conserv. Mar. Frewshw. Ecosyst., 20(2), 132–139, doi:10.1002/aqc.1088.</span></li> <li><span id="fn:r453">Funayama, K., E. Hines, J. Davis and S. Allen, 2013: Effects of sea level rise on northern elephant seal breeding habitat at Point Reyes Peninsula, California. Aquat. Conserv. Mar. Frewshw. Ecosyst., 23(2), 233–245, doi:10.1002/aqc.2318.</span></li> <li><span id="fn:r454">Reece, J.S. et al., 2013: Sea level rise, land use, and climate change influence the distribution of loggerhead turtle nests at the largest USA rookery (Melbourne Beach, Florida). Mar. Ecol. Prog. Ser., 493, 259–274, doi:10.3354/meps10531.</span></li> <li><span id="fn:r455">Katselidis, K.A. et al., 2014: Employing sea level rise scenarios to strategically select sea turtle nesting habitat important for long-term management at a temperate breeding area. J. Exp. Mar. Biol. Ecol., 450, 47–54, doi:10.1016/j.jembe.2013.10.017.</span></li> <li><span id="fn:r456">Patino-Martinez, J., A. Marco, L. Quinones and L.A. Hawkes, 2014: The potential future influence of sea level rise on leatherback turtle nests. J. Exp. Mar. Biol. Ecol., 461, 116–123, doi:10.1016/j.jembe.2014.07.021.</span></li> <li><span id="fn:r457">Pike, D.A., E.A. Roznik and I. Bell, 2015: Nest inundation from sea level rise threatens sea turtle population viability. R. Soc. Open Sci., 2(7), 150127, doi:10.1098/rsos.150127.</span></li> <li><span id="fn:r458">Lefevre, S., 2016: Are global warming and ocean acidification conspiring against marine ectotherms? A meta-analysis of the respiratory effects of elevated temperature, high CO2 and their interaction. Conserv. Physiol., 4(1), cow009–cow009, doi:10.1093/conphys/cow009.</span></li> <li><span id="fn:r459">Bost, C.A. et al., 2009: The importance of oceanographic fronts to marine birds and mammals of the southern oceans. J. Mar. Syst., 78(3), 363–376, doi:10.1016/j.jmarsys.2008.11.022.</span></li> <li><span id="fn:r460">Sydeman, W.J., E. Poloczanska, T.E. Reed and S.A. Thompson, 2015: Climate change and marine vertebrates. Science, 350(6262), 772–777, doi:10.1126/science.aac9874.</span></li> <li><span id="fn:r461">Breed, G.A. et al., 2017: Sustained disruption of narwhal habitat use and behavior in the presence of Arctic killer whales. PNAS, 114(10), 2628–2633, doi:10.1073/pnas.1611707114.</span></li> <li><span id="fn:r462">Bost, C.A. et al., 2015: Large-scale climatic anomalies affect marine predator foraging behaviour and demography. Nat. Commun., 6, 8220, doi:10.1038/ncomms9220.</span></li> <li><span id="fn:r463">Kavanaugh, M.T. et al., 2015: Effect of continental shelf canyons on phytoplankton biomass and community composition along the western Antarctic Peninsula. Mar. Ecol. Prog. Ser., 524, 11–26, doi:10.3354/meps11189.</span></li> <li><span id="fn:r464">Hindell, M.A. et al., 2016: Circumpolar habitat use in the southern elephant seal: implications for foraging success and population trajectories. Ecosphere, 7(5), e01213, doi:10.1002/ecs2.1213.</span></li> <li><span id="fn:r465">Hunt, G.L. et al., 2016: Advection in polar and sub-polar environments: Impacts on high latitude marine ecosystems. Progr. Oceanogr., 149(40), 40–81, doi:10.1016/j.pocean.2016.10.004.</span></li> <li><span id="fn:r466">Santora, J.A. et al., 2017: Impacts of ocean climate variability on biodiversity of pelagic forage species in an upwelling ecosystem. Mar. Ecol. Prog. Ser., 580, 205–220, doi:10.3354/meps12278.</span></li> <li><span id="fn:r467">Crocker, D.E. et al., 2006: Impact of El Niño on the foraging behavior of female northern elephant seals. Mar. Ecol. Prog. Ser., 309(1), 1–10, doi:10.3354/meps309001.</span></li> <li><span id="fn:r468">Baez, J.C. et al., 2011: The North Atlantic Oscillation and sea surface temperature affect loggerhead abundance around the Strait of Gibraltar. Sci. Mar., 75(3), 571–575, doi:10.3989/scimar.2011.75n3571.</span></li> <li><span id="fn:r469">Dugger, K.M. et al., 2014: Adelie penguins coping with environmental change: results from a natural experiment at the edge of their breeding range. Frontiers in Ecol. Evol., 2, doi:10.3389/fevo.2014.00068.</span></li> <li><span id="fn:r470">Abrahms, B. et al., 2017: Climate mediates the success of migration strategies in a marine predator. Ecol. Lett., 14, 21: 63-71, doi:10.1111/ele.12871.</span></li> <li><span id="fn:r471">Youngflesh, C. et al., 2017: Circumpolar analysis of the Adelie Penguin reveals the importance of environmental variability in phenological mismatch. Ecology, 98(4), 940–951, doi:10.1002/ecy.1749.</span></li> <li><span id="fn:r472">Costa, D.P. et al., 2010: Approaches to studying climatic change and its role on the habitat selection of antarctic pinnipeds. Integr. Comp. Biol., 50(6), 1018–1030, doi:10.1093/icb/icq054.</span></li> <li><span id="fn:r473">Ancona, S. and H. Drummond, 2013: Life History Plasticity of a Tropical Seabird in Response to El Nino Anomalies during Early Life. PLoS One, 8(9), doi:10.1371/journal.pone.0072665.</span></li> <li><span id="fn:r474">Ducklow, H.W. et al., 2013: West Antarctic Peninsula: An Ice-Dependent Coastal Marine Ecosystem in Transition. Oceanography, 26(3), 190–203, doi:10.5670/oceanog.2013.62.</span></li> <li><span id="fn:r475">Chambers, L.E., P. Dann, B. Cannell and E.J. Woehler, 2014: Climate as a driver of phenological change in southern seabirds. International Journal of Biometeorology, 58(4), 603–612, doi:10.1007/s00484-013-0711-6.</span></li> <li><span id="fn:r476">Descamps, S. et al., 2015: Demographic effects of extreme weather events: snow storms, breeding success, and population growth rate in a long-lived Antarctic seabird. Ecol. Evol., 5(2), 314–325, doi:10.1002/ece3.1357.</span></li> <li><span id="fn:r477">Abadi, F., C. Barbraud and O. Gimenez, 2017: Integrated population modeling reveals the impact of climate on the survival of juvenile emperor penguins. Global Change Biol., 23(3), 1353–1359, doi:10.1111/gcb.13538.</span></li> <li><span id="fn:r478">Bjorndal, K.A. et al., 2017: Ecological regime shift drives declining growth rates of sea turtles throughout the West Atlantic. Global Change Biol., 23(11), 4556–4568, doi:10.1111/gcb.13712.</span></li> <li><span id="fn:r479">Polovina, J.J., 2005: Climate variation, regime shifts, and implications for sustainable fisheries. Bulletin of Marine Science, 76(2), 233–244.</span></li> <li><span id="fn:r480">Polovina, J.J., J.P. Dunne, P.A. Woodworth and E.A. Howell, 2011: Projected expansion of the subtropical biome and contraction of the temperate and equatorial upwelling biomes in the North Pacific under global warming. ICES J. Mar. Sci., 68(6), 986–995, doi:10.1093/icesjms/fsq198.</span></li> <li><span id="fn:r481">Doney, S.C. et al., 2012: Climate change impacts on marine ecosystems. Annu. Rev. Mar. Sci., 4(1), 11–37, doi:10.1146/annurev-marine-041911-111611.</span></li> <li><span id="fn:r482">Sydeman, W.J., E. Poloczanska, T.E. Reed and S.A. Thompson, 2015: Climate change and marine vertebrates. Science, 350(6262), 772–777, doi:10.1126/science.aac9874.</span></li> <li><span id="fn:r483">Briscoe, D.K. et al., 2017: Ecological bridges and barriers in pelagic ecosystems. Deep sea Res. Pt. II, 140, 182–192, doi:10.1016/j.dsr2.2016.11.004.</span></li> <li><span id="fn:r484">Woodworth-Jefcoats, P.A., J.J. Polovina and J.C. Drazen, 2017: Climate change is projected to reduce carrying capacity and redistribute species richness in North Pacific pelagic marine ecosystems. Global Change Biol., 23(3), 1000–1008, doi:10.1111/gcb.13471.</span></li> <li><span id="fn:r485">Ascani, F. et al., 2016: Juvenile recruitment in loggerhead sea turtles linked to decadal changes in ocean circulation. Global Change Biol., 22(11), 3529–3538, doi:10.1111/gcb.13331.</span></li> <li><span id="fn:r486">McKeon, C.S. et al., 2016: Melting barriers to faunal exchange across ocean basins. Global Change Biol., 22(2), 465–473, doi:10.1111/gcb.13116.</span></li> <li><span id="fn:r487">Alter, S.E. et al., 2015: Climate impacts on transocean dispersal and habitat in gray whales from the Pleistocene to 2100. Mol. Ecol., 24(7), 1510–1522, doi:10.1111/mec.13121.</span></li> <li><span id="fn:r488">George, J.C. et al., 2015: Bowhead whale body condition and links to summer sea ice and upwelling in the Beaufort Sea. Progr. Oceanogr., 136, 250–262, doi:10.1016/j.pocean.2015.05.001.</span></li> <li><span id="fn:r489">Laidre, K.L. et al., 2015: Arctic marine mammal population status, sea ice habitat loss, and conservation recommendations for the 21st century. Conserv. Biol., 29(3), 724–737, doi:10.1111/cobi.12474.</span></li> <li><span id="fn:r490">MacIntyre, K.Q. et al., 2015: The relationship between sea ice concentration and the spatio-temporal distribution of vocalizing bearded seals (Erignathus barbatus) in the Bering, Chukchi, and Beaufort Seas from 2008 to 2011. Progr. Oceanogr., 136, 241–249, doi:10.1016/j.pocean.2015.05.008.</span></li> <li><span id="fn:r491">McKeon, C.S. et al., 2016: Melting barriers to faunal exchange across ocean basins. Global Change Biol., 22(2), 465–473, doi:10.1111/gcb.13116.</span></li> <li><span id="fn:r492">Breed, G.A. et al., 2017: Sustained disruption of narwhal habitat use and behavior in the presence of Arctic killer whales. PNAS, 114(10), 2628–2633, doi:10.1073/pnas.1611707114.</span></li> <li><span id="fn:r493">Hauser, D.D.W. et al., 2017: Decadal shifts in autumn migration timing by Pacific Arctic beluga whales are related to delayed annual sea ice formation. Global Change Biol., 23(6), 2206–2217, doi:10.1111/gcb.13564.</span></li> <li><span id="fn:r494">Riebesell, U. et al., 2017: Ocean acidification impairs competitive fitness of a predominant pelagic calcifier, Nat. Geosci., 10, 19–24.</span></li> <li><span id="fn:r495">Alguero-Muniz, M. et al., 2017: Ocean acidification effects on mesozooplankton community development: Results from a long-term mesocosm experiment. PLoS One, 12(4), doi:10.1371/journal.pone.0175851.</span></li> <li><span id="fn:r496">Seebacher, F., C.R. White and C.E. Franklin, 2014: Physiological plasticity increases resilience of ectothermic animals to climate change. Nat. Clim. Change, 5, 61, doi:10.1038/nclimate2457.</span></li> <li><span id="fn:r497">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r498">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r499">Schaum, E., B. Rost, A.J. Millar and S. Collins, 2013: Variation in plastic responses of a globally distributed picoplankton species to ocean acidification. Nat. Clim. Change, 3(3), 298–302, doi:10.1038/NCLIMATE1774.</span></li> <li><span id="fn:r500">Boyd, P.W. and M. Bressac, 2016: Developing a test-bed for robust research governance of geoengineering: the contribution of ocean iron biogeochemistry. Philos. Trans. Roy. Soc. A., 374(2081).</span></li> <li><span id="fn:r501">O’Brien, P.A., K.M. Morrow, B.L. Willis and D.G. Bourne, 2016: Implications of Ocean Acidification for Marine Microorganisms from the Free-Living to the Host-Associated. Front. Mar. Sci., 3(fiv142), 1029, doi:10.3389/fmars.2016.00047.</span></li> <li><span id="fn:r502">Moore, J.C., 2018: Predicting tipping points in complex environmental systems. PNAS, 115(4), 635, doi:10.1073/pnas.1721206115.</span></li> <li><span id="fn:r503">Stock, C.A., J.P. Dunne and J.G. John, 2014: Drivers of trophic amplification of ocean productivity trends in a changing climate. Biogeosciences, 11(24), 7125.</span></li> <li><span id="fn:r504">Barton, A.D., A.J. Irwin, Z.V. Finkel and C.A. Stock, 2016: Anthropogenic climate change drives shift and shuffle in North Atlantic phytoplankton communities. PNAS, 113(11), 2964–2969, doi:10.1073/pnas.1519080113.</span></li> <li><span id="fn:r505">Gittings, J.A., D.E. Raitsos, G. Krokos and I. Hoteit, 2018: Impacts of warming on phytoplankton abundance and phenology in a typical tropical marine ecosystem. Sci. Rep., 8(1), 2240, doi:10.1038/s41598-018-20560-5.</span></li> <li><span id="fn:r506">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r507">Neuheimer, A.B., B.R. MacKenzie and M.R. Payne, 2018: Temperature-dependent adaptation allows fish to meet their food across their species’ range. Sci. Adv., 4(7), eaar4349, doi:10.1126/sciadv.aar4349.</span></li> <li><span id="fn:r508">Poloczanska, E.S. et al., 2013: Global imprint of climate change on marine life. Nat. Clim. Change, 3(10), 919–925, doi:10.1038/NCLIMATE1958.</span></li> <li><span id="fn:r509">Lindley, J.A. and R.R. Kirby, 2010: Climate-induced changes in the North Sea Decapoda over the last 60 years. Clim. Res., 42(3), 257–264.</span></li> <li><span id="fn:r510">Bruge, A. et al., 2016: Thermal Niche Tracking and Future Distribution of Atlantic Mackerel Spawning in Response to Ocean Warming. Front. Mar. Sci., 3(86), doi:10.3389/fmars.2016.00086.</span></li> <li><span id="fn:r511">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r512">Riebesell, U. and J.-P. Gattuso, 2014: Lessons learned from ocean acidification research. Nat. Clim. Change, 5(1), 12–14, doi:10.1038/nclimate2456.</span></li> <li><span id="fn:r513">Gattuso, J.-P. et al., 2015: OCEANOGRAPHY. Contrasting futures for ocean and society from different anthropogenic CO₂ emissions scenarios. Science, 349(6243), 1 -10, doi:10.1126/science.aac4722.</span></li> <li><span id="fn:r514">Nagelkerken, I. and S.D. Connell, 2015: Global alteration of ocean ecosystem functioning due to increasing human CO2 emissions. PNAS, 112(43), 13272–13277, doi:10.1073/pnas.1510856112.</span></li> <li><span id="fn:r515">Nagelkerken, I. and S.D. Connell, 2015: Global alteration of ocean ecosystem functioning due to increasing human CO2 emissions. PNAS, 112(43), 13272–13277, doi:10.1073/pnas.1510856112.</span></li> <li><span id="fn:r516">Lefevre, S., 2016: Are global warming and ocean acidification conspiring against marine ectotherms? A meta-analysis of the respiratory effects of elevated temperature, high CO2 and their interaction. Conserv. Physiol., 4(1), cow009–cow009, doi:10.1093/conphys/cow009.</span></li> <li><span id="fn:r517">Harvey, B.P., D. Gwynn-Jones and P.J. Moore, 2013: Meta-analysis reveals complex marine biological responses to the interactive effects of ocean acidification and warming. Ecol. Evol., 3(4), 1016–1030, doi:10.1002/ece3.516.</span></li> <li><span id="fn:r518">Kroeker, K.J. et al., 2013: Impacts of ocean acidification on marine organisms: quantifying sensitivities and interaction with warming. Global Change Biol., 19(6), 1884–1896.</span></li> <li><span id="fn:r519">Nagelkerken, I. and S.D. Connell, 2015: Global alteration of ocean ecosystem functioning due to increasing human CO2 emissions. PNAS, 112(43), 13272–13277, doi:10.1073/pnas.1510856112.</span></li> <li><span id="fn:r520">Boyd, P.W. and M. Bressac, 2016: Developing a test-bed for robust research governance of geoengineering: the contribution of ocean iron biogeochemistry. Philos. Trans. Roy. Soc. A., 374(2081).</span></li> <li><span id="fn:r521">Nagelkerken, I. and S.D. Connell, 2015: Global alteration of ocean ecosystem functioning due to increasing human CO2 emissions. PNAS, 112(43), 13272–13277, doi:10.1073/pnas.1510856112.</span></li> <li><span id="fn:r522">Dutkiewicz, S., J.R. Scott and M.J. Follows, 2013b: Winners and losers: Ecological and biogeochemical changes in a warming ocean. Global Biogeochem. Cy., 27(2), 463–477, doi:10.1002/gbc.20042.</span></li> <li><span id="fn:r523">Flombaum, P. et al., 2013: Present and future global distributions of the marine Cyanobacteria, Prochlorococcus and Synechococcus. PNAS, 110(24), 9824, doi:10.1073/pnas.1307701110.</span></li> <li><span id="fn:r524">Fu, F.-X. et al., 2007: Effects of increased temperature and CO2 on photosynthesis, growth and elemental ratios in marine Synechococcus and Prochlorococcus (Cyanobacteria). J. Phycol., 43(3), 485–496, doi:10.1111/j.1529-8817.2007.00355.x.</span></li> <li><span id="fn:r525">Hutchins, D.A. and F. Fu, 2017: Microorganisms and ocean global change. Nature Microbiol., 2, 17058, doi:10.1038/nmicrobiol.2017.58.</span></li> <li><span id="fn:r526">Dutkiewicz, S. et al., 2015: Impact of ocean acidification on the structure of future phytoplankton communities. Nat. Clim. Change, 5, 1002, doi:10.1038/nclimate2722.</span></li> <li><span id="fn:r527">Sohm, J.A., E.A. Webb and D.G. Capone, 2011: Emerging patterns of marine nitrogen fixation. Nat. Rev. Microbiol., 9, 499, doi:10.1038/nrmicro2594.</span></li> <li><span id="fn:r528">Boyd, P.W. et al., 2013: Marine Phytoplankton Temperature versus Growth Responses from Polar to Tropical Waters – Outcome of a Scientific Community-Wide Study. PLoS One, 8(5), e63091, doi:10.1371/journal.pone.0063091.</span></li> <li><span id="fn:r529">Ward, B.A., S. Dutkiewicz, C.M. Moore and M.J. Follows, 2013: Iron, phosphorus, and nitrogen supply ratios define the biogeography of nitrogen fixation. Limnol. Oceanogr., 58(6), 2059–2075, doi:10.4319/lo.2013.58.6.2059.</span></li> <li><span id="fn:r530">Hutchins, D.A. and F. Fu, 2017: Microorganisms and ocean global change. Nature Microbiol., 2, 17058, doi:10.1038/nmicrobiol.2017.58.</span></li> <li><span id="fn:r531">Boyd, P.W. and D.A. Hutchins, 2012: Understanding the responses of ocean biota to a complex matrix of cumulative anthropogenic change. Mar. Ecol. Prog. Ser., 470, 125–135.</span></li> <li><span id="fn:r532">Lohbeck, K.T., U. Riebesell and T.B.H. Reusch, 2012: Adaptive evolution of a key phytoplankton species to ocean acidification. Nat. Geosci., 5, 346, doi:10.1038/ngeo1441.</span></li> <li><span id="fn:r533">Khanna, N., J.A. Godbold, W.E.N. Austin and D.M. Paterson, 2013: The Impact of Ocean Acidification on the Functional Morphology of Foraminifera. PLoS One, 8(12), e83118, doi:10.1371/journal.pone.0083118.</span></li> <li><span id="fn:r534">Roy, T., F. Lombard, L. Bopp and M. Gehlen, 2015: Projected impacts of climate change and ocean acidification on the global biogeography of planktonic Foraminifera. Biogeosciences, 12(10), 2873–2889, doi:10.5194/bg-12-2873-2015.</span></li> <li><span id="fn:r535">Brussaard, C. et al., 2013: Arctic microbial community dynamics influenced by elevated CO2 levels. Biogeosciences, 10(2), 719–731.</span></li> <li><span id="fn:r536">Rose, J.M. et al., 2009: Synergistic effects of iron and temperature on Antarctic phytoplankton and microzooplankton assemblages. Biogeosciences, 6(12), 3131–3147, doi:10.5194/bg-6-3131-2009.</span></li> <li><span id="fn:r537">Gruber, N., 2019: A diagnosis for marine nitrogen fixation. Nature, 566(7743), 191–193.</span></li> <li><span id="fn:r538">Wang, W.-L., J. K. Moore, A.C. Martiny and F.W. Primeau, 2019: Convergent estimates of marine nitrogen fixation. Nature, 566(7743), 205–211, doi:10.1038/s41586-019-0911-2.</span></li> <li><span id="fn:r539">Eichner, M., B. Rost and S.A. Kranz, 2014: Diversity of ocean acidification effects on marine N2 fixers. J. Exp. Mar. Biol. Ecol., 457, 199–207, doi:10.1016/j.jembe.2014.04.015.</span></li> <li><span id="fn:r540">Garcia, N.S., F. Fu, P.N. Sedwick and D.A. Hutchins, 2014: Iron deficiency increases growth and nitrogen-fixation rates of phosphorus-deficient marine cyanobacteria. The Isme Journal, 9, 238, doi:10.1038/ismej.2014.104.</span></li> <li><span id="fn:r541">Gradoville, M.R. et al., 2014: Diversity trumps acidification: Lack of evidence for carbon dioxide enhancement of Trichodesmium community nitrogen or carbon fixation at Station ALOHA. Limnol. Oceanogr., 59(3), 645–659, doi:10.4319/lo.2014.59.3.0645.</span></li> <li><span id="fn:r542">Walworth, N.G. et al., 2016: Mechanisms of increased Trichodesmium fitness under iron and phosphorus co-limitation in the present and future ocean. Nat. Commun., 7, 12081–12081, doi:10.1038/ncomms12081.</span></li> <li><span id="fn:r543">Hong, H. et al., 2017: The complex effects of ocean acidification on the prominent N<sub>2</sub>-fixing cyanobacterium Trichodesmium. Science, 356(6337), 527, doi:10.1126/science.aal2981.</span></li> <li><span id="fn:r544">Luo, Y.-W. et al., 2019: Reduced nitrogenase efficiency dominates response of the globally important nitrogen fixer Trichodesmium to ocean acidification. Nat. Commun., 10(1), 1521, doi:10.1038/s41467-019-09554-7.</span></li> <li><span id="fn:r545">Breitberg, D. et al., 2015: And on Top of All That… Coping with Ocean Acidification in the Midst of Many Stressors. Oceanography, 25(2), 48–61, doi:10.5670/oceanog.2015.31.</span></li> <li><span id="fn:r546">Hutchins, D.A. and P.W. Boyd, 2016: Marine phytoplankton and the changing ocean iron cycle. Nat. Clim. Change, 6(12), 1072–1079, doi:10.1038/NCLIMATE3147.</span></li> <li><span id="fn:r547">O’Brien, P.A., K.M. Morrow, B.L. Willis and D.G. Bourne, 2016: Implications of Ocean Acidification for Marine Microorganisms from the Free-Living to the Host-Associated. Front. Mar. Sci., 3(fiv142), 1029, doi:10.3389/fmars.2016.00047.</span></li> <li><span id="fn:r548">Kwiatkowski, L., O. Aumont and L. Bopp, 2019: Consistent trophic amplification of marine biomass declines under climate change. Global Change Biol., 25(1), 218–229, doi:10.1111/gcb.14468.</span></li> <li><span id="fn:r549">Stock, C.A., J.P. Dunne and J.G. John, 2014: Drivers of trophic amplification of ocean productivity trends in a changing climate. Biogeosciences, 11(24), 7125.</span></li> <li><span id="fn:r550">Stock, C.A., J.P. Dunne and J.G. John, 2014: Drivers of trophic amplification of ocean productivity trends in a changing climate. Biogeosciences, 11(24), 7125.</span></li> <li><span id="fn:r551">Kwiatkowski, L., O. Aumont and L. Bopp, 2019: Consistent trophic amplification of marine biomass declines under climate change. Global Change Biol., 25(1), 218–229, doi:10.1111/gcb.14468.</span></li> <li><span id="fn:r552">Chust, G. et al., 2014: Biomass changes and trophic amplification of plankton in a warmer ocean. Global Change Biol., 20(7), 2124–2139, doi:10.1111/gcb.12562.</span></li> <li><span id="fn:r553">Stock, C.A., J.P. Dunne and J.G. John, 2014: Drivers of trophic amplification of ocean productivity trends in a changing climate. Biogeosciences, 11(24), 7125.</span></li> <li><span id="fn:r554">Kwiatkowski, L., O. Aumont and L. Bopp, 2019: Consistent trophic amplification of marine biomass declines under climate change. Global Change Biol., 25(1), 218–229, doi:10.1111/gcb.14468.</span></li> <li><span id="fn:r555">Sundby, S., K.F. Drinkwater and O.S. Kjesbu, 2016: The North Atlantic Spring-Bloom System—Where the Changing Climate Meets the Winter Dark. Front. Mar. Sci., 3(28), doi:10.3389/fmars.2016.00028.</span></li> <li><span id="fn:r556">Woodworth-Jefcoats, P.A., J.J. Polovina and J.C. Drazen, 2017: Climate change is projected to reduce carrying capacity and redistribute species richness in North Pacific pelagic marine ecosystems. Global Change Biol., 23(3), 1000–1008, doi:10.1111/gcb.13471.</span></li> <li><span id="fn:r557">Mayor, D. J., U. Sommer, K.B. Cook and M.R. Viant, 2015: The metabolic response of marine copepods to environmental warming and ocean acidification in the absence of food. Sci. Rep., 5, 13690, doi:10.1038/srep13690.</span></li> <li><span id="fn:r558">Chapman, A. and S. Darby, 2016: Evaluating sustainable adaptation strategies for vulnerable mega-deltas using system dynamics modelling: Rice agriculture in the Mekong Delta’s An Giang Province, Vietnam. Sci. Total Environ., 559, 326–338, doi:10.1016/j.scitotenv.2016.02.162.</span></li> <li><span id="fn:r559">Weydmann, A., J.E. Søreide, S. Kwasniewski and S. Widdicombe, 2012: Influence of CO2-induced acidification on the reproduction of a key Arctic copepod Calanus glacialis. J. Exp. Mar. Biol. Ecol., 428, 39–42, doi:10.1016/j.jembe.2012.06.002.</span></li> <li><span id="fn:r560">McConville, K. et al., 2013: Effects of elevated CO2 on the reproduction of two calanoid copepods. Mar. Pollut. Bull., 73(2), 428–434, doi:10.1016/j.marpolbul.2013.02.010.</span></li> <li><span id="fn:r561">Cripps, G., P. Lindeque and K.J. Flynn, 2014: Have we been underestimating the effects of ocean acidification in zooplankton? Global Change Biol., 20(11), 3377–3385, doi:10.1111/gcb.12582.</span></li> <li><span id="fn:r562">Alguero-Muniz, M. et al., 2016: Withstanding multiple stressors: ephyrae of the moon jellyfish (Aurelia aurita, Scyphozoa) in a high-temperature, high-CO2 and low-oxygen environment. Mar. Biol., 163(9), doi:10.1007/s00227-016-2958-z.</span></li> <li><span id="fn:r563">Bailey, A. et al., 2016: Early life stages of the Arctic copepod Calanus glacialisare unaffected by increased seawater pCO2. ICES J. Mar. Sci., 74(4), 996-1004 doi:10.1093/icesjms/fsw066.</span></li> <li><span id="fn:r564">Lischka, S., J. Büdenbender, T. Boxhammer and U. Riebesell, 2011: Impact of ocean acidification and elevated temperatures on early juveniles of the polar shelled pteropod Limacina helicina: mortality, shell degradation, and shell growth. Biogeosciences, 8(4), 919–932, doi:10.5194/bg-8-919-2011.</span></li> <li><span id="fn:r565">Cripps, G., P. Lindeque and K.J. Flynn, 2014: Have we been underestimating the effects of ocean acidification in zooplankton? Global Change Biol., 20(11), 3377–3385, doi:10.1111/gcb.12582.</span></li> <li><span id="fn:r566">Alguero-Muniz, M. et al., 2017: Ocean acidification effects on mesozooplankton community development: Results from a long-term mesocosm experiment. PLoS One, 12(4), doi:10.1371/journal.pone.0175851.</span></li> <li><span id="fn:r567">Alguero-Muniz, M. et al., 2017: Ocean acidification effects on mesozooplankton community development: Results from a long-term mesocosm experiment. PLoS One, 12(4), doi:10.1371/journal.pone.0175851.</span></li> <li><span id="fn:r568">Taucher, J. et al., 2017: Influence of ocean acidification on plankton community structure during a winter-to-summer succession: An imaging approach indicates that copepods can benefit from elevated CO2 via indirect food web effects. PLoS One, 12(2), e0169737, doi:10.1371/journal.pone.0169737.</span></li> <li><span id="fn:r569">Caron, D.A. and D.A. Hutchins, 2012: The effects of changing climate on microzooplankton grazing and community structure: drivers, predictions and knowledge gaps. J. Plankton Res., 35(2), 235–252, doi:10.1093/plankt/fbs091.</span></li> <li><span id="fn:r570">Winder, M. et al., 2017: The land–sea interface: A source of high‐quality phytoplankton to support secondary production. Limnol. Oceanogr., 62(S1), S258-S271.</span></li> <li><span id="fn:r571">Boyd, P.W. et al., 2015a: Physiological responses of a Southern Ocean diatom to complex future ocean conditions. Nat. Clim. Change, 6(2), 207–213, doi:10.1038/nclimate2811.</span></li> <li><span id="fn:r572">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r573">Robins, P.E. et al., 2016: Impact of climate change on UK estuaries: A review of past trends and potential projections. Estuar. Coast. Shelf Sci., 169, 119–135, doi:10.1016/j.ecss.2015.12.016.</span></li> <li><span id="fn:r574">Morley, J.W. et al., 2018: Projecting shifts in thermal habitat for 686 species on the North American continental shelf. PLoS One, 13(5), e0196127, doi:10.1371/journal.pone.0196127.</span></li> <li><span id="fn:r575">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r576">Robins, P.E. et al., 2016: Impact of climate change on UK estuaries: A review of past trends and potential projections. Estuar. Coast. Shelf Sci., 169, 119–135, doi:10.1016/j.ecss.2015.12.016.</span></li> <li><span id="fn:r577">Morley, J.W. et al., 2018: Projecting shifts in thermal habitat for 686 species on the North American continental shelf. PLoS One, 13(5), e0196127, doi:10.1371/journal.pone.0196127.</span></li> <li><span id="fn:r578">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r579">Cheung, W.W.L. et al., 2016a: Transform high seas management to build climate resilience in marine seafood supply. Fish Fish., 18(2), 254–263, doi:10.1111/faf.12177.</span></li> <li><span id="fn:r580">Molinos, J.G. et al., 2016: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6(1), 83–88, doi:10.1038/NCLIMATE2769.</span></li> <li><span id="fn:r581">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r582">Molinos, J.G. et al., 2016: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6(1), 83–88, doi:10.1038/NCLIMATE2769.</span></li> <li><span id="fn:r583">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r584">Molinos, J.G. et al., 2016: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6(1), 83–88, doi:10.1038/NCLIMATE2769.</span></li> <li><span id="fn:r585">Cheung, W.W.L., R. Watson and D. Pauly, 2013: Signature of ocean warming in global fisheries catch. Nature, 497, 365, doi:10.1038/nature121.</span></li> <li><span id="fn:r586">Burrows, M.T. et al., 2014: Geographical limits to species-range shifts are suggested by climate velocity. Nature, 507(7493), 492–495, doi:10.1038/nature12976.</span></li> <li><span id="fn:r587">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r588">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r589">Wabnitz, C.C.C. et al., 2018: Climate change impacts on marine biodiversity, fisheries and society in the Arabian Gulf. PLoS One, 13(5), e0194537, doi:10.1371/journal.pone.0194537.</span></li> <li><span id="fn:r590">Cheung, W.W.L., R. Watson and D. Pauly, 2013: Signature of ocean warming in global fisheries catch. Nature, 497, 365, doi:10.1038/nature121.</span></li> <li><span id="fn:r591">Burrows, M.T. et al., 2014: Geographical limits to species-range shifts are suggested by climate velocity. Nature, 507(7493), 492–495, doi:10.1038/nature12976.</span></li> <li><span id="fn:r592">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r593">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r594">Rutterford, L.A. et al., 2015: Future fish distributions constrained by depth in warming seas. Nat. Clim. Change, 5, 569, doi:10.1038/nclimate2607.</span></li> <li><span id="fn:r595">Deutsch, C. et al., 2015: Climate change tightens a metabolic constraint on marine habitats. Science, 348(6239), 1132.</span></li> <li><span id="fn:r596">Pauly, D. and W.W.L. Cheung, 2017: Sound physiological knowledge and principles in modeling shrinking of fishes under climate change. Global Change Biol., 25(2), n/a–n/a, doi:10.1111/gcb.13831.</span></li> <li><span id="fn:r597">Lefort, S. et al., 2015: Spatial and body-size dependent response of marine pelagic communities to projected global climate change. Global Change Biol., 21(1), 154–164, doi:10.1111/gcb.12679.</span></li> <li><span id="fn:r598">Kroeker, K.J. et al., 2013: Impacts of ocean acidification on marine organisms: quantifying sensitivities and interaction with warming. Global Change Biol., 19(6), 1884–1896.</span></li> <li><span id="fn:r599">Heuer, R.M. and M. Grosell, 2014: Physiological impacts of elevated carbon dioxide and ocean acidification on fish. Am. J. Physiol. Regul. Integr. Comp. Physiol., 307(9), R1061–R1084, doi:10.1152/ajpregu.00064.2014.</span></li> <li><span id="fn:r600">Nagelkerken, I. and S.D. Connell, 2015: Global alteration of ocean ecosystem functioning due to increasing human CO2 emissions. PNAS, 112(43), 13272–13277, doi:10.1073/pnas.1510856112.</span></li> <li><span id="fn:r601">Lotze, H.K. et al., 2018: Ensemble projections of global ocean animal biomass with climate change. bioRxiv, 467175, doi:10.1101/467175.</span></li> <li><span id="fn:r602">Lotze, H.K. et al., 2018: Ensemble projections of global ocean animal biomass with climate change. bioRxiv, 467175, doi:10.1101/467175.</span></li> <li><span id="fn:r603">Blanchard, J.L. et al., 2012: Potential consequences of climate change for primary production and fish production in large marine ecosystems. Philos. Trans. Roy. Soc. B., 367(1605), 2979–2989.</span></li> <li><span id="fn:r604">Fernandes, J.A. et al., 2013: Modelling the effects of climate change on the distribution and production of marine fishes: accounting for trophic interactions in a dynamic bioclimate envelope model. Global Change Biol., 19(8), 2596–2607, doi:10.1111/gcb.12231.</span></li> <li><span id="fn:r605">Carozza, D.A., D. Bianchi and E.D. Galbraith, 2016: The ecological module of BOATS-1.0: a bioenergetically constrained model of marine upper trophic levels suitable for studies of fisheries and ocean biogeochemistry. Geosci. Model Dev., 9(4), 1545–1565, doi:10.5194/gmd-9-1545-2016.</span></li> <li><span id="fn:r606">Cheung, W.W.L. et al., 2016a: Transform high seas management to build climate resilience in marine seafood supply. Fish Fish., 18(2), 254–263, doi:10.1111/faf.12177.</span></li> <li><span id="fn:r607">Bryndum-Buchholz, A. et al., 2019: Twenty-first-century climate change impacts on marine animal biomass and ecosystem structure across ocean basins. Global Change Biol., 25(2), 459–472, doi:10.1111/gcb.14512.</span></li> <li><span id="fn:r608">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r609">Boyd, P.W. et al., 2015a: Physiological responses of a Southern Ocean diatom to complex future ocean conditions. Nat. Clim. Change, 6(2), 207–213, doi:10.1038/nclimate2811.</span></li> <li><span id="fn:r610">Fu, W., J.T. Randerson and J.K. Moore, 2016: Climate change impacts on net primary production (NPP) and export production (EP) regulated by increasing stratification and phytoplankton community structure in the CMIP5 models. Biogeosciences, 13(18), 5151–5170, doi:10.5194/bg-13-5151-2016.</span></li> <li><span id="fn:r611">Laufkötter, C. et al., 2016: Projected decreases in future marine export production: the role of the carbon flux through the upper ocean ecosystem. Biogeosciences, 13(13), 4023–4047, doi:10.5194/bg-13-4023-2016.</span></li> <li><span id="fn:r612">Lotze, H.K. et al., 2018: Ensemble projections of global ocean animal biomass with climate change. bioRxiv, 467175, doi:10.1101/467175.</span></li> <li><span id="fn:r613">Boyd, P.W. et al., 2013: Marine Phytoplankton Temperature versus Growth Responses from Polar to Tropical Waters – Outcome of a Scientific Community-Wide Study. PLoS One, 8(5), e63091, doi:10.1371/journal.pone.0063091.</span></li> <li><span id="fn:r614">Maranon, E. et al., 2014: Resource Supply Overrides Temperature as a Controlling Factor of Marine Phytoplankton Growth. PLoS One, 9(6), doi:10.1371/journal.pone.0099312.</span></li> <li><span id="fn:r615">Engel, J. et al., 2014: Towards the Disease Biomarker in an Individual Patient Using Statistical Health Monitoring. PLoS One, 9(4), e92452, doi:10.1371/journal.pone.0092452.</span></li> <li><span id="fn:r616">Riebesell, U. et al., 2007: Enhanced biological carbon consumption in a high CO2 ocean. Nature, 450, 545, doi:10.1038/nature06267.</span></li> <li><span id="fn:r617">Seebacher, F., C.R. White and C.E. Franklin, 2014: Physiological plasticity increases resilience of ectothermic animals to climate change. Nat. Clim. Change, 5, 61, doi:10.1038/nclimate2457.</span></li> <li><span id="fn:r618">Moràn, X.A.G., Á. Lòpez-Urrutia, A. Calvo-DÍAz and W.K.W. Li, 2010: Increasing importance of small phytoplankton in a warmer ocean. Global Change Biol., 16(3), 1137–1144, doi:10.1111/j.1365-2486.2009.01960.x.</span></li> <li><span id="fn:r619">Li, H. et al., 2009: The Sequence Alignment/Map format and SAMtools. Bioinformatics, 25(16), 2078–2079, doi:10.1093/bioinformatics/btp352.</span></li> <li><span id="fn:r620">Dutkiewicz, S., J.R. Scott and M. Follows, 2013a: Winners and losers: Ecological and biogeochemical changes in a warming ocean. Global Biogeochem. Cy., 27(2), 463–477.</span></li> <li><span id="fn:r621">Tréguer, P. et al., 2018: Influence of diatom diversity on the ocean biological carbon pump. Nat. Geosci., 11(1), 27–37, doi:10.1038/s41561-017-0028-x.</span></li> <li><span id="fn:r622">Sett, S. et al., 2014: Temperature Modulates Coccolithophorid Sensitivity of Growth, Photosynthesis and Calcification to Increasing Seawater pCO(2). PLoS One, 9(2), doi:10.1371/journal.pone.0088308.</span></li> <li><span id="fn:r623">Burrell, T.J., E.W. Maas, D.A. Hulston and C.S. Law, 2017: Variable response to warming and ocean acidification by bacterial processes in different plankton communities. Aqut. Microb. Ecol., 79(1), 49–62.</span></li> <li><span id="fn:r624">Bopp, L. et al., 2013: Multiple stressors of ocean ecosystems in the 21st century: projections with CMIP5 models. Biogeosciences, 10(10), 6225–6245, doi:10.5194/bg-10-6225-2013.</span></li> <li><span id="fn:r625">Boxhammer, T. et al., 2018: Enhanced transfer of organic matter to higher trophic levels caused by ocean acidification and its implications for export production: A mass balance approach. PLoS One, 13(5), e0197502, doi:10.1371/journal.pone.0197502.</span></li> <li><span id="fn:r626">Rose, J.M. and D.A. Caron, 2007: Does low temperature constrain the growth rates of heterotrophic protists? Evidence and implications for algal blooms in cold waters. Limnol. Oceanogr., 52(2), 886–895.</span></li> <li><span id="fn:r627">Isla, J.A., K. Lengfellner and U. Sommer, 2008: Physiological response of the copepod Pseudocalanus sp in the Baltic Sea at different thermal scenarios. Global Change Biol., 14(4), 895–906, doi:10.1111/j.1365-2486.2008.01531.x.</span></li> <li><span id="fn:r628">Edwards, M. et al., 2013: Marine Ecosystem Response to the Atlantic Multidecadal Oscillation. PLoS One, 8(2), doi:10.1371/journal.pone.0057212.</span></li> <li><span id="fn:r629">Taucher, J., L.T. Bach, U. Riebesell and A. Oschlies, 2014: The viscosity effect on marine particle flux: A climate relevant feedback mechanism. Global Biogeochem. Cy., 28(4), 415–422, doi:10.1002/2013GB004728.</span></li> <li><span id="fn:r630">Almén, A.-K., A. Vehmaa, A. Brutemark and J. Engström-Öst, 2014: Coping with climate change? Copepods experience drastic variations in their physicochemical environment on a diurnal basis. J. Exp. Mar. Biol. Ecol., 460, 120–128, doi:10.1016/j.jembe.2014.07.001.</span></li> <li><span id="fn:r631">Berge, J. et al., 2014: Arctic complexity: a case study on diel vertical migration of zooplankton. J. Plankton Res., 36(5), 1279–1297, doi:10.1093/plankt/fbu059.</span></li> <li><span id="fn:r632">Boyd, P.W. et al., 2015a: Physiological responses of a Southern Ocean diatom to complex future ocean conditions. Nat. Clim. Change, 6(2), 207–213, doi:10.1038/nclimate2811.</span></li> <li><span id="fn:r633">Marsay, C.M. et al., 2015: Attenuation of sinking particulate organic carbon flux through the mesopelagic ocean. PNAS, 112(4), 1089.</span></li> <li><span id="fn:r634">DeVries, T., M. Holzer and F. Primeau, 2017: Recent increase in oceanic carbon uptake driven by weaker upper-ocean overturning. Nature, 542(7640), 215.</span></li> <li><span id="fn:r635">Boyd, P.W. et al., 2015a: Physiological responses of a Southern Ocean diatom to complex future ocean conditions. Nat. Clim. Change, 6(2), 207–213, doi:10.1038/nclimate2811.</span></li> <li><span id="fn:r636">Marsay, C.M. et al., 2015: Attenuation of sinking particulate organic carbon flux through the mesopelagic ocean. PNAS, 112(4), 1089.</span></li> <li><span id="fn:r637">Guidi, L. et al., 2016: Plankton networks driving carbon export in the oligotrophic ocean. Nature, 532, 465, doi:10.1038/nature16942.</span></li> <li><span id="fn:r638">DeVries, T., M. Holzer and F. Primeau, 2017: Recent increase in oceanic carbon uptake driven by weaker upper-ocean overturning. Nature, 542(7640), 215.</span></li> <li><span id="fn:r639">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r640">Chust, G. et al., 2014: Biomass changes and trophic amplification of plankton in a warmer ocean. Global Change Biol., 20(7), 2124–2139, doi:10.1111/gcb.12562.</span></li> <li><span id="fn:r641">Stock, C.A., J.P. Dunne and J.G. John, 2014: Drivers of trophic amplification of ocean productivity trends in a changing climate. Biogeosciences, 11(24), 7125.</span></li> <li><span id="fn:r642">Wohlers-Zöllner, J. et al., 2011: Temperature and nutrient stoichiometry interactively modulate organic matter cycling in a pelagic algal–bacterial community. Limnol. Oceanogr., 56(2), 599–610, doi:10.4319/lo.2011.56.2.0599.</span></li> <li><span id="fn:r643">Endres, S. et al., 2014: Stimulated Bacterial Growth under Elevated pCO2: Results from an Off-Shore Mesocosm Study. PLoS One, 9(6), e99228, doi:10.1371/journal.pone.0099228.</span></li> <li><span id="fn:r644">Bendtsen, J., J. Mortensen, K. Lennert and S. Rysgaard, 2015: Heat sources for glacial ice melt in a west Greenland tidewater outlet glacier fjord: The role of subglacial freshwater discharge. Geophys. Res. Lett., 42(10), 4089–4095, doi:10.1002/2015GL063846.</span></li> <li><span id="fn:r645">Piontek, J., M. Sperling, E.-M. Noethig and A. Engel, 2015: Multiple environmental changes induce interactive effects on bacterial degradation activity in the Arctic Ocean. Limnol. Oceanogr., 60(4), 1392–1410, doi:10.1002/lno.10112.</span></li> <li><span id="fn:r646">Burd, A.B. and G.A. Jackson, 2002: Modeling steady-state particle size spectra. Environ. Sci. Technol., 36(3), 323–327.</span></li> <li><span id="fn:r647">Ikeda, T., Y. Kanno, K. Ozaki and A. Shinada, 2001: Metabolic rates of epipelagic marine copepods as a function of body mass and temperature. Mar. Biol., 139(3), 587–596, doi:10.1007/s002270100608.</span></li> <li><span id="fn:r648">Rykaczewski, R.R. and J.P. Dunne, 2010: Enhanced nutrient supply to the California Current Ecosystem with global warming and increased stratification in an earth system model. Geophys. Res. Lett., 37(21), L21606 . doi:10.1029/2010GL045019.</span></li> <li><span id="fn:r649">Cocco, V. et al., 2013: Oxygen and indicators of stress for marine life in multi-model global warming projections. Biogeosciences, 10(3), 1849–1868, doi:10.5194/bg-10-1849-2013.</span></li> <li><span id="fn:r650">Hofmann, M. and H.-J. Schellnhuber, 2009: Oceanic acidification affects marine carbon pump and triggers extended marine oxygen holes. PNAS, 106(9), 3017.</span></li> <li><span id="fn:r651">Arístegui, J., M. Gasol Josep, M. Duarte Carlos and J. Herndld Gerhard, 2009: Microbial oceanography of the dark ocean’s pelagic realm. Limnol. Oceanogr., 54(5), 1501–1529, doi:10.4319/lo.2009.54.5.1501.</span></li> <li><span id="fn:r652">Legendre, L. et al., 2015: The microbial carbon pump concept: Potential biogeochemical significance in the globally changing ocean. Progr. Oceanogr., 134, 432–450, doi:10.1016/j.pocean.2015.01.008.</span></li> <li><span id="fn:r653">DeVries, T., M. Holzer and F. Primeau, 2017: Recent increase in oceanic carbon uptake driven by weaker upper-ocean overturning. Nature, 542(7640), 215.</span></li> <li><span id="fn:r654">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r655">Boyd, P.W. et al., 2019: Multi-faceted particle pumps drive carbon sequestration in the ocean. Nature, 568(7752), 327–335, doi:10.1038/s41586-019-1098-2.</span></li> <li><span id="fn:r656">Bianchi, D., C. Stock, E.D. Galbraith and J.L. Sarmiento, 2013: Diel vertical migration: Ecological controls and impacts on the biological pump in a one-dimensional ocean model. Global Biogeochem. Cy., 27(2), 478–491, doi:10.1002/gbc.20031.</span></li> <li><span id="fn:r657">Davison, P.C., D.M. Checkley, J.A. Koslow and J. Barlow, 2013: Carbon export mediated by mesopelagic fishes in the northeast Pacific Ocean. Progr. Oceanogr., 116, 14–30, doi:10.1016/j.pocean.2013.05.013.</span></li> <li><span id="fn:r658">Hudson, J.M. et al., 2014: Myctophid feeding ecology and carbon transport along the northern Mid-Atlantic Ridge. Deep sea Res. Pt. I, 93, 104–116, doi:10.1016/j.dsr.2014.07.002.</span></li> <li><span id="fn:r659">Jónasdóttir, S.H., A.W. Visser, K. Richardson and M.R. Heath, 2015: Seasonal copepod lipid pump promotes carbon sequestration in the deep North Atlantic. PNAS, 112(39), 12122.</span></li> <li><span id="fn:r660">Aumont, O., O. Maury, S. Lefort and L. Bopp, 2018: Evaluating the Potential Impacts of the Diurnal Vertical Migration by Marine Organisms on Marine Biogeochemistry. Global Biogeochem. Cy., 32(11), 1622–1643, doi:10.1029/2018GB005886.</span></li> <li><span id="fn:r661">Gorgues, T., O. Aumont and L. Memery, 2019: Simulated Changes in the Particulate Carbon Export Efficiency due to Diel Vertical Migration of Zooplankton in the North Atlantic. Geophys. Res. Lett., 46(10); 5387-5395, doi:10.1029/2018GL081748.</span></li> <li><span id="fn:r662">Proud, R., M.J. Cox and A.S. Brierley, 2017: Biogeography of the Global Ocean’s Mesopelagic Zone. Curr Biol, 27(1), 113–119, doi:10.1016/j.cub.2016.11.003.</span></li> <li><span id="fn:r663">Gilly, W.F., J.M. Beman, S.Y. Litvin and B.H. Robison, 2013: Oceanographic and Biological Effects of Shoaling of the Oxygen Minimum Zone. Annu. Rev. Mar. Sci., 5(1), 393–420, doi:10.1146/annurev-marine-120710-100849.</span></li> <li><span id="fn:r664">Netburn, A.N. and J. Anthony Koslow, 2015: Dissolved oxygen as a constraint on daytime deep scattering layer depth in the southern California current ecosystem. Deep-Sea Res. Pt. I, 104, 149–158, doi:10.1016/j.dsr.2015.06.006.</span></li> <li><span id="fn:r665">Koslow, J.A., E.F. Miller and J.A. McGowan, 2015: Dramatic declines in coastal and oceanic fish communities off California. Mar. Ecol. Prog. Ser., 538, 221–227.</span></li> <li><span id="fn:r666">Stewart, J.S. et al., 2014: Combined climate- and prey-mediated range expansion of Humboldt squid (Dosidicus gigas), a large marine predator in the California Current System. Global Change Biol., 20(6), 1832–1843, doi:10.1111/gcb.12502.</span></li> <li><span id="fn:r667">Stramma, L. et al., 2011: Expansion of oxygen minimum zones may reduce available habitat for tropical pelagic fishes. Nat. Clim. Change, 2, 33, doi:10.1038/nclimate1304.</span></li> <li><span id="fn:r668">Brown, A. and S. Thatje, 2014: The effects of changing climate on faunal depth distributions determine winners and losers. Global Change Biol., 21(1), 173–180, doi:10.1111/gcb.12680.</span></li> <li><span id="fn:r669">Rogers, A.D., 2015: Environmental Change in the Deep Ocean. Annu. Rev. Environ. Resourc., Vol 41, 40(1), 1–38, doi:10.1146/annurev-environ-102014-021415.</span></li> <li><span id="fn:r670">Cavan, E.L., M. Trimmer, F. Shelley and R. Sanders, 2017: Remineralization of particulate organic carbon in an ocean oxygen minimum zone. Nat. Commun., 8, 14847, doi:10.1038/ncomms14847.</span></li> <li><span id="fn:r671">Marsay, C.M. et al., 2015: Attenuation of sinking particulate organic carbon flux through the mesopelagic ocean. PNAS, 112(4), 1089.</span></li> <li><span id="fn:r672">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r673">Levin, L.A. and M. Sibuet, 2012: Understanding Continental Margin Biodiversity: A New Imperative. Annu. Rev. Mar. Sci., 4(1), 79–112, doi:10.1146/annurev-marine-120709-142714.</span></li> <li><span id="fn:r674">Boyd, P.W. et al., 2019: Multi-faceted particle pumps drive carbon sequestration in the ocean. Nature, 568(7752), 327–335, doi:10.1038/s41586-019-1098-2.</span></li> <li><span id="fn:r675">Tyler, P.A et al., (eds.), 2003: Ecosystems of the Deep Ocean. Elsevier Science, Amsterdam, 582 pp, eBook ISBN: 9780080494654.</span></li> <li><span id="fn:r676">Frigstad, H. et al., 2015: Links between surface productivity and deep ocean particle flux at the Porcupine Abyssal Plain sustained observatory. Biogeosciences, 12(19), 5885–5897, doi:10.5194/bg-12-5885-2015.</span></li> <li><span id="fn:r677">Thomas, N. et al., 2017: Distribution and drivers of global mangrove forest change, 1996–2010. PLoS One, 12(6), e0179302, doi:10.1371/journal.pone.0179302.</span></li> <li><span id="fn:r678">Smith, K.L.J. et al., 2013: Deep ocean communities impacted by changing climate over 24 y in the abyssal northeast Pacific Ocean. PNAS, 110(49), 19838–19841, doi:10.1073/pnas.1315447110.</span></li> <li><span id="fn:r679">Hartman, S.E. et al., 2015: Biogeochemical variations at the Porcupine Abyssal Plain sustained Observatory in the northeast Atlantic Ocean, from weekly to inter-annual timescales. Biogeosciences, 12(3), 845–853, doi:10.5194/bg-12-845-2015.</span></li> <li><span id="fn:r680">Soltwedel, T. et al., 2016: Natural variability or anthropogenically-induced variation? Insights from 15 years of multidisciplinary observations at the arctic marine LTER site HAUSGARTEN. Ecol. Indic., 65, 89–102, doi:10.1016/j.ecolind.2015.10.001.</span></li> <li><span id="fn:r681">Thomas, N. et al., 2017: Distribution and drivers of global mangrove forest change, 1996–2010. PLoS One, 12(6), e0179302, doi:10.1371/journal.pone.0179302.</span></li> <li><span id="fn:r682">Mora, C. et al., 2013: The projected timing of climate departure from recent variability. Nature, 502(7470), 183–7, doi:10.1038/nature12540.</span></li> <li><span id="fn:r683">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r684">Smith, K.L. et al., 2018: Episodic organic carbon fluxes from surface ocean to abyssal depths during long-term monitoring in NE Pacific. PNAS, 115(48), 12235, doi:10.1073/pnas.1814559115.</span></li> <li><span id="fn:r685">Smith, C.R. et al., 2008: Abyssal food limitation, ecosystem structure and climate change. Trends Ecol. Evol., 23(9), 518–528, doi:10.1016/j.tree.2008.05.002.</span></li> <li><span id="fn:r686">Thomas, N. et al., 2017: Distribution and drivers of global mangrove forest change, 1996–2010. PLoS One, 12(6), e0179302, doi:10.1371/journal.pone.0179302.</span></li> <li><span id="fn:r687">Frischknecht, M., M. Münnich and N. Gruber, 2018: Origin, Transformation, and Fate: The Three-Dimensional Biological Pump in the California Current System. J. Geophys. Res-Oceans, 123(11), 7939–7962, doi:10.1029/2018JC013934.</span></li> <li><span id="fn:r688">Smith, K.L.J. et al., 2013: Deep ocean communities impacted by changing climate over 24 y in the abyssal northeast Pacific Ocean. PNAS, 110(49), 19838–19841, doi:10.1073/pnas.1315447110.</span></li> <li><span id="fn:r689">Wei, C.-L. et al., 2011: Global Patterns and Predictions of Seafloor Biomass Using Random Forests. PLoS One, 5(12), e15323, doi:10.1371/journal.pone.0015323.</span></li> <li><span id="fn:r690">Hartman, S.E. et al., 2015: Biogeochemical variations at the Porcupine Abyssal Plain sustained Observatory in the northeast Atlantic Ocean, from weekly to inter-annual timescales. Biogeosciences, 12(3), 845–853, doi:10.5194/bg-12-845-2015.</span></li> <li><span id="fn:r691">Rowe, G.T., J. Morse, C. Nunnally and G.S. Boland, 2008: Sediment community oxygen consumption in the deep Gulf of Mexico. Deep-Sea Res. Pt. II, 55(24), 2686–2691, doi:10.1016/j.dsr2.2008.07.018.</span></li> <li><span id="fn:r692">Smith, K.L., C.L. Huffard, A.D. Sherman and H. A. Ruhl, 2016a: Decadal Change in Sediment Community Oxygen Consumption in the Abyssal Northeast Pacific. Aquat. Geochem., 22(5), 401–417, doi:10.1007/s10498-016-9293-3.</span></li> <li><span id="fn:r693">Dunlop, K.M. et al., 2016: Carbon cycling in the deep eastern North Pacific benthic food web: Investigating the effect of organic carbon input. Limnol. Oceanogr., 61(6), 1956–1968, doi:10.1002/lno.10345.</span></li> <li><span id="fn:r694">Gage, J.D., 2003: Food inputs, utilization, carbon flow and energetics. In: Ecosystems of the Deep Sea [Tyler, P.A. (ed.)]. Elsevier, Amsterdam, Volume 28, 1st eddition, pp. 313–380. ISBN: 9780080494654</span></li> <li><span id="fn:r695">Hoegh-Guldberg, O. et al., 2014: The Ocean. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part B: Regional Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Barros, V.R., C.B. Field, D.J. Dokken, M.D. Mastrandrea, K.J. Mach, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L.L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 1655–1731 pp., ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r696">Gambi, C. et al., 2017: Functional response to food limitation can reduce the impact of global change in the deep‐sea benthos. Global Ecol. Biogeogr., 26(9), 1008–1021, doi:10.1111/geb.12608.</span></li> <li><span id="fn:r697">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r698">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r699">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r700">Brown, J.H. et al., 2004: Toward a Metabolic Theory of Ecology. Ecology, 85(7), 1771–1789, doi:10.1890/03-9000.</span></li> <li><span id="fn:r701">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r702">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r703">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r704">Smith, C.R. et al., 2008: Abyssal food limitation, ecosystem structure and climate change. Trends Ecol. Evol., 23(9), 518–528, doi:10.1016/j.tree.2008.05.002.</span></li> <li><span id="fn:r705">Smith, K.L.J. et al., 2009: Climate, carbon cycling, and deep-ocean ecosystems. PNAS, 106(46), 19211–19218, doi:10.1073/pnas.0908322106.</span></li> <li><span id="fn:r706">Tittensor, D.P. et al., 2011: Species-energy relationships in deep sea molluscs. Biol. Lett., 7(5), 718–722, doi:10.1098/rsbl.2010.1174.</span></li> <li><span id="fn:r707">Yool, A. et al., 2013: Climate change and ocean acidification impacts on lower trophic levels and the export of organic carbon to the deep ocean. Biogeosciences, 10(9), 5831–5854, doi:10.5194/bg-10-5831-2013.</span></li> <li><span id="fn:r708">Rogers, A.D., 2015: Environmental Change in the Deep Ocean. Annu. Rev. Environ. Resourc., Vol 41, 40(1), 1–38, doi:10.1146/annurev-environ-102014-021415.</span></li> <li><span id="fn:r709">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r710">Yool, A. et al., 2017: Big in the benthos: Future change of seafloor community biomass in a global, body size-resolved model. Global Change Biol., 23(9), 3554–3566, doi:10.1111/gcb.13680.</span></li> <li><span id="fn:r711">FAO, 2019: Deep-ocean climate change impacts on habitat, fish and fisheries [Levin, L.A., M. Baker and A. Thompson (eds.)]. 638, FAO, Rome, 186 pp.</span></li> <li><span id="fn:r712">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r713">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r714">Smith, C.R. et al., 2008: Abyssal food limitation, ecosystem structure and climate change. Trends Ecol. Evol., 23(9), 518–528, doi:10.1016/j.tree.2008.05.002.</span></li> <li><span id="fn:r715">Harris, P.T., M. Macmillan-Lawler, J. Rupp and E.K. Baker, 2014: Geomorphology of the oceans. Mar. Geol., 352(Supplement C), 4–24.</span></li> <li><span id="fn:r716">Rowden, A.A. et al., 2010: Paradigms in seamount ecology: fact, fiction and future. Mar. Ecol., 31(s1), 226–241, doi:10.1111/j.1439-0485.2010.00400.x.</span></li> <li><span id="fn:r717">Levin, L.A. and M. Sibuet, 2012: Understanding Continental Margin Biodiversity: A New Imperative. Annu. Rev. Mar. Sci., 4(1), 79–112, doi:10.1146/annurev-marine-120709-142714.</span></li> <li><span id="fn:r718">Fernandez-Arcaya, U. et al., 2017: Ecological Role of Submarine Canyons and Need for Canyon Conservation: A Review. Front. Mar. Sci., 4, 69, doi:10.3389/fmars.2017.00005.</span></li> <li><span id="fn:r719">Levin, L.A. and M. Sibuet, 2012: Understanding Continental Margin Biodiversity: A New Imperative. Annu. Rev. Mar. Sci., 4(1), 79–112, doi:10.1146/annurev-marine-120709-142714.</span></li> <li><span id="fn:r720">Levin, L.A., 2018: Manifestation, Drivers, and Emergence of Open Ocean Deoxygenation. Annu. Rev. Mar. Sci., 10(1), 229–260, doi:10.1146/annurev-marine-121916-063359.</span></li> <li><span id="fn:r721">Goericke, R., S.J. Bograd and D.S. Grundle, 2015: Denitrification and flushing of the Santa Barbara Basin bottom waters. Deep Sea Res. Pt. II, 112, 53–60, doi:10.1016/j.dsr2.2014.07.012.</span></li> <li><span id="fn:r722">Dickson, A.J., A.S. Cohen and A.L. Coe, 2012: Seawater oxygenation during the Paleocene-Eocene Thermal Maximum. Geology, 40(7), 639–642, doi:10.1130/G32977.1.</span></li> <li><span id="fn:r723">Moffitt, S.E., T.M. Hill, P.D. Roopnarine and J. P. Kennett, 2015: Response of seafloor ecosystems to abrupt global climate change. PNAS, 112(15), 4684–4689, doi:10.1073/pnas.1417130112.</span></li> <li><span id="fn:r724">Gallo, N.D. and L.A. Levin, 2016: Fish Ecol. Evol. in the World’s Oxygen Minimum Zones and Implications of Ocean Deoxygenation. Adv. Mar. Biol., Vol, 74, 117–198, doi:10.1016/bs.amb.2016.04.001.</span></li> <li><span id="fn:r725">Levin, L.A., 2003: Oxygen minimum zone benthos: Adaptation and community response to hypoxia. Oceanogr. Mar. Biol., 41, 1–45.</span></li> <li><span id="fn:r726">Gallo, N.D. and L.A. Levin, 2016: Fish Ecol. Evol. in the World’s Oxygen Minimum Zones and Implications of Ocean Deoxygenation. Adv. Mar. Biol., Vol, 74, 117–198, doi:10.1016/bs.amb.2016.04.001.</span></li> <li><span id="fn:r727">Sperling, E.A., C.A. Frieder and L.A. Levin, 2016: Biodiversity response to natural gradients of multiple stressors on continental margins. Proc. Biol. Sci., 283(1829), doi:10.1098/rspb.2016.0637.</span></li> <li><span id="fn:r728">Bernhard, J.M. and C.E. Reimers, 1991: Benthic foraminiferal population fluctuations related to anoxia: Santa Barbara Basin. Biogeochemistry, 15(2), 127–149, doi:10.1007/BF00003221.</span></li> <li><span id="fn:r729">Gooday, A.J., J.M. Bernhard, L.A. Levin and S.B. Suhr, 2000: Foraminifera in the Arabian Sea oxygen minimum zone and other oxygen-deficient settings: taxonomic composition, diversity, and relation to metazoan faunas. Deep Sea Res. Pt. II, 47(1), 25–54, doi:10.1016/S0967-0645(99)00099-5.</span></li> <li><span id="fn:r730">Moffitt, S.E. et al., 2014: Vertical oxygen minimum zone oscillations since 20 ka in Santa Barbara Basin: A benthic foraminiferal community perspective. Paleoceanography, 29(1), 44–57, doi:10.1002/2013pa002483.</span></li> <li><span id="fn:r731">Sato, K.N., L.A. Levin and K. Schiff, 2017: Habitat compression and expansion of sea urchins in response to changing climate conditions on the California continental shelf and slope (1994-2013). Deep Sea Res. Pt. II, 137, 377–389, doi:10.1016/j.dsr2.2016.08.012.</span></li> <li><span id="fn:r732">Sato KN, Andersson AJ, Day JMD, Taylor JRA, Frank MB, Jung J-Y, McKittrick J and Levin LA (2018) Response of Sea Urchin Fitness Traits to Environmental Gradients Across the Southern California Oxygen Minimum Zone. Front. Mar. Sci. 5:258. doi: 10.3389/fmars.2018.00258</span></li> <li><span id="fn:r733">Diaz, R.J. and R. Rosenberg, 1995: Marine benthic hypoxia: a review of its ecological effects and the behavioural responses of benthic macrofauna. Oceanogr. Mar. Biol., 33, 245–03.</span></li> <li><span id="fn:r734">Levin, L.A., 2003: Oxygen minimum zone benthos: Adaptation and community response to hypoxia. Oceanogr. Mar. Biol., 41, 1–45.</span></li> <li><span id="fn:r735">Middelburg, J.J. and L.A. Levin, 2009: Coastal hypoxia and sediment biogeochemistry. Biogeosciences, 6(7), 1273–1293, doi:10.5194/bg-6-1273-2009.</span></li> <li><span id="fn:r736">Sturdivant, S.K., R.J. Díaz and G.R. Cutter, 2012: Bioturbation in a Declining Oxygen Environment, in situ Observations from Wormcam. PLoS One, 7(4), e34539, doi:10.1371/journal.pone.0034539.</span></li> <li><span id="fn:r737">Sperling, E.A. et al., 2013: Oxygen, ecology, and the Cambrian radiation of animals. PNAS, 110(33), 13446–13451, doi:10.1073/pnas.1312778110.</span></li> <li><span id="fn:r738">Woulds, C. et al., 2009: The short-term fate of organic carbon in marine sediments: Comparing the Pakistan margin to other regions. Deep Sea Res. Pt. II, 56(6–7), 393–402, doi:10.1016/j.dsr2.2008.10.008.</span></li> <li><span id="fn:r739">Levin, L.A. et al., 2013: Macrofaunal colonization across the Indian margin oxygen minimum zone. Biogeosciences, 10(11), 7161–7177, doi:10.5194/bg-10-7161-2013.</span></li> <li><span id="fn:r740">Smith, B., I. Burton, R. Klein and J. Wandel, 2000: An anatomy of adaptation to climate change and variability. Clim. Change, 45(1), 223–251, doi:10.1023/A:1005661622966.</span></li> <li><span id="fn:r741">Levin, L.A. and P.K. Dayton, 2009: Ecological theory and continental margins: where shallow meets deep. Trends Ecol. Evol., 24(11), 606–617, doi:10.1016/j.tree.2009.04.012.</span></li> <li><span id="fn:r742">Deutsch, C. et al., 2011: Climate-Forced Variability of Ocean Hypoxia. Science, 333(6040), 336.</span></li> <li><span id="fn:r743">Taylor, J.R. et al., 2014: Physiological effects of environmental acidification in the deep sea urchin Strongylocentrotus fragilis. Biogeosciences, 11(5), 1413–1423, doi:10.5194/bg-11-1413-2014.</span></li> <li><span id="fn:r744">Dissard, D., G. Nehrke, G. J. Reichart and J. Bijma, 2010: Impact of seawater CO2 on calcification and Mg/Ca and Sr/Ca ratios in benthic foraminifera calcite: results from culturing experiments with Ammonia tepida. Biogeosciences, 7(1), 81–93, doi:10.5194/bg-7-81-2010.</span></li> <li><span id="fn:r745">Haynert, K. et al., 2011: Biometry and dissolution features of the benthic foraminifer Ammonia aomoriensis at high pCO2. Mar. Ecol. Prog. Ser., 432, 53–67.</span></li> <li><span id="fn:r746">Keul, N., G. Langer, L.J. de Nooijer and J. Bijma, 2013: Effect of ocean acidification on the benthic foraminifera Ammonia sp. is caused by a decrease in carbonate ion concentration. Biogeosciences, 10(10), 6185–6198, doi:10.5194/bg-10-6185-2013.</span></li> <li><span id="fn:r747">McIntyre-Wressnig, A., J.M. Bernhard, J.C. Wit and D.C. McCorkle, 2014: Ocean acidification not likely to affect the survival and fitness of two temperate benthic foraminiferal species: results from culture experiments. J. Foramin. Res., 44(4), 341–351.</span></li> <li><span id="fn:r748">Wit, J.C., M.M. Davis, D.C. McCorkle and J.M. Bernhard, 2016: A short-term survival experiment assessing impacts of ocean acidification and hypoxia on the benthic foraminifer Globobulimina turgida. J. Foramin. Res., 46(1), 25–33.</span></li> <li><span id="fn:r749">Wit, J.C., M.M. Davis, D.C. McCorkle and J.M. Bernhard, 2016: A short-term survival experiment assessing impacts of ocean acidification and hypoxia on the benthic foraminifer Globobulimina turgida. J. Foramin. Res., 46(1), 25–33.</span></li> <li><span id="fn:r750">Webster, N.S. et al., 2016: Host-associated coral reef microbes respond to the cumulative pressures of ocean warming and ocean acidification. Sci. Rep., 6(1), doi:10.1038/srep19324.</span></li> <li><span id="fn:r751">van Dijk, I. et al., 2017: Combined Impacts of Ocean Acidification and Dysoxia On Survival and Growth of Four Agglutinating Foraminifera. J. Foramin. Res., 47(3), 294–303.</span></li> <li><span id="fn:r752">Taylor, J.R. et al., 2014: Physiological effects of environmental acidification in the deep sea urchin Strongylocentrotus fragilis. Biogeosciences, 11(5), 1413–1423, doi:10.5194/bg-11-1413-2014.</span></li> <li><span id="fn:r753">Sato KN, Andersson AJ, Day JMD, Taylor JRA, Frank MB, Jung J-Y, McKittrick J and Levin LA (2018) Response of Sea Urchin Fitness Traits to Environmental Gradients Across the Southern California Oxygen Minimum Zone. Front. Mar. Sci. 5:258. doi: 10.3389/fmars.2018.00258</span></li> <li><span id="fn:r754">Danovaro, R. et al., 2001: Deep sea ecosystem response to climate changes: the eastern Mediterranean case study. Trends Ecol. Evol., 16(9), 505–510, doi:10.1016/S0169-5347(01)02215-7.</span></li> <li><span id="fn:r755">Danovaro, R., A. Dell’Anno and A. Pusceddu, 2004: Biodiversity response to climate change in a warm deep sea. Ecol. Lett., 7(9), 821–828, doi:10.1111/j.1461-0248.2004.00634.x.</span></li> <li><span id="fn:r756">Yodnarasri, S. et al., 2008: Is there any seasonal variation in marine nematodes within the sediments of the intertidal zone? Mar. Pollut. Bull., 57(1), 149–154, doi:10.1016/j.marpolbul.2008.04.016.</span></li> <li><span id="fn:r757">Barry, J.P. et al., 2004: Effects of Direct Ocean CO2 Injection on Deep sea Meiofauna. J. Oceanogr., 60(4), 759–766, doi:10.1007/s10872-004-5768-8.</span></li> <li><span id="fn:r758">Fleeger, J.W. et al., 2006: Simulated sequestration of anthropogenic carbon dioxide at a deep sea site: Effects on nematode abundance and biovolume. Deep sea Res. Pt. I, 53(7), 1135–1147, doi:10.1016/j.dsr.2006.05.007.</span></li> <li><span id="fn:r759">Fleeger, J.W. et al., 2010: The response of nematodes to deep sea CO2 sequestration: A quantile regression approach. Deep sea Res. Pt. I, 57(5), 696–707, doi:10.1016/j.dsr.2010.03.003.</span></li> <li><span id="fn:r760">Gobler, C.J. and H. Baumann, 2016: Hypoxia and acidification in ocean ecosystems: coupled dynamics and effects on marine life. Biol. Lett., 12(5), 20150976, doi:10.1098/rsbl.2015.0976.</span></li> <li><span id="fn:r761">Yool, A. et al., 2017: Big in the benthos: Future change of seafloor community biomass in a global, body size-resolved model. Global Change Biol., 23(9), 3554–3566, doi:10.1111/gcb.13680.</span></li> <li><span id="fn:r762">Wei, C.-L. et al., 2011: Global Patterns and Predictions of Seafloor Biomass Using Random Forests. PLoS One, 5(12), e15323, doi:10.1371/journal.pone.0015323.</span></li> <li><span id="fn:r763">Wei, C.-L. et al., 2011: Global Patterns and Predictions of Seafloor Biomass Using Random Forests. PLoS One, 5(12), e15323, doi:10.1371/journal.pone.0015323.</span></li> <li><span id="fn:r764">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r765">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r766">Gehlen, M. et al., 2014: Projected pH reductions by 2100 might put deep North Atlantic biodiversity at risk. Biogeosciences, 11(23), 6955–6967, doi:10.5194/bg-11-6955-2014.</span></li> <li><span id="fn:r767">Canals, M. et al., 2006: Flushing submarine canyons. Nature, 444(7117), 354–357, doi:10.1038/nature05271.</span></li> <li><span id="fn:r768">Pusceddu, A. et al., 2010: Ecosystem effects of dense water formation on deep Mediterranean Sea ecosystems: an overview. Adv. Oceanogr. Limnol., 1(1), 67–83, doi:10.1080/19475721003735765.</span></li> <li><span id="fn:r769">Pruski, A.M. et al., 2017: Energy transfer in the Congo deep sea fan: From terrestrially-derived organic matter to chemosynthetic food webs. Deep Sea Res. Pt. II, 142, 197–218, doi:10.1016/j.dsr2.2017.05.011.</span></li> <li><span id="fn:r770">Tittensor, D.P. et al., 2011: Species-energy relationships in deep sea molluscs. Biol. Lett., 7(5), 718–722, doi:10.1098/rsbl.2010.1174.</span></li> <li><span id="fn:r771">Thresher, R.E., J.M. Guinotte, R.J. Matear and A.J. Hobday, 2015: Options for managing impacts of climate change on a deep sea community. Nat. Clim. Change, 5(7), 635–639, doi:10.1038/nclimate2611.</span></li> <li><span id="fn:r772">Henry, L.A. et al., 2016: Seamount egg‐laying grounds of the deep‐water skate Bathyraja richardsoni. J. Fish Biol., 89(2), 1473–1481, doi:10.1111/jfb.13041.</span></li> <li><span id="fn:r773">Fox, A.D., L.-A. Henry, D.W. Corne and J.M. Roberts, 2016: Sensitivity of marine protected area network connectivity to atmospheric variability. R. Soc. Open Sci., 3(11), 160494.</span></li> <li><span id="fn:r774">Gehlen, M. et al., 2014: Projected pH reductions by 2100 might put deep North Atlantic biodiversity at risk. Biogeosciences, 11(23), 6955–6967, doi:10.5194/bg-11-6955-2014.</span></li> <li><span id="fn:r775">NOAA, 2013: World Ocean Atlas 2013 version 2. [Available at: http://www.nodc.noaa.gov/OC5/woa13%5D . Accessed: 2019/09/30.</span></li> <li><span id="fn:r776">Harris, P.T. and T. Whiteway, 2011: Global distribution of large submarine canyons: Geomorphic differences between active and passive continental margins. Mar. Geol., 285(1), 69–86, doi:10.1016/j.margeo.2011.05.008.</span></li> <li><span id="fn:r777">Kim, T.-W. et al., 2011: Increasing N Abundance in the Northwestern Pacific Ocean Due to Atmospheric Nitrogen Deposition. Science, 334(6055), 505, doi:10.1126/science.1206583.</span></li> <li><span id="fn:r778">Riou, V. et al., 2010: Mixotrophy in the deep sea: a dual endosymbiotic hydrothermal mytilid assimilates dissolved and particulate organic matter. Mar. Ecol. Prog. Ser., 405, 187–201.</span></li> <li><span id="fn:r779">Riekenberg, P.M., R. Carney and B. Fry, 2016: Trophic plasticity of the methanotrophic mussel Bathymodiolus childressi in the Gulf of Mexico. Mar. Ecol. Prog. Ser., 547, 91–106.</span></li> <li><span id="fn:r780">Demopoulos, A.W.J. et al., 2019: Examination of Bathymodiolus childressi nutritional sources, isotopic niches, and food-web linkages at two seeps in the US Atlantic margin using stable isotope analysis and mixing models. Deep sea Res. Pt. I, doi:10.1016/j.dsr.2019.04.002.</span></li> <li><span id="fn:r781">Dixon, D.R. et al., 2006: Evidence of seasonal reproduction in the Atlantic vent mussel Bathymodiolus azoricus, and an apparent link with the timing of photosynthetic primary production. J. Mar. Biol. Assoc. U.K. , 86(6), 1363–1371, doi:10.1017/S0025315406014391.</span></li> <li><span id="fn:r782">Tyler, P. et al., 2007: Gametogenic periodicity in the chemosynthetic cold-seep mussel “Bathymodiolus” childressi. Mar. Biol., 150(5), 829–840, doi:10.1007/s00227-006-0362-9.</span></li> <li><span id="fn:r783">Dubilier, N., C. Bergin and C. Lott, 2008: Symbiotic diversity in marine animals: the art of harnessing chemosynthesis. Nat. Rev. Microbiol., 6, 725, doi:10.1038/nrmicro1992.</span></li> <li><span id="fn:r784">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r785">Stramma, L., G.C. Johnson, J. Sprintall and V. Mohrholz, 2008: Expanding Oxygen-Minimum Zones in the Tropical Oceans. Science, 320(5876), 655.</span></li> <li><span id="fn:r786">Schmidtko, S., L. Stramma and M. Visbeck, 2017: Decline in global oceanic oxygen content during the past five decades. Nature, 542(7641), 335–339, doi:10.1038/nature21399.</span></li> <li><span id="fn:r787">Phrampus, B.J. and M.J. Hornbach, 2012: Recent changes to the Gulf Stream causing widespread gas hydrate destabilization. Nature, 490(7421), 527–+, doi:10.1038/nature11528.</span></li> <li><span id="fn:r788">Boetius, A. and F. Wenzhoefer, 2013: Seafloor oxygen consumption fuelled by methane from cold seeps. Nat. Geosci., 6(9), 725–734, doi:10.1038/NGEO1926.</span></li> <li><span id="fn:r789">Herring, P.J. and D.R. Dixon, 1998: Extensive deep sea dispersal of postlarval shrimp from a hydrothermal vent. Deep sea Res. Pt. I, 45(12), 2105–2118, doi:10.1016/S0967-0637(98)00050-8.</span></li> <li><span id="fn:r790">Arellano, S.M. et al., 2014: Larvae from deep sea methane seeps disperse in surface waters. Proc. Roy. Soc. B. Biol., 281(1786), 20133276, doi:10.1098/rspb.2013.3276.</span></li> <li><span id="fn:r791">Stramma, L., G.C. Johnson, J. Sprintall and V. Mohrholz, 2008: Expanding Oxygen-Minimum Zones in the Tropical Oceans. Science, 320(5876), 655.</span></li> <li><span id="fn:r792">Fox, A.D., L.-A. Henry, D.W. Corne and J.M. Roberts, 2016: Sensitivity of marine protected area network connectivity to atmospheric variability. R. Soc. Open Sci., 3(11), 160494.</span></li> <li><span id="fn:r793">Adams, C.A., J.E. Andrews and T. Jickells, 2012: Nitrous oxide and methane fluxes vs. carbon, nitrogen and phosphorous burial in new intertidal and saltmarsh sediments. Sci. Total Environ., 434, 240–251, doi:10.1016/j.scitotenv.2011.11.058.</span></li> <li><span id="fn:r794">Cordes, E.E. et al., 2010: The influence of geological, geochemical, and biogenic habitat heterogeneity on seep biodiversity. Mar. Ecol-Evol. Persp., 31(1), 51–65, doi:10.1111/j.1439-0485.2009.00334.x.</span></li> <li><span id="fn:r795">Levin, L.A. et al., 2016: Hydrothermal Vents and Methane Seeps: Rethinking the Sphere of Influence. Front. Mar. Sci., 3, 72.</span></li> <li><span id="fn:r796">Buhl-Mortensen, L. et al., 2010: Biological structures as a source of habitat heterogeneity and biodiversity on the deep ocean margins. Mar. Ecol-Evol. Persp., 31(1), 21–50, doi:10.1111/j.1439-0485.2010.00359.x.</span></li> <li><span id="fn:r797">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r798">Form, A.U. and U. Riebesell, 2011: Acclimation to ocean acidification during long-term CO2 exposure in the cold water coral Lophelia pertusa. Global Change Biol., 18(3), 843–853, doi:10.1111/j.1365-2486.2011.02583.x.</span></li> <li><span id="fn:r799">Rodolfo-Metalpa, R. et al., 2015: Calcification is not the Achilles’ heel of cold water corals in an acidifying ocean. Global Change Biol., 21(6), 2238–2248, doi:10.1111/gcb.12867.</span></li> <li><span id="fn:r800">Gori, A. et al., 2016: Physiological response of the cold water coral Desmophyllum dianthusto thermal stress and ocean acidification. Peerj, 4, e1606, doi:10.7717/peerj.1606.</span></li> <li><span id="fn:r801">Addamo, A.M. et al., 2016: Merging scleractinian genera: the overwhelming genetic similarity between solitary Desmophyllum and colonial Lophelia. BMC Evol. Biol., 16(1), 108.</span></li> <li><span id="fn:r802">Georgian, S.E. et al., 2016: Biogeographic variability in the physiological response of the cold water coralLophelia pertusato ocean acidification. Mar. Ecol., 37(6), 1345–1359, doi:10.1111/maec.12373.</span></li> <li><span id="fn:r803">Kurman, M.D. et al., 2017: Intra-Specific Variation Reveals Potential for Adaptation to Ocean Acidification in a Cold water Coral from the Gulf of Mexico. Front. Mar. Sci., 4, 111.</span></li> <li><span id="fn:r804">Fillinger, L. and C. Richter, 2013: Vertical and horizontal distribution of Desmophyllum dianthus in Comau Fjord, Chile: a cold water coral thriving at low pH. Peerj, 1, e194.</span></li> <li><span id="fn:r805">Movilla, J. et al., 2014: Resistance of two Mediterranean cold water coral species to low-pH conditions. Water, 6(1), 59–67.</span></li> <li><span id="fn:r806">Baco, A. R. et al., 2017: Defying dissolution: discovery of deep sea scleractinian coral reefs in the North Pacific. Sci. Rep., 7(1), 5436.</span></li> <li><span id="fn:r807">Hennige, S.J. et al., 2015: Hidden impacts of ocean acidification to live and dead coral framework. Proc. Biol. Sci., 282(1813), doi:10.1098/rspb.2015.0990.</span></li> <li><span id="fn:r808">Lunden, J.J. et al., 2014: Acute survivorship of the deep sea coral Lophelia pertusa from the Gulf of Mexico under acidification, warming, and deoxygenation. Front. Mar. Sci., 1, 419, doi:10.3389/fmars.2014.00078.</span></li> <li><span id="fn:r809">Hennige, S.J. et al., 2015: Hidden impacts of ocean acidification to live and dead coral framework. Proc. Biol. Sci., 282(1813), doi:10.1098/rspb.2015.0990.</span></li> <li><span id="fn:r810">Büscher, J.V., A.U. Form and U. Riebesell, 2017: Interactive Effects of Ocean Acidification and Warming on Growth, Fitness and Survival of the Cold water Coral Lophelia pertusa under Different Food Availabilities. Front. Mar. Sci., 4, 119, doi:10.3389/fmars.2017.00101.</span></li> <li><span id="fn:r811">Kurman, M.D. et al., 2017: Intra-Specific Variation Reveals Potential for Adaptation to Ocean Acidification in a Cold water Coral from the Gulf of Mexico. Front. Mar. Sci., 4, 111.</span></li> <li><span id="fn:r812">Hennige, S.J. et al., 2015: Hidden impacts of ocean acidification to live and dead coral framework. Proc. Biol. Sci., 282(1813), doi:10.1098/rspb.2015.0990.</span></li> <li><span id="fn:r813">Schönberg, C.H.L. et al., 2017: Bioerosion: the other ocean acidification problem. ICES J. Mar. Sci., 74(4), 895–925, doi:10.1093/icesjms/fsw254.</span></li> <li><span id="fn:r814">Hennige, S.J. et al., 2015: Hidden impacts of ocean acidification to live and dead coral framework. Proc. Biol. Sci., 282(1813), doi:10.1098/rspb.2015.0990.</span></li> <li><span id="fn:r815">Büscher, J.V., A.U. Form and U. Riebesell, 2017: Interactive Effects of Ocean Acidification and Warming on Growth, Fitness and Survival of the Cold water Coral Lophelia pertusa under Different Food Availabilities. Front. Mar. Sci., 4, 119, doi:10.3389/fmars.2017.00101.</span></li> <li><span id="fn:r816">Brooke, S. et al., 2013: Temperature tolerance of the deep sea coral Lophelia pertusa from the southeastern United States. Deep sea Res. Pt. II, 92, 240–248.</span></li> <li><span id="fn:r817">Lunden, J.J. et al., 2014: Acute survivorship of the deep sea coral Lophelia pertusa from the Gulf of Mexico under acidification, warming, and deoxygenation. Front. Mar. Sci., 1, 419, doi:10.3389/fmars.2014.00078.</span></li> <li><span id="fn:r818">Hanz, U. et al., 2019: Environmental factors influencing cold water coral ecosystems in the oxygen minimum zones on the Angolan and Namibian margins. Biogeosciences, (In review) 1–37.</span></li> <li><span id="fn:r819">Lartaud, F. et al., 2014: Temporal changes in the growth of two Mediterranean cold water coral species, in situ and in aquaria. Deep Sea Res. Pt. II, 99, 64–70, doi:10.1016/j.dsr2.2013.06.024.</span></li> <li><span id="fn:r820">Naumann, M.S., C. Orejas and C. Ferrier-Pagès, 2014: Species-specific physiological response by the cold water corals Lophelia pertusa and Madrepora oculata to variations within their natural temperature range. Deep Sea Res. Pt. II, 99, 36–41.</span></li> <li><span id="fn:r821">Baco, A. R. et al., 2017: Defying dissolution: discovery of deep sea scleractinian coral reefs in the North Pacific. Sci. Rep., 7(1), 5436.</span></li> <li><span id="fn:r822">Schulz, K.G. et al., 2013: Temporal biomass dynamics of an Arctic plankton bloom in response to increasing levels of atmospheric carbon dioxide. Biogeosciences (BG), 10, 161–180.</span></li> <li><span id="fn:r823">Strand, R. et al., 2017: The response of a boreal deep sea sponge holobiont to acute thermal stress. Sci. Rep., 7(1), 1660, doi:10.1038/s41598-017-01091-x.</span></li> <li><span id="fn:r824">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r825">Jones, D.O. et al., 2014: Global reductions in seafloor biomass in response to climate change. Glob Chang Biol, 20(6), 1861–72, doi:10.1111/gcb.12480.</span></li> <li><span id="fn:r826">Höfer, J. et al., 2018: All you can eat: the functional response of the cold water coral Desmophyllum dianthus feeding on krill and copepods. Peerj, 6, e5872.</span></li> <li><span id="fn:r827">Middelburg, J.J. et al., 2015: Discovery of symbiotic nitrogen fixation and chemoautotrophy in cold water corals. Sci. Rep., 5, 17962.</span></li> <li><span id="fn:r828">Thresher, R.E., J.M. Guinotte, R.J. Matear and A.J. Hobday, 2015: Options for managing impacts of climate change on a deep sea community. Nat. Clim. Change, 5(7), 635–639, doi:10.1038/nclimate2611.</span></li> <li><span id="fn:r829">Guinotte, J.M. et al., 2006: Will human-induced changes in seawater chemistry alter the distribution of deep sea scleractinian corals? Front. Ecol. Environ., 4(3), 141–146, doi:10.1890/1540-9295(2006)004[0141:WHCISC]2.0.CO;2.</span></li> <li><span id="fn:r830">Eyre, B.D., A.J. Andersson and T. Cyronak, 2014: Benthic coral reef calcium carbonate dissolution in an acidifying ocean. Nat. Clim. Change, 4, 969 EP -, doi:10.1038/nclimate2380.</span></li> <li><span id="fn:r831">Fox, A.D., L.-A. Henry, D.W. Corne and J.M. Roberts, 2016: Sensitivity of marine protected area network connectivity to atmospheric variability. R. Soc. Open Sci., 3(11), 160494.</span></li> <li><span id="fn:r832">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r833">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r834">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r835">Gattuso, J.-P. et al., 2015: OCEANOGRAPHY. Contrasting futures for ocean and society from different anthropogenic CO₂ emissions scenarios. Science, 349(6243), 1 -10, doi:10.1126/science.aac4722.</span></li> <li><span id="fn:r836">Chen, C.-T. A., 2003: New vs. export production on the continental shelf. Deep Sea Res. Pt. II, 50(6), 1327–1333, doi:10.1016/S0967-0645(03)00026-2.</span></li> <li><span id="fn:r837">Bauer, J.E. et al., 2013: The changing carbon cycle of the coastal ocean. Nature, 504(7478), 61–70, doi:10.1038/nature12857.</span></li> <li><span id="fn:r838">Scales, K.L. et al., 2014: Review: On the Front Line: frontal zones as priority at-sea conservation areas for mobile marine vertebrates. J. Appl. Ecol., 51(6), 1575–1583, doi:10.1111/1365-2664.12330.</span></li> <li><span id="fn:r839">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r840">Duarte, C.M. et al., 2013: Is ocean acidification an open-ocean syndrome? Understanding anthropogenic impacts on seawater pH. Estuar. Coast., 36(2), 221–236.</span></li> <li><span id="fn:r841">Kelleway, J.J. et al., 2017a: Review of the ecosystem service implications of mangrove encroachment into salt marshes. Global Change Biol. 23(10), 3967-3983.</span></li> <li><span id="fn:r842">Rilov, G., 2016: Multi-species collapses at the warm edge of a warming sea. Sci. Rep., 6, 36897, doi:10.1038/srep36897.</span></li> <li><span id="fn:r843">Chefaoui, R. M., C. M. Duarte and E. A. Serrão, 2018: Dramatic loss of seagrass habitat under projected climate change in the Mediterranean Sea. Global Change Biol., 24(10), 4919-4928, doi:10.1111/gcb.14401.</span></li> <li><span id="fn:r844">Sharples, J., J.J. Middelburg, K. Fennel and T.D. Jickells, 2017: What proportion of riverine nutrients reaches the open ocean? Global Biogeochem. Cy., 31(1), 39–58.</span></li> <li><span id="fn:r845">Chen, N. et al., 2018: Storm induced estuarine turbidity maxima and controls on nutrient fluxes across river-estuary-coast continuum. Sci. Total Environ., 628, 1108–1120.</span></li> <li><span id="fn:r846">Laurent, A., K. Fennel, D.S. Ko and J. Lehrter, 2018: Climate change projected to exacerbate impacts of coastal eutrophication in the northern Gulf of Mexico. J. Geophys. Res-Oceans.123(5), 3408-3426.</span></li> <li><span id="fn:r847">Zahid, A. et al., 2018: Model Impact of Climate Change on the Groundwater Flow and Salinity Encroachment in the Coastal Areas of Bangladesh. In: Groundwater of South Asia. Springer, pp. 545–568.</span></li> <li><span id="fn:r848">Levin, L.A. and N. Le Bris, 2015: The deep ocean under climate change. Science, 350(6262), 766–768, doi:10.1126/science.aad0126.</span></li> <li><span id="fn:r849">Diop, S. and P. Scheren, 2016: Sustainable oceans and coasts: Lessons learnt from Eastern and Western Africa. Estuar. Coast. Shelf Sci., 183, 327–339.</span></li> <li><span id="fn:r850">Maavara, T., R. Lauerwald, P. Regnier and P. Van Cappellen, 2017: Global perturbation of organic carbon cycling by river damming. Nat. Commun., 8, 15347.</span></li> <li><span id="fn:r851">Dunn, F.E. et al., 2018: Projections of historical and 21st century fluvial sediment delivery to the Ganges-Brahmaputra-Meghna, Mahanadi, and Volta deltas. Sci. Total Environ., 642, 105–116.</span></li> <li><span id="fn:r852">Gattuso, J.-P. et al., 2015: OCEANOGRAPHY. Contrasting futures for ocean and society from different anthropogenic CO₂ emissions scenarios. Science, 349(6243), 1 -10, doi:10.1126/science.aac4722.</span></li> <li><span id="fn:r853">Boyd, P.W. et al., 2018: Experimental strategies to assess the biological ramifications of multiple drivers of global ocean change—A review. Global Change Biol., 24(6), 2239–2261, doi:10.1111/gcb.14102.</span></li> <li><span id="fn:r854">Hammond, M.L., C. Beaulieu, S.K. Sahu and S.A. Henson, 2017: Assessing trends and uncertainties in satellite-era ocean chlorophyll using space-time modeling. Global Biogeochem. Cy., 31(7), 1103–1117, doi:10.1002/2016gb005600.</span></li> <li><span id="fn:r855">Reusch, T.B.H. et al., 2018: The Baltic Sea as a time machine for the future coastal ocean. Sci. Adv., 4(5), eaar8195, doi:10.1126/sciadv.aar8195.</span></li> <li><span id="fn:r856">Wong, P.P., et al. 2014a: Coastal systems and low-lying areas. In: Climate Change 2014: Impacts, Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. [Field, C.B., et al. (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, USA, pp. 361-409. ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r857">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r858">Basset, A., M. Elliott, R.J. West and J.G. Wilson, 2013: Estuarine and lagoon biodiversity and their natural goods and services. Estuar. Coast. Shelf Sci., 132, 1–4, doi:10.1016/j.ecss.2013.05.018.</span></li> <li><span id="fn:r859">Wong, P.P., et al. 2014a: Coastal systems and low-lying areas. In: Climate Change 2014: Impacts, Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. [Field, C.B., et al. (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, USA, pp. 361-409. ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r860">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r861">Ross, A.C. et al., 2015: Sea level rise and other influences on decadal-scale salinity variability in a coastal plain estuary. Estuar. Coast. Shelf Sci., 157, 79–92, doi:10.1016/j.ecss.2015.01.022.</span></li> <li><span id="fn:r862">Cardoso-Mohedano, J.-G. et al., 2018: Sub-tropical coastal lagoon salinization associated to shrimp ponds effluents. Estuar. Coast. Shelf Sci., 203, 72–79, doi:10.1016/j.ecss.2018.01.022.</span></li> <li><span id="fn:r863">Hallett, C.S. et al., 2018: Observed and predicted impacts of climate change on the estuaries of south-western Australia, a Mediterranean climate region. Reg. Environ. Change, 18(5), 1357–1373, doi:10.1007/s10113-017-1264-8.</span></li> <li><span id="fn:r864">Zahid, A. et al., 2018: Model Impact of Climate Change on the Groundwater Flow and Salinity Encroachment in the Coastal Areas of Bangladesh. In: Groundwater of South Asia. Springer, pp. 545–568.</span></li> <li><span id="fn:r865">Robins, P.E. et al., 2016: Impact of climate change on UK estuaries: A review of past trends and potential projections. Estuar. Coast. Shelf Sci., 169, 119–135, doi:10.1016/j.ecss.2015.12.016.</span></li> <li><span id="fn:r866">Raimonet, M. and J.E. Cloern, 2017: Estuary-ocean connectivity: fast physics, slow biology. Global Change Biol., 23(6), 2345–2357, doi:10.1111/gcb.13546.</span></li> <li><span id="fn:r867">Hallett, C.S. et al., 2018: Observed and predicted impacts of climate change on the estuaries of south-western Australia, a Mediterranean climate region. Reg. Environ. Change, 18(5), 1357–1373, doi:10.1007/s10113-017-1264-8.</span></li> <li><span id="fn:r868">Addino, M.S. et al., 2019: Growth changes of the stout razor clam Tagelus plebeius (Lightfoot, 1786) under different salinities in SW Atlantic estuaries. J. Sea Res., 146, 14–23, doi:10.1016/j.seares.2019.01.005.</span></li> <li><span id="fn:r869">Little, S., P.J. Wood and M. Elliott, 2017: Quantifying salinity-induced changes on estuarine benthic fauna: The potential implications of climate change. Estuar. Coast. Shelf Sci., 198, 610–625, doi:10.1016/j.ecss.2016.07.020.</span></li> <li><span id="fn:r870">Hudson, D.M. et al., 2018: Physiological and behavioral response of the Asian shore crab, Hemigrapsus sanguineus, to salinity: implications for estuarine distribution and invasion. Peerj, 6, e5446, doi:10.7717/peerj.5446.</span></li> <li><span id="fn:r871">Addino, M.S. et al., 2019: Growth changes of the stout razor clam Tagelus plebeius (Lightfoot, 1786) under different salinities in SW Atlantic estuaries. J. Sea Res., 146, 14–23, doi:10.1016/j.seares.2019.01.005.</span></li> <li><span id="fn:r872">Hallett, C.S. et al., 2018: Observed and predicted impacts of climate change on the estuaries of south-western Australia, a Mediterranean climate region. Reg. Environ. Change, 18(5), 1357–1373, doi:10.1007/s10113-017-1264-8.</span></li> <li><span id="fn:r873">Maavara, T., R. Lauerwald, P. Regnier and P. Van Cappellen, 2017: Global perturbation of organic carbon cycling by river damming. Nat. Commun., 8, 15347.</span></li> <li><span id="fn:r874">Maavara, T., R. Lauerwald, P. Regnier and P. Van Cappellen, 2017: Global perturbation of organic carbon cycling by river damming. Nat. Commun., 8, 15347.</span></li> <li><span id="fn:r875">Chen, N. et al., 2018: Storm induced estuarine turbidity maxima and controls on nutrient fluxes across river-estuary-coast continuum. Sci. Total Environ., 628, 1108–1120.</span></li> <li><span id="fn:r876">Fennel, K. and J.M. Testa, 2019: Biogeochemical Controls on Coastal Hypoxia. Annu. Rev. Mar. Sci., 11(1), 105–130, doi:10.1146/annurev-marine-010318-095138.</span></li> <li><span id="fn:r877">Breitberg, D. et al., 2015: And on Top of All That… Coping with Ocean Acidification in the Midst of Many Stressors. Oceanography, 25(2), 48–61, doi:10.5670/oceanog.2015.31.</span></li> <li><span id="fn:r878">Gobler, C.J. and H. Baumann, 2016: Hypoxia and acidification in ocean ecosystems: coupled dynamics and effects on marine life. Biol. Lett., 12(5), 20150976, doi:10.1098/rsbl.2015.0976.</span></li> <li><span id="fn:r879">Anderson, C.R. et al., 2015: Living with harmful algal blooms in a changing world: strategies for modeling and mitigating their effects in coastal marine ecosystems. In Castal and Marine Hazards, Risks, and Disasters [J. F. Shroder, J.T. Ellis, D.J. Sherman eds.] Elsevier BV, Amsterdam, pp. 495–561. ISBN: 978-0-12-396483-0.</span></li> <li><span id="fn:r880">Paerl, H.W., T.G. Otten and R. Kudela, 2018: Mitigating the Expansion of Harmful Algal Blooms Across the Freshwater-to-Marine Continuum. Environ. Sci. Technol., 52(10), 5519–5529, doi:10.1021/acs.est.7b05950.</span></li> <li><span id="fn:r881">Baker-Austin, C., J. Trinanes, N. Gonzalez-Escalona and J. Martinez-Urtaza, 2017: Non-Cholera Vibrios: The Microbial Barometer of Climate Change. Trends Microbiol., 25(1), 76–84, doi:10.1016/j.tim.2016.09.008.</span></li> <li><span id="fn:r882">Kopprio, G.A. et al., 2017: Biogeochemical and hydrological drivers of the dynamics of Vibrio species in two Patagonian estuaries. Sci. Total Environ., 579, 646–656, doi:10.1016/j.scitotenv.2016.11.045.</span></li> <li><span id="fn:r883">Jeppesen, R. et al., 2018: Effects of Hypoxia on Fish Survival and Oyster Growth in a Highly Eutrophic Estuary. Estuar. Coast., 41(1), 89–98, doi:10.1007/s12237-016-0169-y.</span></li> <li><span id="fn:r884">Warwick, R.M., J.R. Tweedley and I.C. Potter, 2018: Microtidal estuaries warrant special management measures that recognise their critical vulnerability to pollution and climate change. Mar. Pollut. Bull., 135, 41–46, doi:10.1016/j.marpolbul.2018.06.062.</span></li> <li><span id="fn:r885">Wang, G. and W. Cai, 2013: Climate-change impact on the 20th-century relationship between the Southern Annular Mode and global mean temperature. Sci. Rep., 3(1), 2039, doi:10.1038/srep02039.</span></li> <li><span id="fn:r886">Delworth, T.L. and F. Zeng, 2016: The impact of the North Atlantic Oscillation on climate through its influence on the Atlantic Meridional Overturning Circulation. J. Clim., 29(3), 941–962, doi:10.1175/JCLI-D-15-0396.1.</span></li> <li><span id="fn:r887">García-Mendoza, E. et al., 2018: Mass Mortality of Cultivated Northern Bluefin Tuna Thunnus thynnus orientalis Associated With Chattonella Species in Baja California, Mexico. Front. Mar. Sci., 5(454), doi:10.3389/fmars.2018.00454.</span></li> <li><span id="fn:r888">Tweedley, J.R. et al., 2016: The hypoxia that developed in a microtidal estuary following an extreme storm produced dramatic changes in the benthos. Mar. Freshw. Res., 67(3), 327–341.</span></li> <li><span id="fn:r889">Arias-Ortiz, A. et al., 2018: A marine heatwave drives massive losses from the world’s largest seagrass carbon stocks. Nat. Clim. Change, 8, 338–344</span></li> <li><span id="fn:r890">Chen, N. et al., 2018: Storm induced estuarine turbidity maxima and controls on nutrient fluxes across river-estuary-coast continuum. Sci. Total Environ., 628, 1108–1120.</span></li> <li><span id="fn:r891">Thomas, C.J. et al., 2015: Connectivity between submerged and near-sea-surface coral reefs: can submerged reef populations act as refuges? Divers. Distrib., 21(10), 1254–1266, doi:10.1111/ddi.12360.</span></li> <li><span id="fn:r892">Abreu, P.C., J. Marangoni and C. Odebrecht, 2017: So close, so far: differences in long-term chlorophyll a variability in three nearby estuarine-coastal stations. Mar. Biol. Res., 13(1), 9–21, doi:10.1080/17451000.2016.1189081.</span></li> <li><span id="fn:r893">Marques, S.C. et al., 2017: Evidence for Changes in Estuarine Zooplankton Fostered by Increased Climate Variance. Ecosystems,21(1), 56-67, doi:10.1007/s10021-017-0134-z.</span></li> <li><span id="fn:r894">Arias-Ortiz, A. et al., 2018: A marine heatwave drives massive losses from the world’s largest seagrass carbon stocks. Nat. Clim. Change, 8, 338–344</span></li> <li><span id="fn:r895">López-Abbate, M.C. et al., 2019: Long-term changes on estuarine ciliates linked with modifications on wind patterns and water turbidity. Mar. Environ. Res., 144, 46–55, doi:10.1016/j.marenvres.2018.12.001.</span></li> <li><span id="fn:r896">Stock, C.A., J.P. Dunne and J.G. John, 2014: Drivers of trophic amplification of ocean productivity trends in a changing climate. Biogeosciences, 11(24), 7125.</span></li> <li><span id="fn:r897">Zhou, X. et al., 2017: Prospective scenarios of the saltwater intrusion in an estuary under climate change context using Bayesian neural networks. Stochastic Environmental Research and Risk Assessment, 31(4), 981–991.</span></li> <li><span id="fn:r898">Hallett, C.S. et al., 2018: Observed and predicted impacts of climate change on the estuaries of south-western Australia, a Mediterranean climate region. Reg. Environ. Change, 18(5), 1357–1373, doi:10.1007/s10113-017-1264-8.</span></li> <li><span id="fn:r899">Zahid, A. et al., 2018: Model Impact of Climate Change on the Groundwater Flow and Salinity Encroachment in the Coastal Areas of Bangladesh. In: Groundwater of South Asia. Springer, pp. 545–568.</span></li> <li><span id="fn:r900">Elliott, M., J.W. Day, R. Ramachandran and E. Wolanski, 2019: Chapter 1 – A Synthesis: What Is the Future for Coasts, Estuaries, Deltas and Other Transitional Habitats in 2050 and Beyond? In: Coasts and Estuaries [Wolanski, E., J.W. Day, M. Elliott and R. Ramachandran (eds.)]. Elsevier, pp. 1–28. ISBN: 9780128140031</span></li> <li><span id="fn:r901">Brown, S. et al., 2018b: What are the implications of sea level rise for a 1.5, 2 and 3°C rise in global mean temperatures in the Ganges-Brahmaputra-Meghna and other vulnerable deltas? Reg. Environ. Change, 18(6), 1829–1842, doi:10.1007/s10113-018-1311-0.</span></li> <li><span id="fn:r902">Schuerch, M. et al., 2018: Future response of global coastal wetlands to sea level rise. Nature, 561(7722), 231–234, doi:10.1038/s41586-018-0476-5.</span></li> <li><span id="fn:r903">Breitburg, D. et al., 2018: Declining oxygen in the global ocean and coastal waters. Science, 359(6371).</span></li> <li><span id="fn:r904">Laurent, A., K. Fennel, D.S. Ko and J. Lehrter, 2018: Climate change projected to exacerbate impacts of coastal eutrophication in the northern Gulf of Mexico. J. Geophys. Res-Oceans.123(5), 3408-3426.</span></li> <li><span id="fn:r905">Sinha, P.R. et al., 2017: Evaluation of ground-based black carbon measurements by filter-based photometers at two Arctic sites. J. Geophys. Res-Atmos., 122(6), 3544–3572, doi:10.1002/2016JD025843.</span></li> <li><span id="fn:r906">Du, J. et al., 2018: Worsened physical condition due to climate change contributes to the increasing hypoxia in Chesapeake Bay. Sci. Total Environ., 630, 707–717, doi:10.1016/j.scitotenv.2018.02.265.</span></li> <li><span id="fn:r907">Hallett, C.S. et al., 2018: Observed and predicted impacts of climate change on the estuaries of south-western Australia, a Mediterranean climate region. Reg. Environ. Change, 18(5), 1357–1373, doi:10.1007/s10113-017-1264-8.</span></li> <li><span id="fn:r908">Warwick, R.M., J.R. Tweedley and I.C. Potter, 2018: Microtidal estuaries warrant special management measures that recognise their critical vulnerability to pollution and climate change. Mar. Pollut. Bull., 135, 41–46, doi:10.1016/j.marpolbul.2018.06.062.</span></li> <li><span id="fn:r909">Altieri, A.H. and K.B. Gedan, 2015: Climate change and dead zones. Global Change Biol., 21(4), 1395–1406.</span></li> <li><span id="fn:r910">Zhang, D. et al., 2016: Reviews of power supply and environmental energy conversions for artificial upwelling. Renew. Sustain. Energy Rev., 56, 659–668, doi:10.1016/j.rser.2015.11.041.</span></li> <li><span id="fn:r911">Cai, W.-J. et al., 2017: Redox reactions and weak buffering capacity lead to acidification in the Chesapeake Bay. Nat. Commun., 8(1), 369, doi:10.1038/s41467-017-00417-7.</span></li> <li><span id="fn:r912">Laurent, A. et al., 2017: Eutrophication‐induced acidification of coastal waters in the northern Gulf of Mexico: Insights into origin and processes from a coupled physical‐biogeochemical model. Geophys. Res. Lett., 44(2), 946–956.</span></li> <li><span id="fn:r913">Beck, M.W. et al., 2011: Oyster Reefs at Risk and Recommendations for Conservation, Restoration, and Management. BioScience, 61(2), 107–116, doi:10.1525/bio.2011.61.2.5.</span></li> <li><span id="fn:r914">Duarte, C.M. et al., 2013: Is ocean acidification an open-ocean syndrome? Understanding anthropogenic impacts on seawater pH. Estuar. Coast., 36(2), 221–236.</span></li> <li><span id="fn:r915">Feely, R.A. et al., 2016: Chemical and biological impacts of ocean acidification along the west coast of North America. Estuar. Coast. Shelf Sci., 183, 260–270, doi:10.1016/j.ecss.2016.08.043.</span></li> <li><span id="fn:r916">Carstensen, J., M. Chierici, B. G. Gustafsson and E. Gustafsson, 2018: Long-Term and Seasonal Trends in Estuarine and Coastal Carbonate Systems. Global Biogeochem. Cy., 32(3), 497–513, doi:10.1002/2017GB005781.</span></li> <li><span id="fn:r917">Hallett, C.S. et al., 2018: Observed and predicted impacts of climate change on the estuaries of south-western Australia, a Mediterranean climate region. Reg. Environ. Change, 18(5), 1357–1373, doi:10.1007/s10113-017-1264-8.</span></li> <li><span id="fn:r918">Elliott, M., J.W. Day, R. Ramachandran and E. Wolanski, 2019: Chapter 1 – A Synthesis: What Is the Future for Coasts, Estuaries, Deltas and Other Transitional Habitats in 2050 and Beyond? In: Coasts and Estuaries [Wolanski, E., J.W. Day, M. Elliott and R. Ramachandran (eds.)]. Elsevier, pp. 1–28. ISBN: 9780128140031</span></li> <li><span id="fn:r919">Prandle, D. and A. Lane, 2015: Sensitivity of estuaries to sea level rise: Vulnerability indices. Estuar. Coast. Shelf Sci., 160, 60–68, doi:10.1016/j.ecss.2015.04.001.</span></li> <li><span id="fn:r920">Warwick, R.M., J.R. Tweedley and I.C. Potter, 2018: Microtidal estuaries warrant special management measures that recognise their critical vulnerability to pollution and climate change. Mar. Pollut. Bull., 135, 41–46, doi:10.1016/j.marpolbul.2018.06.062.</span></li> <li><span id="fn:r921">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r922">Wong, P.P. et al., 2014b: Coastal systems and low-lying areas. Clim. Change, 2104, 361–409.</span></li> <li><span id="fn:r923">Wong, P.P. et al., 2014b: Coastal systems and low-lying areas. Clim. Change, 2104, 361–409.</span></li> <li><span id="fn:r924">Li, X., R. Bellerby, C. Craft and S.E. Widney, 2018a: Coastal wetland loss, consequences, and challenges for restoration. Anthropocene Coasts, 1(0), 1–15.</span></li> <li><span id="fn:r925">Adam, P., 2002: Saltmarshes in a time of change. Environ. Conserv., 29(1), 39–61.</span></li> <li><span id="fn:r926">Wang, W., H. Liu, Y. Li and J. Su, 2014: Development and management of land reclamation in China. Ocean Coast. Manage., 102, 415–425.</span></li> <li><span id="fn:r927">Kroeger, K.D., S. Crooks, S. Moseman-Valtierra and J. Tang, 2017: Restoring tides to reduce methane emissions in impounded wetlands: A new and potent Blue Carbon climate change intervention. Sci. Rep., 7(1), 11914.</span></li> <li><span id="fn:r928">Thomas, N. et al., 2017: Distribution and drivers of global mangrove forest change, 1996–2010. PLoS One, 12(6), e0179302, doi:10.1371/journal.pone.0179302.</span></li> <li><span id="fn:r929">Li, X., R. Bellerby, C. Craft and S.E. Widney, 2018a: Coastal wetland loss, consequences, and challenges for restoration. Anthropocene Coasts, 1(0), 1–15.</span></li> <li><span id="fn:r930">Sippo, J.Z. et al., 2018: Mangrove mortality in a changing climate: An overview. Estuar. Coast. Shelf Sci., 215, 241–249, doi:10.1016/j.ecss.2018.10.011.</span></li> <li><span id="fn:r931">Sippo, J.Z. et al., 2018: Mangrove mortality in a changing climate: An overview. Estuar. Coast. Shelf Sci., 215, 241–249, doi:10.1016/j.ecss.2018.10.011.</span></li> <li><span id="fn:r932">Carugati, L. et al., 2018: Impact of mangrove forests degradation on biodiversity and ecosystem functioning. Sci. Rep., 8(1), 13298, doi:10.1038/s41598-018-31683-0.</span></li> <li><span id="fn:r933">Saintilan, N. et al., 2018: Climate Change Impacts on the Coastal Wetlands of Australia. Wetlands, doi:10.1007/s13157-018-1016-7.</span></li> <li><span id="fn:r934">Lovelock, C.E. et al., 2015: The vulnerability of Indo-Pacific mangrove forests to sea level rise. Nature, 526, 559, doi:10.1038/nature15538.</span></li> <li><span id="fn:r935">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r936">El-Hacen, E.-H. M. et al., 2018: Evidence for ‘critical slowing down’ in seagrass: a stress gradient experiment at the southern limit of its range. Sci. Rep., 8(1), 17263, doi:10.1038/s41598-018-34977-5.</span></li> <li><span id="fn:r937">Marbà, N., D. Krause-Jensen, P. Masqué and C.M. Duarte, 2018: Expanding Greenland seagrass meadows contribute new sediment carbon sinks. Sci. Rep., 8(1), 14024, doi:10.1038/s41598-018-32249-w.</span></li> <li><span id="fn:r938">Vergés, A. et al., 2018: Latitudinal variation in seagrass herbivory: Global patterns and explanatory mechanisms. Global Ecol. Biogeogr., 27(9), 1068–1079, doi:10.1111/geb.12767.</span></li> <li><span id="fn:r939">Beca-Carretero, P., B. Olesen, N. Marbà and D. Krause-Jensen, 2018: Response to experimental warming in northern eelgrass populations: comparison across a range of temperature adaptations. Mar. Ecol. Prog. Ser., 589, 59–72.</span></li> <li><span id="fn:r940">Duarte, B. et al., 2018: Climate Change Impacts on Seagrass Meadows and Macroalgal Forests: An Integrative Perspective on Acclimation and Adaptation Potential. Front. Mar. Sci., 5, 190.</span></li> <li><span id="fn:r941">Nowicki, R.J. et al., 2017: Predicting seagrass recovery times and their implications following an extreme climate event. Mar. Ecol. Prog. Ser., 567, 79–93.</span></li> <li><span id="fn:r942">Arias-Ortiz, A. et al., 2018: A marine heatwave drives massive losses from the world’s largest seagrass carbon stocks. Nat. Clim. Change, 8, 338–344</span></li> <li><span id="fn:r943">Lin, H.-J. et al., 2018: The effects of El Niño-Southern Oscillation events on intertidal seagrass beds over a long-term timescale. Global Change Biol., 0(0), doi:10.1111/gcb.14404.</span></li> <li><span id="fn:r944">Arias-Ortiz, A. et al., 2018: A marine heatwave drives massive losses from the world’s largest seagrass carbon stocks. Nat. Clim. Change, 8, 338–344</span></li> <li><span id="fn:r945">Saintilan, N. et al., 2014: Mangrove expansion and salt marsh decline at mangrove poleward limits. Global Change Biol., 20(1), 147–157, doi:10.1111/gcb.12341.</span></li> <li><span id="fn:r946">Saintilan, N. et al., 2018: Climate Change Impacts on the Coastal Wetlands of Australia. Wetlands, doi:10.1007/s13157-018-1016-7.</span></li> <li><span id="fn:r947">Armitage, A.R., W.E. Highfield, S.D. Brody and P. Louchouarn, 2015: The Contribution of Mangrove Expansion to Salt Marsh Loss on the Texas Gulf Coast. PLoS One, 10(5), e0125404, doi:10.1371/journal.pone.0125404.</span></li> <li><span id="fn:r948">Kelleway, J.J. et al., 2017a: Review of the ecosystem service implications of mangrove encroachment into salt marshes. Global Change Biol. 23(10), 3967-3983.</span></li> <li><span id="fn:r949">Lin, H.-J. et al., 2018: The effects of El Niño-Southern Oscillation events on intertidal seagrass beds over a long-term timescale. Global Change Biol., 0(0), doi:10.1111/gcb.14404.</span></li> <li><span id="fn:r950">Bouma, T.J. et al., 2016: Short-term mudflat dynamics drive long-term cyclic salt marsh dynamics. Limnol. Oceanogr., 61(6), 2261–2275, doi:10.1002/lno.10374.</span></li> <li><span id="fn:r951">Carey, J. et al., 2017: The declining role of organic matter in New England salt marshes. Estuar. Coast., 40(3), 626–639.</span></li> <li><span id="fn:r952">Watson, E.B. et al., 2017b: Wetland Loss Patterns and Inundation-Productivity Relationships Prognosticate Widespread Salt Marsh Loss for Southern New England. Estuar. Coast., 40(3), 662–681, doi:10.1007/s12237-016-0069-1.</span></li> <li><span id="fn:r953">Watson, E.B. et al., 2017b: Wetland Loss Patterns and Inundation-Productivity Relationships Prognosticate Widespread Salt Marsh Loss for Southern New England. Estuar. Coast., 40(3), 662–681, doi:10.1007/s12237-016-0069-1.</span></li> <li><span id="fn:r954">Janousek, C.N. et al., 2017: Inundation, vegetation, and sediment effects on litter decomposition in Pacific Coast tidal marshes. Ecosystems, 20(7), 1296–1310.</span></li> <li><span id="fn:r955">Piovan, M.J. et al., 2019: Germination Response to Osmotic Potential, Osmotic Agents, and Temperature of Five Halophytes Occurring along a Salinity Gradient. Int. J. Plant Sci., 180(4), 345–355, doi:10.1086/702663.</span></li> <li><span id="fn:r956">Pratchett, M.S., A.S. Hoey and S.K. Wilson, 2014: Reef degradation and the loss of critical ecosystem goods and services provided by coral reef fishes. Curr. Opin. Environ. Sustain., 7(Supplement C), 37–43, doi:10.1016/j.cosust.2013.11.022.</span></li> <li><span id="fn:r957">Raposa, K.B., R.L. Weber, M.C. Ekberg and W. Ferguson, 2017: Vegetation dynamics in Rhode Island salt marshes during a period of accelerating sea level rise and extreme sea level events. Estuar. Coast., 40(3), 640–650.</span></li> <li><span id="fn:r958">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r959">Watson, E.B. et al., 2017b: Wetland Loss Patterns and Inundation-Productivity Relationships Prognosticate Widespread Salt Marsh Loss for Southern New England. Estuar. Coast., 40(3), 662–681, doi:10.1007/s12237-016-0069-1.</span></li> <li><span id="fn:r960">Poffenbarger, H.J., B.A. Needelman and J.P. Megonigal, 2011: Salinity influence on methane emissions from tidal marshes. Wetlands, 31(5), 831–842.</span></li> <li><span id="fn:r961">Martin, R.M. and S. Moseman-Valtierra, 2015: Greenhouse gas fluxes vary between Phragmites australis and native vegetation zones in coastal wetlands along a salinity gradient. Wetlands, 35(6), 1021–1031.</span></li> <li><span id="fn:r962">Kroeger, K.D., S. Crooks, S. Moseman-Valtierra and J. Tang, 2017: Restoring tides to reduce methane emissions in impounded wetlands: A new and potent Blue Carbon climate change intervention. Sci. Rep., 7(1), 11914.</span></li> <li><span id="fn:r963">Tong, C. et al., 2018: Changes in pore-water chemistry and methane emission following the invasion of Spartina alterniflora into an oliogohaline marsh. Limnol. Oceanogr., 63(1), 384–396, doi:10.1002/lno.10637.</span></li> <li><span id="fn:r964">Crotty, S.M., C. Angelini and M.D. Bertness, 2017: Multiple stressors and the potential for synergistic loss of New England salt marshes. PLOS ONE, 12(8), e0183058.</span></li> <li><span id="fn:r965">Legault II, R., G.P. Zogg and S.E. Travis, 2018: Competitive interactions between native Spartina alterniflora and non-native Phragmites australis depend on nutrient loading and temperature. PLoS One, 13(2), e0192234.</span></li> <li><span id="fn:r966">Zhang, D. et al., 2016: Reviews of power supply and environmental energy conversions for artificial upwelling. Renew. Sustain. Energy Rev., 56, 659–668, doi:10.1016/j.rser.2015.11.041.</span></li> <li><span id="fn:r967">Tomas, F., B. Martínez‐Crego, G. Hernán and R. Santos, 2015: Responses of seagrass to anthropogenic and natural disturbances do not equally translate to its consumers. Global Change Biol., 21(11), 4021–4030, doi:10.1111/gcb.13024.</span></li> <li><span id="fn:r968">Pagès, J.F. et al., 2017: Contrasting effects of ocean warming on different components of plant-herbivore interactions. Mar. Pollut. Bull., 134, 55–65.doi:10.1016/j.marpolbul.2017.10.036.</span></li> <li><span id="fn:r969">York, P.H. et al., 2017: Identifying knowledge gaps in seagrass research and management: An Australian perspective. Mar. Environ. Res., 127, 163–172, doi:10.1016/j.marenvres.2016.06.006.</span></li> <li><span id="fn:r970">Hyndes, G.A. et al., 2016: Accelerating Tropicalization and the Transformation of Temperate Seagrass Meadows. BioScience, 66(11), 938–948, doi:10.1093/biosci/biw111.</span></li> <li><span id="fn:r971">Vergés, A. et al., 2018: Latitudinal variation in seagrass herbivory: Global patterns and explanatory mechanisms. Global Ecol. Biogeogr., 27(9), 1068–1079, doi:10.1111/geb.12767.</span></li> <li><span id="fn:r972">Olsen, J.L. et al., 2016b: The genome of the seagrass Zostera marina reveals angiosperm adaptation to the sea. Nature, 530, 331, doi:10.1038/nature16548.</span></li> <li><span id="fn:r973">Hernán, G. et al., 2017: Future warmer seas: increased stress and susceptibility to grazing in seedlings of a marine habitat‐forming species. Global Change Biol., 23(11), 4530–4543, doi:10.1111/gcb.13768.</span></li> <li><span id="fn:r974">Scott, A.L. et al., 2018: The Role of Herbivory in Structuring Tropical Seagrass Ecosystem Service Delivery. Front. Plant Sci,, 9(127), doi:10.3389/fpls.2018.00127.</span></li> <li><span id="fn:r975">Blankespoor, B., S. Dasgupta and B. Laplante, 2014: Sea level rise and coastal wetlands. Ambio, 43(8), 996–1005, doi:10.1007/s13280-014-0500-4.</span></li> <li><span id="fn:r976">Crosby, S.C. et al., 2016: Salt marsh persistence is threatened by predicted sea level rise. Estuar. Coast. Shelf Sci., 181, 93–99, doi:10.1016/j.ecss.2016.08.018.</span></li> <li><span id="fn:r977">Spencer, T. et al., 2016: Global coastal wetland change under sea level rise and related stresses: The DIVA Wetland Change Model. Global Planet. Change, 139, 15–30, doi:10.1016/j.gloplacha.2015.12.018.</span></li> <li><span id="fn:r978">Brown, S. et al., 2018b: What are the implications of sea level rise for a 1.5, 2 and 3°C rise in global mean temperatures in the Ganges-Brahmaputra-Meghna and other vulnerable deltas? Reg. Environ. Change, 18(6), 1829–1842, doi:10.1007/s10113-018-1311-0.</span></li> <li><span id="fn:r979">Schuerch, M. et al., 2018: Future response of global coastal wetlands to sea level rise. Nature, 561(7722), 231–234, doi:10.1038/s41586-018-0476-5.</span></li> <li><span id="fn:r980">Watson, E.B. et al., 2017a: Anthropocene Survival of Southern New England’s Salt Marshes. Estuar. Coast., 40(3), 617–625, doi:10.1007/s12237-016-0166-1.</span></li> <li><span id="fn:r981">Valiela, I. et al., 2018: Transient coastal landscapes: Rising sea level threatens salt marshes. Sci. Total Environ., 640–641, 1148–1156, doi:10.1016/j.scitotenv.2018.05.235.</span></li> <li><span id="fn:r982">Ruiz-Frau, A. et al., 2017: Current state of seagrass ecosystem services: Research and policy integration. Ocean Coast. Manage., 149, 107–115, doi:10.1016/j.ocecoaman.2017.10.004.</span></li> <li><span id="fn:r983">Camp, E.F. et al., 2018: The Future of Coral Reefs Subject to Rapid Climate Change: Lessons from Natural Extreme Environments. Front. Mar. Sci., 5, 4.</span></li> <li><span id="fn:r984">Savva, I. et al., 2018: Thermal tolerance of Mediterranean marine macrophytes: Vulnerability to global warming. Ecol. Evol., 8(23), 12032–12043, doi:10.1002/ece3.4663.</span></li> <li><span id="fn:r985">Chefaoui, R. M., C. M. Duarte and E. A. Serrão, 2018: Dramatic loss of seagrass habitat under projected climate change in the Mediterranean Sea. Global Change Biol., 24(10), 4919-4928, doi:10.1111/gcb.14401.</span></li> <li><span id="fn:r986">Ward, R.D., D.A. Friess, R.H. Day and R.A. MacKenzie, 2016: Impacts of climate change on mangrove ecosystems: a region by region overview. Ecosyst. Health Sustain., 2(4), e01211, doi:10.1002/ehs2.1211.</span></li> <li><span id="fn:r987">Sasmito, S.D., D. Murdiyarso, D.A. Friess and S. Kurnianto, 2016: Can mangroves keep pace with contemporary sea level rise? A global data review. Wetlands Ecol. Manage., 24(2), 263–278, doi:10.1007/s11273-015-9466-7.</span></li> <li><span id="fn:r988">Enwright, N.M., K.T. Griffith and M.J. Osland, 2016: Barriers to and opportunities for landward migration of coastal wetlands with sea level rise. Front. Ecol. Environ., 14(6), 307–316, doi:10.1002/fee.1282.</span></li> <li><span id="fn:r989">Borchert, S.M., M.J. Osland, N.M. Enwright and K. Griffith, 2018: Coastal wetland adaptation to sea level rise: Quantifying potential for landward migration and coastal squeeze. J. Appl. Ecol., 55(6), 2876–2887, doi:10.1111/1365-2664.13169.</span></li> <li><span id="fn:r990">Luijendijk, A. et al., 2018: The State of the World’s Beaches. Sci. Rep., 8(1), 6641, doi:10.1038/s41598-018-24630-6.</span></li> <li><span id="fn:r991">Defeo, O. et al., 2009: Threats to sandy beach ecosystems: A review. Estuar. Coast. Shelf Sci., 81(1), 1–12, doi:10.1016/j.ecss.2008.09.022.</span></li> <li><span id="fn:r992">Drius, M. et al., 2019: Not just a sandy beach. The multi-service value of Mediterranean coastal dunes. Sci. Total Environ., 668, 1139–1155, doi:10.1016/j.scitotenv.2019.02.364.</span></li> <li><span id="fn:r993">Schlacher, T.A. and L. Thompson, 2013: Spatial structure on ocean-exposed sandy beaches: faunal zonation metrics and their variability. Mar. Ecol. Prog. Ser., 478, 43–55.</span></li> <li><span id="fn:r994">van Puijenbroek, M.E.B. et al., 2017: Exploring the contributions of vegetation and dune size to early dune development using unmanned aerial vehicle (UAV) imaging. Biogeosciences, 14(23), 5533–5549, doi:10.5194/bg-14-5533-2017.</span></li> <li><span id="fn:r995">Wong, P.P. et al., 2014b: Coastal systems and low-lying areas. Clim. Change, 2104, 361–409.</span></li> <li><span id="fn:r996">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r997">Castelle, B., S. Bujan, S. Ferreira and G. Dodet, 2017: Foredune morphological changes and beach recovery from the extreme 2013/2014 winter at a high-energy sandy coast. Mar. Geol., 385, 41–55, doi:10.1016/j.margeo.2016.12.006.</span></li> <li><span id="fn:r998">Delgado-Fernandez, I., N. O’Keeffe and R.G.D. Davidson-Arnott, 2019: Natural and human controls on dune vegetation cover and disturbance. Sci. Total Environ., 672, 643–656, doi:10.1016/j.scitotenv.2019.03.494.</span></li> <li><span id="fn:r999">Zinnert, J. C. et al., 2019: Connectivity in coastal systems: barrier island vegetation influences upland migration in a changing climate. Global Change Biol., 25(7), 2419-2430. doi:10.1111/gcb.14635.</span></li> <li><span id="fn:r1000">Zinnert, J. C. et al., 2019: Connectivity in coastal systems: barrier island vegetation influences upland migration in a changing climate. Global Change Biol., 25(7), 2419-2430. doi:10.1111/gcb.14635.</span></li> <li><span id="fn:r1001">Castelle, B., S. Bujan, S. Ferreira and G. Dodet, 2017: Foredune morphological changes and beach recovery from the extreme 2013/2014 winter at a high-energy sandy coast. Mar. Geol., 385, 41–55, doi:10.1016/j.margeo.2016.12.006.</span></li> <li><span id="fn:r1002">Kuriyama, Y. and S. Yanagishima, 2018: Regime shifts in the multi-annual evolution of a sandy beach profile. Earth Surface Proc. Landf., 43(15), 3133–3141, doi:10.1002/esp.4475.</span></li> <li><span id="fn:r1003">Carcedo, M.C., S.M. Fiori and C.S. Bremec, 2017: Zonation of macrobenthos across a mesotidal sandy beach: Variability based on physical factors. J. Sea Res., 121, 1–10.</span></li> <li><span id="fn:r1004">Delgado-Fernandez, I., N. O’Keeffe and R.G.D. Davidson-Arnott, 2019: Natural and human controls on dune vegetation cover and disturbance. Sci. Total Environ., 672, 643–656, doi:10.1016/j.scitotenv.2019.03.494.</span></li> <li><span id="fn:r1005">Orlando, L., L. Ortega and O. Defeo, 2019: Multi-decadal variability in sandy beach area and the role of climate forcing. Estuar. Coast. Shelf Sci., 218, 197–203, doi:10.1016/j.ecss.2018.12.015.</span></li> <li><span id="fn:r1006">Schoeman, D.S. et al., 2015: Edging along a warming coast: a range extension for a common sandy beach crab. PLoS One, 10(11), e0141976.</span></li> <li><span id="fn:r1007">Orlando, L., L. Ortega and O. Defeo, 2019: Multi-decadal variability in sandy beach area and the role of climate forcing. Estuar. Coast. Shelf Sci., 218, 197–203, doi:10.1016/j.ecss.2018.12.015.</span></li> <li><span id="fn:r1008">Vázquez, N.G. et al., 2016: Mass Mortalities Affecting Populations of the Yellow Clam Amarilladesma mactroide Along Its Geographic Range. J. of Shellfish Research, 35(4), 739–745.</span></li> <li><span id="fn:r1009">Turra, A. et al., 2016: Frequency, magnitude, and possible causes of stranding and mass-mortality events of the beach clam Tivela mactroides (Bivalvia: Veneridae). PLoS One, 11(1), e0146323.</span></li> <li><span id="fn:r1010">Martínez, C. et al., 2017: Coastal erosion in central Chile: A new hazard? Ocean Coast. Manage.,156, 141-155. doi:10.1016/j.ocecoaman.2017.07.011.</span></li> <li><span id="fn:r1011">Rêgo, J.C.L., A. Soares-Gomes and F S. da Silva, 2018: Loss of vegetation cover in a tropical island of the Amazon coastal zone (Maranhão Island, Brazil). Land Use Policy, 71, 593–601, doi:10.1016/j.landusepol.2017.10.055.</span></li> <li><span id="fn:r1012">Delgado-Fernandez, I., N. O’Keeffe and R.G.D. Davidson-Arnott, 2019: Natural and human controls on dune vegetation cover and disturbance. Sci. Total Environ., 672, 643–656, doi:10.1016/j.scitotenv.2019.03.494.</span></li> <li><span id="fn:r1013">Castelle, B., S. Bujan, S. Ferreira and G. Dodet, 2017: Foredune morphological changes and beach recovery from the extreme 2013/2014 winter at a high-energy sandy coast. Mar. Geol., 385, 41–55, doi:10.1016/j.margeo.2016.12.006.</span></li> <li><span id="fn:r1014">Houser, C., P. Wernette and B.A. Weymer, 2018: Scale-dependent behavior of the foredune: Implications for barrier island response to storms and sea level rise. Geomorphology, 303, 362–374, doi:10.1016/j.geomorph.2017.12.011.</span></li> <li><span id="fn:r1015">Kuriyama, Y. and S. Yanagishima, 2018: Regime shifts in the multi-annual evolution of a sandy beach profile. Earth Surface Proc. Landf., 43(15), 3133–3141, doi:10.1002/esp.4475.</span></li> <li><span id="fn:r1016">Vitousek, S. et al., 2017: A model integrating longshore and cross‐shore processes for predicting long‐term shoreline response to climate change. J. Geophys. Res-Earth, 122(4), 782–806.</span></li> <li><span id="fn:r1017">Martínez, C. et al., 2017: Coastal erosion in central Chile: A new hazard? Ocean Coast. Manage.,156, 141-155. doi:10.1016/j.ocecoaman.2017.07.011.</span></li> <li><span id="fn:r1018">Hubbard, D., J. Dugan, N. Schooler and S. Viola, 2014: Local extirpations and regional declines of endemic upper beach invertebrates in southern California. Estuar. Coast. Shelf Sci., 150, 67–75.</span></li> <li><span id="fn:r1019">Orlando, L., L. Ortega and O. Defeo, 2019: Multi-decadal variability in sandy beach area and the role of climate forcing. Estuar. Coast. Shelf Sci., 218, 197–203, doi:10.1016/j.ecss.2018.12.015.</span></li> <li><span id="fn:r1020">Laloë, J.O. et al., 2017: Climate change and temperature‐linked hatchling mortality at a globally important sea turtle nesting site. Global Change Biol., 23(11), 4922–4931.</span></li> <li><span id="fn:r1021">Patrício, A.R. et al., 2019: Climate change resilience of a globally important sea turtle nesting population. Global Change Biol., 25(2), 522–535, doi:10.1111/gcb.14520.</span></li> <li><span id="fn:r1022">Patrício, A.R. et al., 2019: Climate change resilience of a globally important sea turtle nesting population. Global Change Biol., 25(2), 522–535, doi:10.1111/gcb.14520.</span></li> <li><span id="fn:r1023">Varela, M.R. et al., 2019: Assessing climate change associated sea level rise impacts on sea turtle nesting beaches using drones, photogrammetry and a novel GPS system. Global Change Biol., 25(2), 753–762, doi:10.1111/gcb.14526.</span></li> <li><span id="fn:r1024">Patrício, A.R. et al., 2019: Climate change resilience of a globally important sea turtle nesting population. Global Change Biol., 25(2), 522–535, doi:10.1111/gcb.14520.</span></li> <li><span id="fn:r1025">Jaramillo, E. et al., 2017: Macroscale patterns in body size of intertidal crustaceans provide insights on climate change effects. PLoS One, 12(5), e0177116, doi:10.1371/journal.pone.0177116.</span></li> <li><span id="fn:r1026">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1027">Kubicek, A., B. Breckling, O. Hoegh-Guldberg and H. Reuter, 2019: Climate change drives trait-shifts in coral reef communities. Sci. Rep., 9(1), 3721, doi:10.1038/s41598-019-38962-4.</span></li> <li><span id="fn:r1028">Sully, S. et al., 2019: A global analysis of coral bleaching over the past two decades. Nat. Commun., 10(1), 1264, doi:10.1038/s41467-019-09238-2.</span></li> <li><span id="fn:r1029">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1030">Kao, K.-W. et al., 2018: Repeated and Prolonged Temperature Anomalies Negate Symbiodiniaceae Genera Shuffling in the Coral Platygyra verweyi (Scleractinia; Merulinidae). Zool. Stud., 57(55).</span></li> <li><span id="fn:r1031">Jury, C.P. and R.J. Toonen, 2019: Adaptive responses and local stressor mitigation drive coral resilience in warmer, more acidic oceans. Proc. Roy. Soc. B., 286(1902), 20190614.</span></li> <li><span id="fn:r1032">Jiang, L. et al., 2018: Increased temperature mitigates the effects of ocean acidification on the calcification of juvenile Pocillopora damicornis, but at a cost. Coral Reefs, 37(1), 71–79.</span></li> <li><span id="fn:r1033">Mollica, N.R. et al., 2018: Ocean acidification affects coral growth by reducing skeletal density. PNAS, 115(8), 1754, doi:10.1073/pnas.1712806115.</span></li> <li><span id="fn:r1034">Bove, C.B. et al., 2019: Common Caribbean corals exhibit highly variable responses to future acidification and warming. Proc. Roy. Soc. B., 286(1900), 20182840.</span></li> <li><span id="fn:r1035">Agostini, S. et al., 2018: Ocean acidification drives community shifts towards simplified non-calcified habitats in a subtropical−temperate transition zone. Sci. Rep., 8(1), 11354, doi:10.1038/s41598-018-29251-7.</span></li> <li><span id="fn:r1036">Brown, B.E., R.P. Dunne, N. Phongsuwan and P.J. Somerfield, 2011: Increased sea level promotes coral cover on shallow reef flats in the Andaman Sea, eastern Indian Ocean. Coral Reefs, 30(4), 867, doi:10.1007/s00338-011-0804-9.</span></li> <li><span id="fn:r1037">Perry, C.T. et al., 2018: Loss of coral reef growth capacity to track future increases in sea level. Nature, 558(7710), 396–400, doi:10.1038/s41586-018-0194-z.</span></li> <li><span id="fn:r1038">Lavender, S.L., R.K. Hoeke and D.J. Abbs, 2018: The influence of sea surface temperature on the intensity and associated storm surge of tropical cyclone Yasi: a sensitivity study. Nat. Hazards Earth Syst. Sci., 18(3), 795–805, doi:10.5194/nhess-18-795-2018.</span></li> <li><span id="fn:r1039">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1040">Hughes, T.P. et al., 2019a: Global warming impairs stock–recruitment dynamics of corals. Nature, 568(7752), 387–390, doi:10.1038/s41586-019-1081-y.</span></li> <li><span id="fn:r1041">Ingeman, K.E., J.F. Samhouri and A.C. Stier, 2019: Ocean recoveries for tomorrow’s Earth: Hitting a moving target. Science, 363(6425), eaav1004, doi:10.1126/science.aav1004.</span></li> <li><span id="fn:r1042">Fine, M. et al., 2019: Coral reefs of the Red Sea — Challenges and potential solutions. Reg. Stud. Mar. Sci., 25, 100498, doi:10.1016/j.rsma.2018.100498.</span></li> <li><span id="fn:r1043">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1044">Kubicek, A., B. Breckling, O. Hoegh-Guldberg and H. Reuter, 2019: Climate change drives trait-shifts in coral reef communities. Sci. Rep., 9(1), 3721, doi:10.1038/s41598-019-38962-4.</span></li> <li><span id="fn:r1045">Rinkevich, B., 2019: Coral chimerism as an evolutionary rescue mechanism to mitigate global climate change impacts. Global Change Biol., 25(4), 1198–1206, doi:10.1111/gcb.14576.</span></li> <li><span id="fn:r1046">Gunderson, A.R., B. Tsukimura and J.H. Stillman, 2017: Indirect Effects of Global Change: From Physiological and Behavioral Mechanisms to Ecological Consequences. Integr. Comp. Biol., 57(1), 48–54, doi:10.1093/icb/icx056.</span></li> <li><span id="fn:r1047">Fabricius, K.E., 2005: Effects of terrestrial runoff on the ecology of corals and coral reefs: review and synthesis. Mar. Pollut. Bull., 50(2), 125–146, doi:10.1016/j.marpolbul.2004.11.028.</span></li> <li><span id="fn:r1048">Duvat, V.K.E. et al., 2017: Trajectories of exposure and vulnerability of small islands to climate change. WiRes. Clim. Change, 8(6), e478 doi:10.1002/wcc.478.</span></li> <li><span id="fn:r1049">Harborne, A.R. et al., 2017: Multiple Stressors and the Functioning of Coral Reefs. Annu. Rev. Mar. Sci., Vol 8, 9(1), 445–468, doi:10.1146/annurev-marine-010816-060551.</span></li> <li><span id="fn:r1050">McCook, L.J., 1999: Macroalgae, nutrients and phase shifts on coral reefs: scientific issues and management consequences for the Great Barrier Reef. Coral Reefs, 18(4), 357–367, doi:10.1007/s003380050213.</span></li> <li><span id="fn:r1051">Hughes, T.P. et al., 2010: Rising to the challenge of sustaining coral reef resilience. Trends Ecol. Evol., 25(11), 633–642, doi:10.1016/j.tree.2010.07.011.</span></li> <li><span id="fn:r1052">Graham, N.A.J. et al., 2013: Managing resilience to reverse phase shifts in coral reefs. Front. Ecol. Environ., 11(10), 541–548, doi:10.1890/120305.</span></li> <li><span id="fn:r1053">Hughes, T.P. et al., 2018: Spatial and temporal patterns of mass bleaching of corals in the Anthropocene. Science, 359(6371), 80, doi:10.1126/science.aan8048.</span></li> <li><span id="fn:r1054">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1055">Wernberg, T. et al., 2016: Climate-driven regime shift of a temperate marine ecosystem. Science, 353(6295), 169, doi:10.1126/science.aad8745.</span></li> <li><span id="fn:r1056">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1057">Cacciapaglia, C. and R. van Woesik, 2018: Marine species distribution modelling and the effects of genetic isolation under climate change. J. Biogeogr., 45(1), 154–163, doi:10.1111/jbi.13115.</span></li> <li><span id="fn:r1058">Dietz, S. et al., 2018: The Economics of 1.5°C Climate Change. Annu. Rev. Environ. Resourc., 43(1), 455–480, doi:10.1146/annurev-environ-102017-025817.</span></li> <li><span id="fn:r1059">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1060">DeBiasse, M.B. and M.W. Kelly, 2016: Plastic and Evolved Responses to Global Change: What Can We Learn from Comparative Transcriptomics? J. Hered., 107(1), 71–81, doi:10.1093/jhered/esv073.</span></li> <li><span id="fn:r1061">Gibbin, E.M. et al., 2017: The evolution of phenotypic plasticity under global change. Sci. Rep., 7(1), 17253, doi:10.1038/s41598-017-17554-0.</span></li> <li><span id="fn:r1062">Wall, C.B. et al., 2017: Elevated pCO(2) affects tissue biomass composition, but not calcification, in a reef coral under two light regimes. R. Soc. Open Sci., 4(11), 170683, doi:10.1098/rsos.170683.</span></li> <li><span id="fn:r1063">Camp, E.F. et al., 2018: The Future of Coral Reefs Subject to Rapid Climate Change: Lessons from Natural Extreme Environments. Front. Mar. Sci., 5, 4.</span></li> <li><span id="fn:r1064">Donelson, J.M., S. Salinas, P.L. Munday and L.N.S. Shama, 2018: Transgenerational plasticity and climate change experiments: Where do we go from here? Glob Chang Biol, 24(1), 13–34, doi:10.1111/gcb.13903.</span></li> <li><span id="fn:r1065">Drake, J.L. et al., 2018: Molecular and geochemical perspectives on the influence of CO2 on calcification in coral cell cultures. Limnol. Oceanogr., 63(1), 107–121, doi:10.1002/lno.10617.</span></li> <li><span id="fn:r1066">Veilleux, H.D. and J.M. Donelson, 2018: Reproductive gene expression in a coral reef fish exposed to increasing temperature across generations. Conserv. Physiol., 6(1), cox077–cox077, doi:10.1093/conphys/cox077.</span></li> <li><span id="fn:r1067">Hughes, T.P. et al., 2019b: Ecological memory modifies the cumulative impact of recurrent climate extremes. Nat. Clim. Change, 9(1), 40–43, doi:10.1038/s41558-018-0351-2.</span></li> <li><span id="fn:r1068">Cornwall, C.E. et al., 2018: Resistance of corals and coralline algae to ocean acidification: physiological control of calcification under natural pH variability. Proc. Roy. Soc. B. Biol., 285(1884). https://doi.org/10.1098/rspb.2018.1168</span></li> <li><span id="fn:r1069">Gintert, B.E. et al., 2018: Marked annual coral bleaching resilience of an inshore patch reef in the Florida Keys: A nugget of hope, aberrance, or last man standing? Coral Reefs, 37(2), 533–547, doi:10.1007/s00338-018-1678-x.</span></li> <li><span id="fn:r1070">Liew, Y.J. et al., 2017: Condition-specific RNA editing in the coral symbiont Symbiodinium microadriaticum. PLOS Genetics, 13(2), e1006619, doi:10.1371/journal.pgen.1006619.</span></li> <li><span id="fn:r1071">Torda, G. et al., 2017: Rapid adaptive responses to climate change in corals. Nat. Clim. Change, 7, 627, doi:10.1038/nclimate3374.</span></li> <li><span id="fn:r1072">Li, Y. et al., 2018b: DNA methylation regulates transcriptional homeostasis of algal endosymbiosis in the coral model Aiptasia. Sci. Adv., 4(8), eaat2142, doi:10.1126/sciadv.aat2142.</span></li> <li><span id="fn:r1073">Liew, Y.J. et al., 2018: Epigenome-associated phenotypic acclimatization to ocean acidification in a reef-building coral. Sci. Adv., 4(6), eaar8028, doi:10.1126/sciadv.aar8028.</span></li> <li><span id="fn:r1074">Ingeman, K.E., J.F. Samhouri and A.C. Stier, 2019: Ocean recoveries for tomorrow’s Earth: Hitting a moving target. Science, 363(6425), eaav1004, doi:10.1126/science.aav1004.</span></li> <li><span id="fn:r1075">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1076">Kubicek, A., B. Breckling, O. Hoegh-Guldberg and H. Reuter, 2019: Climate change drives trait-shifts in coral reef communities. Sci. Rep., 9(1), 3721, doi:10.1038/s41598-019-38962-4.</span></li> <li><span id="fn:r1077">Sully, S. et al., 2019: A global analysis of coral bleaching over the past two decades. Nat. Commun., 10(1), 1264, doi:10.1038/s41467-019-09238-2.</span></li> <li><span id="fn:r1078">Schulz, K.G. et al., 2013: Temporal biomass dynamics of an Arctic plankton bloom in response to increasing levels of atmospheric carbon dioxide. Biogeosciences (BG), 10, 161–180.</span></li> <li><span id="fn:r1079">McClanahan, T.R., N.A.J. Graham and E.S. Darling, 2014: Coral reefs in a crystal ball: predicting the future from the vulnerability of corals and reef fishes to multiple stressors. Curr. Opin. Environ. Sustain., 7, 59–64, doi:10.1016/j.cosust.2013.11.028.</span></li> <li><span id="fn:r1080">Mumby, P.J. and R. van Woesik, 2014: Consequences of Ecological, Evolutionary and Biogeochemical Uncertainty for Coral Reef Responses to Climatic Stress. Curr. Biol., 24(10), R413–R423, doi:10.1016/j.cub.2014.04.029.</span></li> <li><span id="fn:r1081">Pandolfi, J.M., 2015: Incorporating Uncertainty in Predicting the Future Response of Coral Reefs to Climate Change. Annu. Rev. Ecol. Evol. Syst.,46(1), 281–303, doi:10.1146/annurev-ecolsys-120213-091811.</span></li> <li><span id="fn:r1082">Folkersen, M.V., 2018: Ecosystem valuation: Changing discourse in a time of climate change. Ecosyst. Serv., 29, 1–12, doi:10.1016/j.ecoser.2017.11.008.</span></li> <li><span id="fn:r1083">Bridge, T.C.L. et al., 2013: Depth-dependent mortality of reef corals following a severe bleaching event: implications for thermal refuges and population recovery. F1000Research, 2, 187, doi:10.12688/f1000research.2-187.v3.</span></li> <li><span id="fn:r1084">Thomas, C.J. et al., 2015: Connectivity between submerged and near-sea-surface coral reefs: can submerged reef populations act as refuges? Divers. Distrib., 21(10), 1254–1266, doi:10.1111/ddi.12360.</span></li> <li><span id="fn:r1085">Lindfield, S.J., E.S. Harvey, A.R. Halford and J.L. McIlwain, 2016: Mesophotic depths as refuge areas for fishery-targeted species on coral reefs. Coral Reefs, 35(1), 125–137, doi:10.1007/s00338-015-1386-8.</span></li> <li><span id="fn:r1086">Smith, T.B. et al., 2016b: Caribbean mesophotic coral ecosystems are unlikely climate change refugia. Global Change Biol., 22(8), 2756–2765, doi:10.1111/gcb.13175.</span></li> <li><span id="fn:r1087">Bongaerts, P. et al., 2017: Deep reefs are not universal refuges: Reseeding potential varies among coral species. Sci. Adv., 3(2), e1602373, doi:10.1126/sciadv.1602373.</span></li> <li><span id="fn:r1088">Tkachenko, K.S. and K. Soong, 2017: Dongsha Atoll: A potential thermal refuge for reef-building corals in the South China Sea. Mar. Environ. Res., 127, 112–125, doi:10.1016/j.marenvres.2017.04.003.</span></li> <li><span id="fn:r1089">Rocha, L.A. et al., 2018: Mesophotic coral ecosystems are threatened and ecologically distinct from shallow water reefs. Science, 361(6399), 281, doi:10.1126/science.aaq1614.</span></li> <li><span id="fn:r1090">Smith, T.B., J.L. Maté and J. Gyory, 2017: Thermal Refuges and Refugia for Stony Corals in the Eastern Tropical Pacific. In: Coral Reefs of the Eastern Tropical Pacific [Glynn, P.W., D.P. Manzello and I.C. Enochs (eds.)]. Springer Netherlands, Dordrecht, pp. 501–515. ISBN 978-94-017-7498-7.</span></li> <li><span id="fn:r1091">Chollett, I. and P.J. Mumby, 2013: Reefs of last resort: Locating and assessing thermal refugia in the wider Caribbean. Biol. Conserv., 167, 179–186, doi:10.1016/j.biocon.2013.08.010.</span></li> <li><span id="fn:r1092">Fine, M., H. Gildor and A. Genin, 2013: A coral reef refuge in the Red Sea. Global Change Biol., 19(12), 3640–3647, doi:10.1111/gcb.12356.</span></li> <li><span id="fn:r1093">Osman, E.O. et al., 2017: Thermal refugia against coral bleaching throughout the northern Red Sea. Global Change Biol., 52, 716, doi:10.1111/gcb.13895.</span></li> <li><span id="fn:r1094">Coles, S.L. and B.M. Riegl, 2013: Thermal tolerances of reef corals in the Gulf: A review of the potential for increasing coral survival and adaptation to climate change through assisted translocation. Mar. Pollut. Bull., 72(2), 323–332, doi:10.1016/j.marpolbul.2012.09.006.</span></li> <li><span id="fn:r1095">Hughes, T.P. et al., 2010: Rising to the challenge of sustaining coral reef resilience. Trends Ecol. Evol., 25(11), 633–642, doi:10.1016/j.tree.2010.07.011.</span></li> <li><span id="fn:r1096">Morgan, K.M., C.T. Perry, J.A. Johnson and S.G. Smithers, 2017: Nearshore Turbid-Zone Corals Exhibit High Bleaching Tolerance on the Great Barrier Reef Following the 2016 Ocean Warming Event. Front. Mar. Sci., 4, 224, doi:10.3389/fmars.2017.00224.</span></li> <li><span id="fn:r1097">van Hooidonk, R., J.A. Maynard and S. Planes, 2013: Temporary refugia for coral reefs in a warming world. Nat. Clim. Change, 3(5), 508–511, doi:10.1038/NCLIMATE1829.</span></li> <li><span id="fn:r1098">Heron, S.F., J.A. Maynard, R. van Hooidonk and C.M. Eakin, 2016: Warming Trends and Bleaching Stress of the World’s Coral Reefs 1985–2012. Sci. Rep., 6(1), doi:10.1038/srep38402.</span></li> <li><span id="fn:r1099">Langlais, C.E. et al., 2017: Coral bleaching pathways under the control of regional temperature variability. Nat. Clim. Change, 7(11), nclimate3399-844, doi:10.1038/nclimate3399.</span></li> <li><span id="fn:r1100">McClenachan, L. et al., 2017: Ghost reefs: Nautical charts document large spatial scale of coral reef loss over 240 years. Sci. Adv., 3(9) e1603155, doi:10.1126/sciadv.1603155.</span></li> <li><span id="fn:r1101">van Hooidonk, R. et al., 2016: Local-scale projections of coral reef futures and implications of the Paris Agreement. Sci. Rep., 6, 39666, doi:10.1038/srep39666.</span></li> <li><span id="fn:r1102">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1103">Kleypas, J.A.K.A., 2019: Climate change and tropical marine ecosystems: A review with an emphasis on coral reefs. UNED Research Journal, 11(1), 24–35.</span></li> <li><span id="fn:r1104">Kubicek, A., B. Breckling, O. Hoegh-Guldberg and H. Reuter, 2019: Climate change drives trait-shifts in coral reef communities. Sci. Rep., 9(1), 3721, doi:10.1038/s41598-019-38962-4.</span></li> <li><span id="fn:r1105">Sully, S. et al., 2019: A global analysis of coral bleaching over the past two decades. Nat. Commun., 10(1), 1264, doi:10.1038/s41467-019-09238-2.</span></li> <li><span id="fn:r1106">Hawkins, S. et al., 2016: Impacts and effects of ocean warming on intertidal rocky habitats in Explaining ocean warming: Cause, scale, effects and consequences. Full report. [D. Laffoley and J.M. Baxeter eds.] IUCN, 147-176, Gland, CH, ISBN: 978-2-8317-1806-4</span></li> <li><span id="fn:r1107">Wong, P.P., et al. 2014a: Coastal systems and low-lying areas. In: Climate Change 2014: Impacts, Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. [Field, C.B., et al. (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, USA, pp. 361-409. ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r1108">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1109">Agostini, S. et al., 2018: Ocean acidification drives community shifts towards simplified non-calcified habitats in a subtropical−temperate transition zone. Sci. Rep., 8(1), 11354, doi:10.1038/s41598-018-29251-7.</span></li> <li><span id="fn:r1110">Duarte, B. et al., 2018: Climate Change Impacts on Seagrass Meadows and Macroalgal Forests: An Integrative Perspective on Acclimation and Adaptation Potential. Front. Mar. Sci., 5, 190.</span></li> <li><span id="fn:r1111">Ullah, H., I. Nagelkerken, S.U. Goldenberg and D.A. Fordham, 2018: Climate change could drive marine food web collapse through altered trophic flows and cyanobacterial proliferation. PLoS Biology, 16(1), e2003446.</span></li> <li><span id="fn:r1112">Milazzo, M. et al., 2019: Biogenic habitat shifts under long-term ocean acidification show nonlinear community responses and unbalanced functions of associated invertebrates. Sci. Total Environ., 667, 41–48, doi:10.1016/j.scitotenv.2019.02.391.</span></li> <li><span id="fn:r1113">Hawkins, S. et al., 2016: Impacts and effects of ocean warming on intertidal rocky habitats in Explaining ocean warming: Cause, scale, effects and consequences. Full report. [D. Laffoley and J.M. Baxeter eds.] IUCN, 147-176, Gland, CH, ISBN: 978-2-8317-1806-4</span></li> <li><span id="fn:r1114">Zamir, R., P. Alpert and G. Rilov, 2018: Increase in Weather Patterns Generating Extreme Desiccation Events: Implications for Mediterranean Rocky Shore Ecosystems. Estuar. Coast., 41(7), 1868–1884, doi:10.1007/s12237-018-0408-5.</span></li> <li><span id="fn:r1115">Hawkins, S. et al., 2016: Impacts and effects of ocean warming on intertidal rocky habitats in Explaining ocean warming: Cause, scale, effects and consequences. Full report. [D. Laffoley and J.M. Baxeter eds.] IUCN, 147-176, Gland, CH, ISBN: 978-2-8317-1806-4</span></li> <li><span id="fn:r1116">Harley, C.D.G., 2011: Climate change, keystone predation, and biodiversity loss. Science, 334(6059), 1124–1127, doi:10.1126/science.1210199.</span></li> <li><span id="fn:r1117">Sanford, E., 1999: Regulation of keystone predation by small changes in ocean temperature. Science, 283(5410), 2095–2097, doi:10.1126/science.283.5410.2095.</span></li> <li><span id="fn:r1118">Duarte, C.M. et al., 2013: Is ocean acidification an open-ocean syndrome? Understanding anthropogenic impacts on seawater pH. Estuar. Coast., 36(2), 221–236.</span></li> <li><span id="fn:r1119">Nicastro, K.R. et al., 2013: Shift happens: trailing edge contraction associated with recent warming trends threatens a distinct genetic lineage in the marine macroalga Fucus vesiculosus. BMC Biology, 11(1), 6, doi:10.1186/1741-7007-11-6.</span></li> <li><span id="fn:r1120">Barry, J.P., C.H. Baxter, R.D. Sagarin and S.E. Gilman, 1995: Climate-related, long-term faunal changes in a california rocky intertidal community. Science, 267(5198), 672–675, doi:10.1126/science.267.5198.672.</span></li> <li><span id="fn:r1121">Mieszkowska, N. et al., 2006: Changes in the range of some common rocky shore species in Britain—a response to climate change? Hydrobiologia, 555, 241–251.</span></li> <li><span id="fn:r1122">Lima, F.P. et al., 2007: Do distributional shifts of northern and southern species of algae match the warming pattern? Global Change Biol., 13(12), 2592–2604, doi:10.1111/j.1365-2486.2007.01451.x.</span></li> <li><span id="fn:r1123">Yeruham, E., G. Rilov, M. Shpigel and A. Abelson, 2015: Collapse of the echinoid Paracentrotus lividus populations in the Eastern Mediterranean—result of climate change? Sci. Rep., 5, 13479.</span></li> <li><span id="fn:r1124">Sorte, C.J. et al., 2017: Long‐term declines in an intertidal foundation species parallel shifts in community composition. Global Change Biol., 23(1), 341–352.</span></li> <li><span id="fn:r1125">Gazeau, F. et al., 2014: Impact of ocean acidification and warming on the Mediterranean mussel (Mytilus galloprovincialis). Front. Mar. Sci., 1, 62, doi:10.3389/fmars.2014.00062.</span></li> <li><span id="fn:r1126">Jurgens, L.J. et al., 2015: Patterns of mass mortality among rocky shore invertebrates across 100 km of northeastern Pacific coastline. PLoS One, 10(6), e0126280.</span></li> <li><span id="fn:r1127">Gatti, G. et al., 2017: Observational information on a temperate reef community helps understanding the marine climate and ecosystem shift of the 1980–90s. Mar. Pollut. Bull., 114(1), 528–538.</span></li> <li><span id="fn:r1128">Sorte, C.J. et al., 2017: Long‐term declines in an intertidal foundation species parallel shifts in community composition. Global Change Biol., 23(1), 341–352.</span></li> <li><span id="fn:r1129">Sunday, J.M. et al., 2017: Ocean acidification can mediate biodiversity shifts by changing biogenic habitat. Nat. Clim. Change, 7(1), 81.</span></li> <li><span id="fn:r1130">Kružić, P., P. Rodić, A. Popijač and M. Sertić, 2016: Impacts of temperature anomalies on mortality of benthic organisms in the Adriatic Sea. Mar. Ecol., 37(6), 1190–1209, doi:10.1111/maec.12293.</span></li> <li><span id="fn:r1131">Lima, F.P. et al., 2016: Loss of thermal refugia near equatorial range limits. Global Change Biol., 22(1), 254–263.</span></li> <li><span id="fn:r1132">Nannini, M., L. De Marchi, C. Lombardi and F. Ragazzola, 2015: Effects of thermal stress on the growth of an intertidal population of Ellisolandia elongata (Rhodophyta) from N–W Mediterranean Sea. Mar. Environ. Res., 112, 11–19, doi:10.1016/j.marenvres.2015.05.005.</span></li> <li><span id="fn:r1133">Kroeker, K.J. et al., 2013: Impacts of ocean acidification on marine organisms: quantifying sensitivities and interaction with warming. Global Change Biol., 19(6), 1884–1896.</span></li> <li><span id="fn:r1134">Kwiatkowski, L. et al., 2016: Nighttime dissolution in a temperate coastal ocean ecosystem under acidification. Sci. Rep., 6(1), 22984, doi:10.1038/srep22984.</span></li> <li><span id="fn:r1135">Duarte, B. et al., 2018: Climate Change Impacts on Seagrass Meadows and Macroalgal Forests: An Integrative Perspective on Acclimation and Adaptation Potential. Front. Mar. Sci., 5, 190.</span></li> <li><span id="fn:r1136">Ciais, P. et al., 2013: Carbon and Other Biogeochemical Cycles. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley(eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 465–570.</span></li> <li><span id="fn:r1137">Ramajo, L. et al., 2016: Food supply confers calcifiers resistance to ocean acidification. Sci. Rep., 6(1), 19374. doi:10.1038/srep19374.</span></li> <li><span id="fn:r1138">Kroeger, K.D., S. Crooks, S. Moseman-Valtierra and J. Tang, 2017: Restoring tides to reduce methane emissions in impounded wetlands: A new and potent Blue Carbon climate change intervention. Sci. Rep., 7(1), 11914.</span></li> <li><span id="fn:r1139">Hewitt, J.E., J.I. Ellis and S.F. Thrush, 2016: Multiple stressors, nonlinear effects and the implications of climate change impacts on marine coastal ecosystems. Global Change Biol., 22(8), 2665–2675.</span></li> <li><span id="fn:r1140">Kroeker, K.J. et al., 2013: Impacts of ocean acidification on marine organisms: quantifying sensitivities and interaction with warming. Global Change Biol., 19(6), 1884–1896.</span></li> <li><span id="fn:r1141">Linares, C. et al., 2015: Persistent natural acidification drives major distribution shifts in marine benthic ecosystems. Proc. Roy. Soc. B. Biol., 282(1818) 20150587.</span></li> <li><span id="fn:r1142">Hall-Spencer, J.M. et al., 2008: Volcanic carbon dioxide vents show ecosystem effects of ocean acidification. Nature, 454, 96, doi:10.1038/nature07051.</span></li> <li><span id="fn:r1143">Agostini, S. et al., 2018: Ocean acidification drives community shifts towards simplified non-calcified habitats in a subtropical−temperate transition zone. Sci. Rep., 8(1), 11354, doi:10.1038/s41598-018-29251-7.</span></li> <li><span id="fn:r1144">Baggini, C., Y. Issaris, M. Salomidi and J. Hall-Spencer, 2015: Herbivore diversity improves benthic community resilience to ocean acidification. J. Exp. Mar. Biol. Ecol., 469, 98–104, doi:10.1016/j.jembe.2015.04.019.</span></li> <li><span id="fn:r1145">Kroeker, K.J., F. Micheli, M.C. Gambi and T.R. Martz, 2011: Divergent ecosystem responses within a benthic marine community to ocean acidification. PNAS, 108(35), 14515–14520, doi:10.1073/pnas.1107789108.</span></li> <li><span id="fn:r1146">Goldenberg, S.U. et al., 2017: Boosted food web productivity through ocean acidification collapses under warming. Global Change Biol., 23(10), 4177–4184.</span></li> <li><span id="fn:r1147">Goldenberg, S.U. et al., 2017: Boosted food web productivity through ocean acidification collapses under warming. Global Change Biol., 23(10), 4177–4184.</span></li> <li><span id="fn:r1148">Kordas, R.L., I. Donohue and C.D. Harley, 2017: Herbivory enables marine communities to resist warming. Sci. Adv., 3(10), e1701349.</span></li> <li><span id="fn:r1149">Ghedini, G., B.D. Russell and S.D. Connell, 2015: Trophic compensation reinforces resistance: herbivory absorbs the increasing effects of multiple disturbances. Ecol. Lett., 18(2), 182–187.</span></li> <li><span id="fn:r1150">Ullah, H., I. Nagelkerken, S.U. Goldenberg and D.A. Fordham, 2018: Climate change could drive marine food web collapse through altered trophic flows and cyanobacterial proliferation. PLoS Biology, 16(1), e2003446.</span></li> <li><span id="fn:r1151">Krause-Jensen, D. and C.M. Duarte, 2016: Substantial role of macroalgae in marine carbon sequestration. Nat. Geosci., 9(10), 737–742, doi:10.1038/ngeo2790.</span></li> <li><span id="fn:r1152">Filbee-Dexter, K., C.J. Feehan and R.E. Scheibling, 2016: Large-scale degradation of a kelp ecosystem in an ocean warming hotspot. Mar. Ecol. Prog. Ser., 543, 141–152, doi:10.3354/meps11554.</span></li> <li><span id="fn:r1153">Steneck, R.S. et al., 2003: Kelp forest ecosystems: biodiversity, stability, resilience and future. Environ. Conserv., 29(04), 436–459, doi:10.1017/S0376892902000322.</span></li> <li><span id="fn:r1154">Pessarrodona, A., A. Foggo and D.A. Smale, 2019: Can ecosystem functioning be maintained despite climate-driven shifts in species composition? Insights from novel marine forests. J. Ecol., 107(1), 91–104, doi:10.1111/1365-2745.13053.</span></li> <li><span id="fn:r1155">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1156">Wernberg, T., K. Krumhansl, K. Filbee-Dexter and M.F. Pedersen, 2019: Status and trends for the world’s kelp forests. In: World Seas: An Environmental Evaluation. [Sheppard, C. (ed.)]. Elsevier, New York. pp. 57–78. ISBN: 978-0-12-805052-1</span></li> <li><span id="fn:r1157">Filbee-Dexter, K. and T. Wernberg, 2018: Rise of turfs: A new battlefront for globally declining kelp forests. BioScience, 68(2), 64–76.</span></li> <li><span id="fn:r1158">Andersen, G.S., M.F. Pedersen and S.L. Nielsen, 2013: Temperature Acclimation and Heat Tolerance of Photosynthesis in Norwegian Saccharina Latissima ( Laminariales, Phaeophyceae). J. Phycol., 49(4), 689–700, doi:10.1111/jpy.12077.</span></li> <li><span id="fn:r1159">Filbee-Dexter, K. and T. Wernberg, 2018: Rise of turfs: A new battlefront for globally declining kelp forests. BioScience, 68(2), 64–76.</span></li> <li><span id="fn:r1160">Araujo, R.M. et al., 2016: Status, trends and drivers of kelp forests in Europe: an expert assessment. Biodivers. Conserv., 25(7), 1319–1348, doi:10.1007/s10531-016-1141-7.</span></li> <li><span id="fn:r1161">Krumhans, K.A. et al., 2016: Global patterns of kelp forest change over the past half-century. PNAS, 113(48), 13785–13790, doi:10.1073/pnas.1606102113.</span></li> <li><span id="fn:r1162">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r1163">Krumhans, K.A. et al., 2016: Global patterns of kelp forest change over the past half-century. PNAS, 113(48), 13785–13790, doi:10.1073/pnas.1606102113.</span></li> <li><span id="fn:r1164">Reed, D. et al., 2016: Extreme warming challenges sentinel status of kelp forests as indicators of climate change. Nat. Commun., 7, 13757, doi:10.1038/ncomms13757.</span></li> <li><span id="fn:r1165">Wernberg, T. et al., 2018: Genetic diversity and kelp forest vulnerability to climatic stress. Sci. Rep., 8(1), 1851, doi:10.1038/s41598-018-20009-9.</span></li> <li><span id="fn:r1166">Bell, T.W., J.G. Allen, K.C. Cavanaugh and D.A. Siegel, 2018c: Three decades of variability in California’s giant kelp forests from the Landsat satellites. Remote Sens. Environ., doi:10.1016/j.rse.2018.06.039.</span></li> <li><span id="fn:r1167">Poloczanska, E.S. et al., 2016: Responses of Marine Organisms to Climate Change across Oceans. Front. Mar. Sci., 3(28), 515, doi:10.3389/fmars.2016.00062.</span></li> <li><span id="fn:r1168">Filbee-Dexter, K. and T. Wernberg, 2018: Rise of turfs: A new battlefront for globally declining kelp forests. BioScience, 68(2), 64–76.</span></li> <li><span id="fn:r1169">Pérez-Matus, A. et al., 2017: Exploring the effects of fishing pressure and upwelling intensity over subtidal kelp forest communities in Central Chile. Ecosphere, 8(5), e01808, doi:10.1002/ecs2.1808.</span></li> <li><span id="fn:r1170">Franco, J.N. et al., 2018b: The ‘golden kelp’ Laminaria ochroleuca under global change: Integrating multiple eco-physiological responses with species distribution models. J. Ecol., 106(1), 47–58, doi:10.1111/1365-2745.12810.</span></li> <li><span id="fn:r1171">Casado-Amezúa, P. et al., 2019: Distributional shifts of canopy-forming seaweeds from the Atlantic coast of Southern Europe. Biodivers. Conserv., 28(5), 1151–1172, doi:10.1007/s10531-019-01716-9.</span></li> <li><span id="fn:r1172">Pessarrodona, A., A. Foggo and D.A. Smale, 2019: Can ecosystem functioning be maintained despite climate-driven shifts in species composition? Insights from novel marine forests. J. Ecol., 107(1), 91–104, doi:10.1111/1365-2745.13053.</span></li> <li><span id="fn:r1173">Barton, A.D., A.J. Irwin, Z.V. Finkel and C.A. Stock, 2016: Anthropogenic climate change drives shift and shuffle in North Atlantic phytoplankton communities. PNAS, 113(11), 2964–2969, doi:10.1073/pnas.1519080113.</span></li> <li><span id="fn:r1174">Paar, M. et al., 2016: Temporal shift in biomass and production of macrozoobenthos in the macroalgal belt at Hansneset, Kongsfjorden, after 15 years. Polar Biol., 39(11), 2065–2076, doi:10.1007/s00300-015-1760-6.</span></li> <li><span id="fn:r1175">Filbee-Dexter, K. and T. Wernberg, 2018: Rise of turfs: A new battlefront for globally declining kelp forests. BioScience, 68(2), 64–76.</span></li> <li><span id="fn:r1176">Teagle, H. and D.A. Smale, 2018: Climate-driven substitution of habitat-forming species leads to reduced biodiversity within a temperate marine community. Divers. Distrib., 24(10), 1367–1380, doi:10.1111/ddi.12775.</span></li> <li><span id="fn:r1177">Pessarrodona, A., A. Foggo and D.A. Smale, 2019: Can ecosystem functioning be maintained despite climate-driven shifts in species composition? Insights from novel marine forests. J. Ecol., 107(1), 91–104, doi:10.1111/1365-2745.13053.</span></li> <li><span id="fn:r1178">Teagle, H. and D.A. Smale, 2018: Climate-driven substitution of habitat-forming species leads to reduced biodiversity within a temperate marine community. Divers. Distrib., 24(10), 1367–1380, doi:10.1111/ddi.12775.</span></li> <li><span id="fn:r1179">Pessarrodona, A., A. Foggo and D.A. Smale, 2019: Can ecosystem functioning be maintained despite climate-driven shifts in species composition? Insights from novel marine forests. J. Ecol., 107(1), 91–104, doi:10.1111/1365-2745.13053.</span></li> <li><span id="fn:r1180">Franco, J.N. et al., 2018b: The ‘golden kelp’ Laminaria ochroleuca under global change: Integrating multiple eco-physiological responses with species distribution models. J. Ecol., 106(1), 47–58, doi:10.1111/1365-2745.12810.</span></li> <li><span id="fn:r1181">Wernberg, T. et al., 2018: Genetic diversity and kelp forest vulnerability to climatic stress. Sci. Rep., 8(1), 1851, doi:10.1038/s41598-018-20009-9.</span></li> <li><span id="fn:r1182">Qiu, Z. et al., 2019: Future climate change is predicted to affect the microbiome and condition of habitat-forming kelp. Proc. Roy. Soc. B., 286(1896), 20181887.</span></li> <li><span id="fn:r1183">Vergés, A. et al., 2016: Long-term empirical evidence of ocean warming leading to tropicalization of fish communities, increased herbivory, and loss of kelp. PNAS, 113(48), 13791, doi:10.1073/pnas.1610725113.</span></li> <li><span id="fn:r1184">Miranda, R.J. et al., 2019: Invasion-mediated effects on marine trophic interactions in a changing climate: positive feedbacks favour kelp persistence. Proc. Roy. Soc. B., 286(1899), 20182866.</span></li> <li><span id="fn:r1185">Pereira, T.R. et al., 2017: Population dynamics of temperate kelp forests near their low-latitude limit. Aquat. Bot., 139, 8–18, doi:10.1016/j.aquabot.2017.02.006.</span></li> <li><span id="fn:r1186">Wilson, K.L., M.A. Skinner and H.K. Lotze, 2019: Projected 21st-century distribution of canopy-forming seaweeds in the Northwest Atlantic with climate change. Divers. Distrib., 25(4), 582–602, doi:10.1111/ddi.12897.</span></li> <li><span id="fn:r1187">Wilson, K.L., M.A. Skinner and H.K. Lotze, 2019: Projected 21st-century distribution of canopy-forming seaweeds in the Northwest Atlantic with climate change. Divers. Distrib., 25(4), 582–602, doi:10.1111/ddi.12897.</span></li> <li><span id="fn:r1188">Raybaud, V. et al., 2013: Decline in Kelp in West Europe and Climate. PLoS One, 8(6), e66044, doi:10.1371/journal.pone.0066044.</span></li> <li><span id="fn:r1189">Assis, J., A.V. Lucas, I. Barbara and E.A. Serrao, 2016: Future climate change is predicted to shift long-term persistence zones in the cold-temperate kelp Laminaria hyperborea. Mar. Environ. Res., 113, 174–182, doi:10.1016/j.marenvres.2015.11.005.</span></li> <li><span id="fn:r1190">Assis, J., M.B. Araújo and E.A. Serrão, 2018: Projected climate changes threaten ancient refugia of kelp forests in the North Atlantic. Global Change Biol., 24(1), e55–e66, doi:10.1111/gcb.13818.</span></li> <li><span id="fn:r1191">Wilson, K.L., M.A. Skinner and H.K. Lotze, 2019: Projected 21st-century distribution of canopy-forming seaweeds in the Northwest Atlantic with climate change. Divers. Distrib., 25(4), 582–602, doi:10.1111/ddi.12897.</span></li> <li><span id="fn:r1192">Oppenheimer, M. et al., 2015: Emergent risks and key vulnerabilities. In: Climate Change 2014 Impacts, Adaptation and Vulnerability: Part A: Global and Sectoral Aspects. [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea, and L.L.White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 1039–1100. ISBN: ISBN 978-1-107-05807-1.</span></li> <li><span id="fn:r1193">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1194">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1195">Tallis, H. et al., 2010: The many faces of ecosystem-based management: Making the process work today in real places. Mar. Policy, 34(2), 340-348.</span></li> <li><span id="fn:r1196">Costanza, R. et al., 2014: Changes in the global value of ecosystem services. Global Environ. Change, 26, 152–158, doi:10.1016/j.gloenvcha.2014.04.002.</span></li> <li><span id="fn:r1197">Armstrong, C.W., N.S. Foley, R. Tinch and S. van den Hove, 2012: Services from the deep: Steps towards valuation of deep sea goods and services. Ecosyst. Serv., 2, 2–13, doi:10.1016/j.ecoser.2012.07.001.</span></li> <li><span id="fn:r1198">Thurber, A.R. et al., 2014: Ecosystem function and services provided by the deep sea. Biogeosciences, 11(14), 3941–3963, doi:10.5194/bg-11-3941-2014.</span></li> <li><span id="fn:r1199">Leadley, P. et al., 2014: Interacting regional-scale regime shifts for biodiversity and ecosystem services. BioScience, biu093.</span></li> <li><span id="fn:r1200">Sandifer, P.A. and A.E. Sutton-Grier, 2014: Connecting stressors, ocean ecosystem services, and human health. Natural Resources Forum, 38(3), 157–167, doi:10.1111/1477-8947.12047.</span></li> <li><span id="fn:r1201">Díaz, S. et al., 2018: Assessing nature’s contributions to people. Science, 359(6373), 270.</span></li> <li><span id="fn:r1202">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1203">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1204">FAO, 2018: The State of World Fisheries and Aquaculture 2018 – Meeting the sustainable development goals. FAO, Rome, pp 1-227. ISBN: 978-92-5-1305562-1</span></li> <li><span id="fn:r1205">Pauly, D. and D. Zeller, 2016: Catch reconstructions reveal that global marine fisheries catches are higher than reported and declining. Nat. Commun., 7, 10244 EP 1–9, doi:10.1038/ncomms10244.</span></li> <li><span id="fn:r1206">Sumaila, U.R. et al., 2015: Winners and losers in a world where the high seas is closed to fishing. Sci. Rep., 5, 8481, doi:10.1038/srep08481.</span></li> <li><span id="fn:r1207">Sumaila, U.R. et al., 2015: Winners and losers in a world where the high seas is closed to fishing. Sci. Rep., 5, 8481, doi:10.1038/srep08481.</span></li> <li><span id="fn:r1208">UNEP, 2017: The Emissions Gap Report. United Natoins Environment Programme, Nairobi [Available at: http://www.worldcat.org/title/emissions-gap-report-2017-a-un-environment-synthesis-report/oclc/1009432397%5D . Accessed: 2019/09/30.</span></li> <li><span id="fn:r1209">Mcowen, C.J. et al., 2017: A global map of saltmarshes. Biodiversity data journal,(5), e11764.</span></li> <li><span id="fn:r1210">Spalding, M., 2010: World atlas of mangroves. Routledge. Earthscan, London, UK. p. 319.ISBN: 978-1844076574.</span></li> <li><span id="fn:r1211">UNEP-WCMC, W. C. and T. WRI, 2010: Global distributin of warm water coral reefs, compiled from multiple sources including the Millennium Coral Reef Mapping Project.–Version 1.3.</span></li> <li><span id="fn:r1212">Gallo, N.D., D.G. Victor and L.A. Levin, 2017: Ocean commitments under the Paris Agreement. Nat. Clim. Change, 7(11), 833-838, doi:10.1038/NCLIMATE3422.</span></li> <li><span id="fn:r1213">Cheung, W.W.L. et al., 2008: Application of macroecological theory to predict effects of climate change on global fisheries potential. Mar. Ecol. Prog. Ser., 365, 187–197.</span></li> <li><span id="fn:r1214">Britten, G.L., M. Dowd and B. Worm, 2016: Changing recruitment capacity in global fish stocks. PNAS, 113(1), 134–139, doi:10.1073/pnas.1504709112.</span></li> <li><span id="fn:r1215">Stock, C.A. et al., 2017: Reconciling fisheries catch and ocean productivity. PNAS, 114(8), E1441–E1449, doi:10.1073/pnas.1610238114.</span></li> <li><span id="fn:r1216">Stock, C.A. et al., 2017: Reconciling fisheries catch and ocean productivity. PNAS, 114(8), E1441–E1449, doi:10.1073/pnas.1610238114.</span></li> <li><span id="fn:r1217">Cheung, W.W.L., J. Bruggeman and M. Butenschön, 2018a: Projected changes in global and national potential marine fisheries catch under climate change scenarios in the twenty-first century. In: Impacts of climate change on fisheries and aquaculture [Barange, M., Bahri, T., Beveridge, M.C.M., Cochrane, K.L., Funge-Smith, S. & Poulain, F. (eds.)]. FAO Fisheries and Aquaculture Technical Paper T, FAO, Rome, Italy. 63-86. ISBN: 978-92-5-130607-9</span></li> <li><span id="fn:r1218">Barange, M., 2019: Avoiding misinterpretation of climate change projections of fish catches. ICES J. Mar. Sci., doi:10.1093/icesjms/fsz061.</span></li> <li><span id="fn:r1219">Britten, G.L., M. Dowd and B. Worm, 2016: Changing recruitment capacity in global fish stocks. PNAS, 113(1), 134–139, doi:10.1073/pnas.1504709112.</span></li> <li><span id="fn:r1220">Britten, G.L., M. Dowd and B. Worm, 2016: Changing recruitment capacity in global fish stocks. PNAS, 113(1), 134–139, doi:10.1073/pnas.1504709112.</span></li> <li><span id="fn:r1221">Free, C.M. et al., 2019: Impacts of historical warming on marine fisheries production. Science, 363(6430), 979, doi:10.1126/science.aau1758.</span></li> <li><span id="fn:r1222">Monllor-Hurtado, A., M.G. Pennino and J.L. Sanchez-Lizaso, 2017: Shift in tuna catches due to ocean warming. PLoS One, 12(6), e0178196, doi:10.1371/journal.pone.0178196.</span></li> <li><span id="fn:r1223">Free, C.M. et al., 2019: Impacts of historical warming on marine fisheries production. Science, 363(6430), 979, doi:10.1126/science.aau1758.</span></li> <li><span id="fn:r1224">Cheung, W.W.L., J. Bruggeman and M. Butenschön, 2018a: Projected changes in global and national potential marine fisheries catch under climate change scenarios in the twenty-first century. In: Impacts of climate change on fisheries and aquaculture [Barange, M., Bahri, T., Beveridge, M.C.M., Cochrane, K.L., Funge-Smith, S. & Poulain, F. (eds.)]. FAO Fisheries and Aquaculture Technical Paper T, FAO, Rome, Italy. 63-86. ISBN: 978-92-5-130607-9</span></li> <li><span id="fn:r1225">Cheung, W.W.L. et al., 2016a: Transform high seas management to build climate resilience in marine seafood supply. Fish Fish., 18(2), 254–263, doi:10.1111/faf.12177.</span></li> <li><span id="fn:r1226">Essington, T.E. et al., 2015: Fishing amplifies forage fish population collapses. PNAS, 112(21), 6648.</span></li> <li><span id="fn:r1227">Britten, G.L., M. Dowd and B. Worm, 2016: Changing recruitment capacity in global fish stocks. PNAS, 113(1), 134–139, doi:10.1073/pnas.1504709112.</span></li> <li><span id="fn:r1228">Free, C.M. et al., 2019: Impacts of historical warming on marine fisheries production. Science, 363(6430), 979, doi:10.1126/science.aau1758.</span></li> <li><span id="fn:r1229">Cheung, W.W.L., R. Watson and D. Pauly, 2013: Signature of ocean warming in global fisheries catch. Nature, 497, 365, doi:10.1038/nature121.</span></li> <li><span id="fn:r1230">Keskin, C. and D. Pauly, 2014: Changes in the ‘Mean Temperature of the Catch’: application of a new concept to the North-eastern Aegean Sea. Acta Adriatica: international journal of Marine Sciences, 55(2), 213–218.</span></li> <li><span id="fn:r1231">Tsikliras, A.C. et al., 2014: Shift in trophic level of Mediterranean mariculture species. Conserv Biol, 28(4), 1124–8, doi:10.1111/cobi.12276.</span></li> <li><span id="fn:r1232">Maharaj, R.R., V.W.Y. Lam, D. Pauly and W.W.L. Cheung, 2018: Regional variability in the sensitivity of Caribbean reef fish assemblages to ocean warming. Mar. Ecol. Prog. Ser., 590, 201–209.</span></li> <li><span id="fn:r1233">Blanchard, J.L. et al., 2017: Linked sustainability challenges and trade-offs among fisheries, aquaculture and agriculture. Nat. Ecol. Evol., 1(9), 1240–1249, doi:10.1038/s41559-017-0258-8.</span></li> <li><span id="fn:r1234">Lotze, H.K. et al., 2018: Ensemble projections of global ocean animal biomass with climate change. bioRxiv, 467175, doi:10.1101/467175.</span></li> <li><span id="fn:r1235">Cheung, W.W.L., G. Reygondeau and T.L. Frolicher, 2016b: Large benefits to marine fisheries of meeting the 1.5°C global warming target. Science, 354(6319), 1591–1594, doi:10.1126/science.aag2331.</span></li> <li><span id="fn:r1236">Stock, C.A. et al., 2017: Reconciling fisheries catch and ocean productivity. PNAS, 114(8), E1441–E1449, doi:10.1073/pnas.1610238114.</span></li> <li><span id="fn:r1237">Tittensor, D.P. et al., 2018: A protocol for the intercomparison of marine fishery and ecosystem models: Fish-MIP v1.0. Geosci. Model Dev., 11(4), 1421–1442, doi:10.5194/gmd-11-1421-2018.</span></li> <li><span id="fn:r1238">Blanchard, J.L. et al., 2017: Linked sustainability challenges and trade-offs among fisheries, aquaculture and agriculture. Nat. Ecol. Evol., 1(9), 1240–1249, doi:10.1038/s41559-017-0258-8.</span></li> <li><span id="fn:r1239">Asch, R.G., W.W.L. Cheung and G. Reygondeau, 2018: Future marine ecosystem drivers, biodiversity, and fisheries maximum catch potential in Pacific Island countries and territories under climate change. Mar. Policy, 88, 285–294, doi:10.1016/j.marpol.2017.08.015.</span></li> <li><span id="fn:r1240">Asch, R.G., W.W.L. Cheung and G. Reygondeau, 2018: Future marine ecosystem drivers, biodiversity, and fisheries maximum catch potential in Pacific Island countries and territories under climate change. Mar. Policy, 88, 285–294, doi:10.1016/j.marpol.2017.08.015.</span></li> <li><span id="fn:r1241">Lehodey, P. et al., 2013: Modelling the impact of climate change on Pacific skipjack tuna population and fisheries. Clim. Change, 119(1), 95–109, doi:10.1007/s10584-012-0595-1.</span></li> <li><span id="fn:r1242">Dueri, S., L. Bopp and O. Maury, 2014: Projecting the impacts of climate change on skipjack tuna abundance and spatial distribution. Global Change Biol., 20(3), 742–753, doi:10.1111/gcb.12460.</span></li> <li><span id="fn:r1243">Erauskin-Extramiana, M. et al., 2019: Large-scale distribution of tuna species in a warming ocean. Global Change Biol., 25(6), 2043–2060, doi:10.1111/gcb.14630.</span></li> <li><span id="fn:r1244">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1245">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1246">Cheung, W.W.L. et al., 2016a: Transform high seas management to build climate resilience in marine seafood supply. Fish Fish., 18(2), 254–263, doi:10.1111/faf.12177.</span></li> <li><span id="fn:r1247">Blanchard, J.L. et al., 2017: Linked sustainability challenges and trade-offs among fisheries, aquaculture and agriculture. Nat. Ecol. Evol., 1(9), 1240–1249, doi:10.1038/s41559-017-0258-8.</span></li> <li><span id="fn:r1248">Keller, A.A. et al., 2010: Demersal fish and invertebrate biomass in relation to an offshore hypoxic zone along the US West Coast. Fish. Oceanogr., 19(1), 76–87, doi:10.1111/j.1365-2419.2009.00529.x.</span></li> <li><span id="fn:r1249">Banse, K., 1968: Hydrography of the Arabian Sea Shelf of India and Pakistan and effects on demersal fishes. Deep Sea Res. Pt. I, 15(1), 45–79, doi:10.1016/0011-7471(68)90028-4.</span></li> <li><span id="fn:r1250">Rosenberg, R. et al., 1983: Benthos biomass and oxygen deficiency in the upwelling system off Peru. J. Mar. Res., 41(2), 263–279, doi:10.1357/002224083788520153.</span></li> <li><span id="fn:r1251">Keller, A.A. et al., 2015: Occurrence of demersal fishes in relation to near-bottom oxygen levels within the California Current large marine ecosystem. Fish. Oceanogr., 24(2), 162–176, doi:10.1111/fog.12100.</span></li> <li><span id="fn:r1252">Arntz, W.E. et al., 2006: El Niño and similar perturbation effects on the benthos of the Humboldt, California, and Benguela Current upwelling ecosystems. Adv. Geosci., 6, 243–265, doi:10.5194/adgeo-6-243-2006.</span></li> <li><span id="fn:r1253">Prince, E.D. et al., 2010: Ocean scale hypoxia-based habitat compression of Atlantic istiophorid billfishes. Fish. Oceanogr., 19(6), 448–462, doi:10.1111/j.1365-2419.2010.00556.x.</span></li> <li><span id="fn:r1254">Stramma, L. et al., 2011: Expansion of oxygen minimum zones may reduce available habitat for tropical pelagic fishes. Nat. Clim. Change, 2, 33, doi:10.1038/nclimate1304.</span></li> <li><span id="fn:r1255">Gilly, W.F., J.M. Beman, S.Y. Litvin and B.H. Robison, 2013: Oceanographic and Biological Effects of Shoaling of the Oxygen Minimum Zone. Annu. Rev. Mar. Sci., 5(1), 393–420, doi:10.1146/annurev-marine-120710-100849.</span></li> <li><span id="fn:r1256">Gallo, N.D. and L.A. Levin, 2016: Fish Ecol. Evol. in the World’s Oxygen Minimum Zones and Implications of Ocean Deoxygenation. Adv. Mar. Biol., Vol, 74, 117–198, doi:10.1016/bs.amb.2016.04.001.</span></li> <li><span id="fn:r1257">Breitburg, D. et al., 2018: Declining oxygen in the global ocean and coastal waters. Science, 359(6371).</span></li> <li><span id="fn:r1258">Froehlich, H.E. et al., 2018: Comparative terrestrial feed and land use of an aquaculture-dominant world. PNAS, 115(20), 5295, doi:10.1073/pnas.1801692115.</span></li> <li><span id="fn:r1259">Klinger, D.H., S.A. Levin and J.R. Watson, 2017: The growth of finfish in global open-ocean aquaculture under climate change. Proc. Roy. Soc. B. Biol., 284(1864).</span></li> <li><span id="fn:r1260">Kämpf, J. and P. Chapman, 2016: Upwelling Systems of the World.Springer International Publishing Switzerland. ISBN 978-3-319-42522-1</span></li> <li><span id="fn:r1261">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r1262">Levin, L.A. and N. Le Bris, 2015: The deep ocean under climate change. Science, 350(6262), 766–768, doi:10.1126/science.aad0126.</span></li> <li><span id="fn:r1263">Pauly, D. and D. Zeller, 2016: Catch reconstructions reveal that global marine fisheries catches are higher than reported and declining. Nat. Commun., 7, 10244 EP 1–9, doi:10.1038/ncomms10244.</span></li> <li><span id="fn:r1264">Black, B.A. et al., 2014: Six centuries of variability and extremes in a coupled marine-terrestrial ecosystem. Science, 345(6203), 1498.</span></li> <li><span id="fn:r1265">Kämpf, J. and P. Chapman, 2016: Upwelling Systems of the World.Springer International Publishing Switzerland. ISBN 978-3-319-42522-1</span></li> <li><span id="fn:r1266">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r1267">Sydeman, W.J. et al., 2014: Climate change and wind intensification in coastal upwelling ecosystems. Science, 345(6192), 77–80, doi:10.1126/science.1251635.</span></li> <li><span id="fn:r1268">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r1269">Rykaczewski, R.R. et al., 2015: Poleward displacement of coastal upwelling-favorable winds in the ocean’s eastern boundary currents through the 21st century. Geophys. Res. Lett., 42(15), 6424–6431, doi:10.1002/2015GL064694.</span></li> <li><span id="fn:r1270">Varela, R. et al., 2015: Has upwelling strengthened along worldwide coasts over 1982-2010? Sci. Rep., 5, 10016, doi:10.1038/srep10016.</span></li> <li><span id="fn:r1271">Belmadani, A. et al., 2014: What dynamics drive future wind scenarios for coastal upwelling off Peru and Chile? Clim. Dyn., 43(7), 1893–1914, doi:10.1007/s00382-013-2015-2.</span></li> <li><span id="fn:r1272">Rykaczewski, R.R. et al., 2015: Poleward displacement of coastal upwelling-favorable winds in the ocean’s eastern boundary currents through the 21st century. Geophys. Res. Lett., 42(15), 6424–6431, doi:10.1002/2015GL064694.</span></li> <li><span id="fn:r1273">Sousa, M.C. et al., 2017: Why coastal upwelling is expected to increase along the western Iberian Peninsula over the next century? Sci. Total Environ., 592, 243–251, doi:10.1016/j.scitotenv.2017.03.046.</span></li> <li><span id="fn:r1274">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r1275">Wang, D., T.C. Gouhier, B.A. Menge and A.R. Ganguly, 2015a: Intensification and spatial homogenization of coastal upwelling under climate change. Nature, 518(7539), 390–394, doi:10.1038/nature14235.</span></li> <li><span id="fn:r1276">Oyarzún, D. and C.M. Brierley, 2018: The future of coastal upwelling in the Humboldt current from model projections. Clim. Dyn., 52, 599–615. doi:10.1007/s00382-018-4158-7.</span></li> <li><span id="fn:r1277">Xiu, P., F. Chai, E.N. Curchitser and F.S. Castruccio, 2018: Future changes in coastal upwelling ecosystems with global warming: The case of the California Current System. Sci. Rep., 8(1), 2866, doi:10.1038/s41598-018-21247-7.</span></li> <li><span id="fn:r1278">Renault, L. et al., 2016: Partial decoupling of primary productivity from upwelling in the California Current system. Nat. Geosci., 9(7), 505–508, doi:10.1038/ngeo2722.</span></li> <li><span id="fn:r1279">Xiu, P., F. Chai, E.N. Curchitser and F.S. Castruccio, 2018: Future changes in coastal upwelling ecosystems with global warming: The case of the California Current System. Sci. Rep., 8(1), 2866, doi:10.1038/s41598-018-21247-7.</span></li> <li><span id="fn:r1280">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r1281">Gruber, N. et al., 2012: Rapid Progression of Ocean Acidification in the California Current System. Science, 337(6091), 220.</span></li> <li><span id="fn:r1282">Franco, A.C., N. Gruber, T.L. Frölicher and L. Kropuenske Artman, 2018a: Contrasting Impact of Future CO2 Emission Scenarios on the Extent of CaCO3 Mineral Undersaturation in the Humboldt Current System. J. Geophys. Res-Oceans, 123(3), 2018–2036, doi:10.1002/2018JC013857.</span></li> <li><span id="fn:r1283">Levin, L.A., 2018: Manifestation, Drivers, and Emergence of Open Ocean Deoxygenation. Annu. Rev. Mar. Sci., 10(1), 229–260, doi:10.1146/annurev-marine-121916-063359.</span></li> <li><span id="fn:r1284">Alin, S.R. et al., 2012: Robust empirical relationships for estimating the carbonate system in the southern California Current System and application to CalCOFI hydrographic cruise data (2005–2011). J. Geophys. Res-Oceans, 117(C5), doi:10.1029/2011JC007511.</span></li> <li><span id="fn:r1285">Bednaršek, N., R. A. Feely, J. C. P. Reum, B. Peterson, J. Menkel, S. R. Alin, and B. Hales. “Limacina helicina shell dissolution as an indicator of declining habitat suitability owing to ocean acidification in the California Current Ecosystem.” Proceedings of the Royal Society B: Biological Sciences 281, no. 1785 (2014): 20140123.</span></li> <li><span id="fn:r1286">Breitburg, D. et al., 2018: Declining oxygen in the global ocean and coastal waters. Science, 359(6371).</span></li> <li><span id="fn:r1287">Levin, L.A., 2018: Manifestation, Drivers, and Emergence of Open Ocean Deoxygenation. Annu. Rev. Mar. Sci., 10(1), 229–260, doi:10.1146/annurev-marine-121916-063359.</span></li> <li><span id="fn:r1288">Gruber, N. et al., 2012: Rapid Progression of Ocean Acidification in the California Current System. Science, 337(6091), 220.</span></li> <li><span id="fn:r1289">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r1290">Marshall, K.N. et al., 2017: Risks of ocean acidification in the California Current food web and fisheries: ecosystem model projections. Global Change Biol., 23(4), 1525–1539, doi:10.1111/gcb.13594.</span></li> <li><span id="fn:r1291">Hodgson, E.E. et al., 2018: Consequences of spatially variable ocean acidification in the California Current: Lower pH drives strongest declines in benthic species in southern regions while greatest economic impacts occur in northern regions. Ecol. Modell., 383, 106–117, doi:10.1016/j.ecolmodel.2018.05.018.</span></li> <li><span id="fn:r1292">Franco, A.C., N. Gruber, T.L. Frölicher and L. Kropuenske Artman, 2018a: Contrasting Impact of Future CO2 Emission Scenarios on the Extent of CaCO3 Mineral Undersaturation in the Humboldt Current System. J. Geophys. Res-Oceans, 123(3), 2018–2036, doi:10.1002/2018JC013857.</span></li> <li><span id="fn:r1293">Lachkar, Z., 2014: Effects of upwelling increase on ocean acidification in the California and Canary Current systems. Geophys. Res. Lett., 41(1), 90–95, doi:10.1002/2013GL058726.</span></li> <li><span id="fn:r1294">García Molinos, J. et al., 2015: Climate velocity and the future global redistribution of marine biodiversity. Nat. Clim. Change, 6, 83, doi:10.1038/nclimate2769.</span></li> <li><span id="fn:r1295">Gutiérrez, M.T., P. Jorge Castillo, B. Laura Naranjo and M.J. Akester, 2017: Current state of goods, services and governance of the Humboldt Current Large Marine Ecosystem in the context of climate change. Environ. Dev., 22, 175–190, doi:10.1016/j.envdev.2017.02.006.</span></li> <li><span id="fn:r1296">Merino, G., M. Barange and C. Mullon, 2010: Climate variability and change scenarios for a marine commodity: Modelling small pelagic fish, fisheries and fishmeal in a globalized market. J. Mar. Syst., 81(1), 196–205, doi:10.1016/j.jmarsys.2009.12.010.</span></li> <li><span id="fn:r1297">Carlson, A.K., W.W. Taylor, J. Liu and I. Orlic, 2017: The telecoupling framework: an integrative tool for enhancing fisheries management. Fisheries, 42(8), 395–397.</span></li> <li><span id="fn:r1298">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1299">Guevara-Carrasco, R. and J. Lleonart, 2008: Dynamics and fishery of the Peruvian hake: Between nature and man. J. Mar. Syst., 71(3), 249–259, doi:10.1016/j.jmarsys.2007.02.030.</span></li> <li><span id="fn:r1300">Essington, T.E. et al., 2015: Fishing amplifies forage fish population collapses. PNAS, 112(21), 6648.</span></li> <li><span id="fn:r1301">Brady, R.X., M.A. Alexander, N.S. Lovenduski and R.R. Rykaczewski, 2017: Emergent anthropogenic trends in California Current upwelling. Geophys. Res. Lett., 44(10), 5044–5052, doi:10.1002/2017GL072945.</span></li> <li><span id="fn:r1302">Belhabib, D., V.W.Y. Lam and W.W.L. Cheung, 2016: Overview of West African fisheries under climate change: Impacts, vulnerabilities and adaptive responses of the artisanal and industrial sectors. Mar. Policy, 71(Supplement C), 15–28, doi:10.1016/j.marpol.2016.05.009.</span></li> <li><span id="fn:r1303">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r1304">Costanza, R. et al., 2017: Twenty years of ecosystem services: How far have we come and how far do we still need to go? Ecosyst. Serv., 28, 1–16.</span></li> <li><span id="fn:r1305">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1306">Rogers, A.D., 2015: Environmental Change in the Deep Ocean. Annu. Rev. Environ. Resourc., Vol 41, 40(1), 1–38, doi:10.1146/annurev-environ-102014-021415.</span></li> <li><span id="fn:r1307">Armstrong, C.W., N. Foley, R. Tinch and S. van den Hove, 2010: Ecosystem goods and services of the deep sea. Deliverable D6, Universititet i Tromsø, Tromsø, 68 pp. https://www.pik-potsdam.de/news/public-events/archiv/alter-net/former-ss/2010/13.09.2010/van_den_hove/d6-2-final.pdf</span></li> <li><span id="fn:r1308">Armstrong, C.W., N. Foley, R. Tinch and S. van den Hove, 2010: Ecosystem goods and services of the deep sea. Deliverable D6, Universititet i Tromsø, Tromsø, 68 pp. https://www.pik-potsdam.de/news/public-events/archiv/alter-net/former-ss/2010/13.09.2010/van_den_hove/d6-2-final.pdf</span></li> <li><span id="fn:r1309">Marlow, J.J. et al., 2014: Carbonate-hosted methanotrophy represents an unrecognized methane sink in the deep sea. Nat. Commun., 5, 5094, doi:10.1038/ncomms6094.</span></li> <li><span id="fn:r1310">Thurber, A.R. et al., 2014: Ecosystem function and services provided by the deep sea. Biogeosciences, 11(14), 3941–3963, doi:10.5194/bg-11-3941-2014.</span></li> <li><span id="fn:r1311">Najjar, R. et al., 2018: Carbon budget of tidal wetlands, estuaries, and shelf waters of Eastern North America. Global Biogeochem. Cy.,32(3), 389-416.</span></li> <li><span id="fn:r1312">Pendleton, L. et al., 2012: Estimating Global “Blue Carbon” Emissions from Conversion and Degradation of Vegetated Coastal Ecosystems. PLoS One, 7(9), e43542, doi:10.1371/journal.pone.0043542.</span></li> <li><span id="fn:r1313">Lovenduski, N.S. et al., 2016: Partitioning uncertainty in ocean carbon uptake projections: Internal variability, emission scenario, and model structure. Global Biogeochem. Cy., 30(9), 1276–1287, doi:10.1002/2016gb005426.</span></li> <li><span id="fn:r1314">Boyd, P.W. et al., 2019: Multi-faceted particle pumps drive carbon sequestration in the ocean. Nature, 568(7752), 327–335, doi:10.1038/s41586-019-1098-2.</span></li> <li><span id="fn:r1315">Barange, M. et al., 2017: The Cost of Reducing the North Atlantic Ocean Biological Carbon Pump. Front. Mar. Sci., 3, 290.</span></li> <li><span id="fn:r1316">Martin, S.L., L.T. Ballance and T. Groves, 2016b: An Ecosystem Services Perspective for the Oceanic Eastern Tropical Pacific: Commercial Fisheries, Carbon Storage, Recreational Fishing, and Biodiversity. Front. Mar. Sci., 3, 50.</span></li> <li><span id="fn:r1317">Melaku Canu, D. et al., 2015: Estimating the value of carbon sequestration ecosystem services in the Mediterranean Sea: An Ecol. Econ. approach. Global Environ. Change, 32(Supplement C), 87–95, doi:10.1016/j.gloenvcha.2015.02.008.</span></li> <li><span id="fn:r1318">Megonigal, J.P. et al., 2016: 3.4 Impacts and effects of ocean warming on tidal marsh and tidal freshwater forest ecosystems. In: Laffoley, D., & Baxter, J.M. (editors). 2016. Explaining ocean warming: Causes, scale, effects and consequences. Full report. Gland, Switzerland: IUCN,105-210. ISBN: 978-2-1806-4</span></li> <li><span id="fn:r1319">Gonneea, M.E. et al., 2019: Salt marsh ecosystem restructuring enhances elevation resilience and carbon storage during accelerating relative sea level rise. Estuar. Coast. Shelf Sci., 217, 56–68, doi:10.1016/j.ecss.2018.11.003.</span></li> <li><span id="fn:r1320">Orth, R.J. et al., 2006: A Global Crisis for Seagrass Ecosystems. BioScience, 56(12), 987–996, doi:10.1641/0006-3568(2006)56[987:AGCFSE]2.0.CO;2.</span></li> <li><span id="fn:r1321">Ferrario, F. et al., 2014: The effectiveness of coral reefs for coastal hazard risk reduction and adaptation. Nat. Commun., 5, 3794, doi:10.1038/ncomms4794.</span></li> <li><span id="fn:r1322">Rao, N.S., A. Ghermandi, R. Portela and X. Wang, 2015: Global values of coastal ecosystem services: A spatial economic analysis of shoreline protection values. Ecosyst. Serv., 11, 95–105, doi:10.1016/j.ecoser.2014.11.011.</span></li> <li><span id="fn:r1323">Perry, C.T. et al., 2018: Loss of coral reef growth capacity to track future increases in sea level. Nature, 558(7710), 396–400, doi:10.1038/s41586-018-0194-z.</span></li> <li><span id="fn:r1324">Rao, N.S., A. Ghermandi, R. Portela and X. Wang, 2015: Global values of coastal ecosystem services: A spatial economic analysis of shoreline protection values. Ecosyst. Serv., 11, 95–105, doi:10.1016/j.ecoser.2014.11.011.</span></li> <li><span id="fn:r1325">Kelleway, J.J. et al., 2017b: Geochemical analyses reveal the importance of environmental history for blue carbon sequestration. J. Geophys. Res-Biogeo., 122(7), 1789–1805, doi:10.1002/2017JG003775.</span></li> <li><span id="fn:r1326">Sheng, Y.P. and R. Zou, 2017: Assessing the role of mangrove forest in reducing coastal inundation during major hurricanes. Hydrobiologia, 803(1), 87–103, doi:10.1007/s10750-017-3201-8.</span></li> <li><span id="fn:r1327">Costanza, R. et al., 2017: Twenty years of ecosystem services: How far have we come and how far do we still need to go? Ecosyst. Serv., 28, 1–16.</span></li> <li><span id="fn:r1328">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1329">Costanza, R. et al., 2014: Changes in the global value of ecosystem services. Global Environ. Change, 26, 152–158, doi:10.1016/j.gloenvcha.2014.04.002.</span></li> <li><span id="fn:r1330">Pratchett, M.S., A.S. Hoey and S.K. Wilson, 2014: Reef degradation and the loss of critical ecosystem goods and services provided by coral reef fishes. Curr. Opin. Environ. Sustain., 7(Supplement C), 37–43, doi:10.1016/j.cosust.2013.11.022.</span></li> <li><span id="fn:r1331">Carrasquilla-Henao, M. and F. Juanes, 2017: Mangroves enhance local fisheries catches: a global meta-analysis. Fish Fish., 18(1), 79–93, doi:10.1111/faf.12168.</span></li> <li><span id="fn:r1332">Maharaj, R.R., V.W.Y. Lam, D. Pauly and W.W.L. Cheung, 2018: Regional variability in the sensitivity of Caribbean reef fish assemblages to ocean warming. Mar. Ecol. Prog. Ser., 590, 201–209.</span></li> <li><span id="fn:r1333">Chan, K.M., T. Satterfield and J. Goldstein, 2012: Rethinking ecosystem services to better address and navigate cultural values. Ecol. Econ., 74, 8–18.</span></li> <li><span id="fn:r1334">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1335">Hilmi, N. et al., 2015: Bridging the gap between ocean acidification impacts and economic valuation: regional impacts of ocean acidification on fisheries and aquaculture. Brochure of The Third International Monaco Workshop on Economics of Ocean Acidification, Monaco.</span></li> <li><span id="fn:r1336">Hoegh-Guldberg, O., 2015: Reviving the Ocean Economy: the case for action-2015. WWF International. Gland, Switzerland, Geneva.</span></li> <li><span id="fn:r1337">Spalding, M.J., 2016: The new blue economy: the future of sustainability. J. Ocean Coast. Econ., 2(2), 8.</span></li> <li><span id="fn:r1338">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1339">Kirk, M.D. et al., 2015: World Health Organization estimates of the global and regional disease burden of 22 foodborne bacterial, protozoal, and viral diseases, 2010: a data synthesis. PLoS medicine, 12(12), e1001921.</span></li> <li><span id="fn:r1340">Vezzulli, L. et al., 2016: Climate influence on Vibrio and associated human diseases during the past half-century in the coastal North Atlantic. PNAS, 113(34), E5062-E5071.</span></li> <li><span id="fn:r1341">Baker-Austin, C. et al., 2013: Emerging Vibrio risk at high latitudes in response to ocean warming. Nat. Clim. Change, 3(1), 73–77, doi:10.1038/NCLIMATE1628.</span></li> <li><span id="fn:r1342">Baker-Austin, C., J. Trinanes, N. Gonzalez-Escalona and J. Martinez-Urtaza, 2017: Non-Cholera Vibrios: The Microbial Barometer of Climate Change. Trends Microbiol., 25(1), 76–84, doi:10.1016/j.tim.2016.09.008.</span></li> <li><span id="fn:r1343">Baker-Austin, C., J. Trinanes, N. Gonzalez-Escalona and J. Martinez-Urtaza, 2017: Non-Cholera Vibrios: The Microbial Barometer of Climate Change. Trends Microbiol., 25(1), 76–84, doi:10.1016/j.tim.2016.09.008.</span></li> <li><span id="fn:r1344">Escobar, L.E. et al., 2015: A global map of suitability for coastal Vibrio cholerae under current and future climate conditions. Acta Trop., 149(Supplement C), 202–211, doi:10.1016/j.actatropica.2015.05.028.</span></li> <li><span id="fn:r1345">Semenza, J.C. et al., 2017: Environmental Suitability of Vibrio Infections in a Warming Climate: An Early Warning System. Environ. Health. Perspect., 125(10), 107004. doi:papers3://publication/doi/10.1289/EHP2198.</span></li> <li><span id="fn:r1346">Ashbolt, N.J., 2019: Flood and Infectious Disease Risk Assessment. In: Health in Ecological Perspectives in the Anthropocene [t. Watanabe, C. Watanabe eds].. Springer, Singapore. pp. 145–159. ISBN: 978-981-13-2525-0</span></li> <li><span id="fn:r1347">Lloyd, S.J. et al., 2016: Modelling the influences of climate change-associated sea level rise and socioeconomic development on future storm surge mortality. Clim. Change, 134(3), 441–455, doi:10.1007/s10584-015-1376-4.</span></li> <li><span id="fn:r1348">Hallegraeff, G.M., 2010: Ocean climate change, phytoplankton community responses, and harmful algal blooms: a formidable predictive challenge1. J. Phycol., 46(2), 220–235.</span></li> <li><span id="fn:r1349">Quillien, N. et al., 2015: Effects of macroalgal accumulations on the variability in zoobenthos of high-energy macrotidal sandy beaches. Mar. Ecol. Prog. Ser., 522, 97–114.</span></li> <li><span id="fn:r1350">Amaya, O. et al., 2018: Large-Scale sea turtle mortality events in El Salvador attributed to paralytic shellfish toxin-producing algae blooms. Front. Mar. Sci., 5(411), doi:10.3389/fmars.2018.00411.</span></li> <li><span id="fn:r1351">García-Mendoza, E. et al., 2018: Mass Mortality of Cultivated Northern Bluefin Tuna Thunnus thynnus orientalis Associated With Chattonella Species in Baja California, Mexico. Front. Mar. Sci., 5(454), doi:10.3389/fmars.2018.00454.</span></li> <li><span id="fn:r1352">Álvarez, G. et al., 2019: Paralytic Shellfish Toxins in Surf Clams Mesodesma donacium during a Large Bloom of Alexandrium catenella Dinoflagellates Associated to an Intense Shellfish Mass Mortality. Toxins, 11(4), 188. doi:10.3390/toxins11040188.</span></li> <li><span id="fn:r1353">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1354">Wong, P.P. et al., 2014b: Coastal systems and low-lying areas. Clim. Change, 2104, 361–409.</span></li> <li><span id="fn:r1355">Anderson, C.R. et al., 2015: Living with harmful algal blooms in a changing world: strategies for modeling and mitigating their effects in coastal marine ecosystems. In Castal and Marine Hazards, Risks, and Disasters [J. F. Shroder, J.T. Ellis, D.J. Sherman eds.] Elsevier BV, Amsterdam, pp. 495–561. ISBN: 978-0-12-396483-0.</span></li> <li><span id="fn:r1356">Berdalet, E. et al., 2017: GlobalHAB: a new program to promote international research, observations, and modeling of harmful algal blooms in aquatic systems. Oceanography, 30(1), 70–81.</span></li> <li><span id="fn:r1357">García-Mendoza, E. et al., 2018: Mass Mortality of Cultivated Northern Bluefin Tuna Thunnus thynnus orientalis Associated With Chattonella Species in Baja California, Mexico. Front. Mar. Sci., 5(454), doi:10.3389/fmars.2018.00454.</span></li> <li><span id="fn:r1358">Díaz, P.A. et al., 2019: Impacts of harmful algal blooms on the aquaculture industry: Chile as a case study. Perspect. Phycol., 6, 1-2. doi: 10.1127/pip/2019/0081</span></li> <li><span id="fn:r1359">Kohli, G.S. et al., 2014: High abundance of the potentially maitotoxic dinoflagellate Gambierdiscus carpenteri in temperate waters of New South Wales, Australia. Harmful Algae, 39, 134–145, doi:10.1016/j.hal.2014.07.007.</span></li> <li><span id="fn:r1360">Bravo, J., F. Suárez, A. Ramírez and F. Acosta, 2015: Ciguatera, an emerging human poisoning in Europe. J. Aquac. Mar. Biol, 3, 00053.</span></li> <li><span id="fn:r1361">Sparrow, L., P. Momigliano, G.R. Russ and K. Heimann, 2017: Effects of temperature, salinity and composition of the dinoflagellate assemblage on the growth of Gambierdiscus carpenteri isolated from the Great Barrier Reef. Harmful Algae, 65, 52–60, doi:10.1016/j.hal.2017.04.006.</span></li> <li><span id="fn:r1362">Tester, P.A. et al., 2010: Ciguatera fish poisoning and sea surface temperatures in the Caribbean Sea and the West Indies. Toxicon, 56(5), 698–710.</span></li> <li><span id="fn:r1363">Rodríguez, F. et al., 2017: Canary Islands (NE Atlantic) as a biodiversity ‘hotspot’of Gambierdiscus: Implications for future trends of ciguatera in the area. Harmful Algae, 67, 131–143.</span></li> <li><span id="fn:r1364">Akselman, R. et al., 2015: Protoceratium reticulatum (Dinophyceae) in the austral Southwestern Atlantic and the first report on YTX-production in shelf waters of Argentina. Harmful Algae, 45, 40–52.</span></li> <li><span id="fn:r1365">Guinder, V.A. et al., 2018: Plankton multiproxy analyses in the Northern Patagonian Shelf, Argentina: community structure, phycotoxins and characterization of Alexandrium strains. Front. Mar. Sci., 5, 394.</span></li> <li><span id="fn:r1366">Paredes, J. et al., 2019: Population Genetic Structure at the Northern Edge of the Distribution of Alexandrium catenella in the Patagonian Fjords and Its Expansion Along the Open Pacific Ocean Coast. Front. Mar. Sci., 5(532), 1–13. doi:10.3389/fmars.2018.00532.</span></li> <li><span id="fn:r1367">Tillmann, U. et al., 2019: High abundance of Amphidomataceae (Dinophyceae) during the 2015 spring bloom of the Argentinean Shelf and a new, non-toxigenic ribotype of Azadinium spinosum. Harmful Algae, 84, 244–260, doi:10.1016/j.hal.2019.01.008.</span></li> <li><span id="fn:r1368">McKibben, S.M. et al., 2017: Climatic regulation of the neurotoxin domoic acid. PNAS, 114(2), 239–244.</span></li> <li><span id="fn:r1369">Díaz, P.A. et al., 2019: Impacts of harmful algal blooms on the aquaculture industry: Chile as a case study. Perspect. Phycol., 6, 1-2. doi: 10.1127/pip/2019/0081</span></li> <li><span id="fn:r1370">Gobler, C.J. et al., 2017: Ocean warming since 1982 has expanded the niche of toxic algal blooms in the North Atlantic and North Pacific oceans. PNAS, 114(19): 4975-4980, doi: 10.1073/pnas.1619575114.</span></li> <li><span id="fn:r1371">McKibben, S.M. et al., 2017: Climatic regulation of the neurotoxin domoic acid. PNAS, 114(2), 239–244.</span></li> <li><span id="fn:r1372">McCabe, R.M. et al., 2016: An unprecedented coastwide toxic algal bloom linked to anomalous ocean conditions. Geophys. Res. Lett., 43(19).</span></li> <li><span id="fn:r1373">Ritzman, J. et al., 2018: Economic and sociocultural impacts of fisheries closures in two fishing-dependent communities following the massive 2015 U.S. West Coast harmful algal bloom. Harmful Algae, 80, 35–45, doi:10.1016/j.hal.2018.09.002.</span></li> <li><span id="fn:r1374">Hallegraeff, G.M., 2010: Ocean climate change, phytoplankton community responses, and harmful algal blooms: a formidable predictive challenge1. J. Phycol., 46(2), 220–235.</span></li> <li><span id="fn:r1375">Hallegraeff, G.M., 2016: Impacts and effects of ocean warming on marine phytoplankton and harmful algal blooms. in Explaining ocean warming: Causes, scale, effects and consequences. Full Report. [D. Laffoley and J.M. Baxter eds.], 456 pp, IUCN, Gland, Switzerland, ISBN: 978-8317-1806-4</span></li> <li><span id="fn:r1376">Glibert, P.M. et al., 2018: Key Questions and Recent Research Advances on Harmful Algal Blooms in Relation to Nutrients and Eutrophication. In: Global Ecology and Oceanography of Harmful Algal Blooms [Glibert, P.M., E. Berdalet, M.A. Burford, G.C. Pitcher and M. Zhou (eds.)]. Springer International Publishing, Cham, pp. 229–259, ISBN: 978-3-319-70069-4.</span></li> <li><span id="fn:r1377">Paerl, H.W., T.G. Otten and R. Kudela, 2018: Mitigating the Expansion of Harmful Algal Blooms Across the Freshwater-to-Marine Continuum. Environ. Sci. Technol., 52(10), 5519–5529, doi:10.1021/acs.est.7b05950.</span></li> <li><span id="fn:r1378">Tammilehto, A. et al., 2015: Induction of domoic acid production in the toxic diatom Pseudo-nitzschia seriata by calanoid copepods. Aquatic Toxicology, 159, 52–61.</span></li> <li><span id="fn:r1379">Xu, J. and T. Kiørboe, 2018: Toxic dinoflagellates produce true grazer deterrents. Ecology.</span></li> <li><span id="fn:r1380">Brunson, J.K. et al., 2018: Biosynthesis of the neurotoxin domoic acid in a bloom-forming diatom. Science, 361(6409), 1356–1358.</span></li> <li><span id="fn:r1381">Brunson, J.K. et al., 2018: Biosynthesis of the neurotoxin domoic acid in a bloom-forming diatom. Science, 361(6409), 1356–1358.</span></li> <li><span id="fn:r1382">Zhu, Z. et al., 2017: Understanding the blob bloom: Warming increases toxicity and abundance of the harmful bloom diatom Pseudo-nitzschia in California coastal waters. Harmful Algae, 67, 36–43, doi:10.1016/j.hal.2017.06.004.</span></li> <li><span id="fn:r1383">Riebesell, U. et al., 2018: Toxic algal bloom induced by ocean acidification disrupts the pelagic food web. Nat. Clim. Change, 8(12), 1082–1086, doi:10.1038/s41558-018-0344-1.</span></li> <li><span id="fn:r1384">Ou, G., H. Wang, R. Si and W. Guan, 2017: The dinoflagellate Akashiwo sanguinea will benefit from future climate change: The interactive effects of ocean acidification, warming and high irradiance on photophysiology and hemolytic activity. Harmful Algae, 68, 118–127, doi:10.1016/j.hal.2017.08.003.</span></li> <li><span id="fn:r1385">Gobler, C.J. et al., 2017: Ocean warming since 1982 has expanded the niche of toxic algal blooms in the North Atlantic and North Pacific oceans. PNAS, 114(19): 4975-4980, doi: 10.1073/pnas.1619575114.</span></li> <li><span id="fn:r1386">Townhill, B.L. et al., 2018: Harmful algal blooms and climate change: exploring future distribution changes. ICES J. Mar. Sci., 75(6), 1882–1893, doi:10.1093/icesjms/fsy113.</span></li> <li><span id="fn:r1387">Gobler, C.J. and H. Baumann, 2016: Hypoxia and acidification in ocean ecosystems: coupled dynamics and effects on marine life. Biol. Lett., 12(5), 20150976, doi:10.1098/rsbl.2015.0976.</span></li> <li><span id="fn:r1388">Paredes, J. et al., 2019: Population Genetic Structure at the Northern Edge of the Distribution of Alexandrium catenella in the Patagonian Fjords and Its Expansion Along the Open Pacific Ocean Coast. Front. Mar. Sci., 5(532), 1–13. doi:10.3389/fmars.2018.00532.</span></li> <li><span id="fn:r1389">Anderson, C.R. et al., 2015: Living with harmful algal blooms in a changing world: strategies for modeling and mitigating their effects in coastal marine ecosystems. In Castal and Marine Hazards, Risks, and Disasters [J. F. Shroder, J.T. Ellis, D.J. Sherman eds.] Elsevier BV, Amsterdam, pp. 495–561. ISBN: 978-0-12-396483-0.</span></li> <li><span id="fn:r1390">Wells, M.L. et al., 2015: Harmful algal blooms and climate change: Learning from the past and present to forecast the future. Harmful Algae, 49, 68–93, doi:10.1016/j.hal.2015.07.009.</span></li> <li><span id="fn:r1391">Glibert, P.M. et al., 2014: Vulnerability of coastal ecosystems to changes in harmful algal bloom distribution in response to climate change: projections based on model analysis. Global Change Biol., 20(12), 3845–3858.</span></li> <li><span id="fn:r1392">Martin, T., W. Park and M. Latif, 2015: Southern Ocean forcing of the North Atlantic at multi-centennial time scales in the Kiel Climate Model. Deep Sea Res. Pt. II, 114(Supplement C), 39–48, doi:10.1016/j.dsr2.2014.01.018.</span></li> <li><span id="fn:r1393">McCabe, R.M. et al., 2016: An unprecedented coastwide toxic algal bloom linked to anomalous ocean conditions. Geophys. Res. Lett., 43(19).</span></li> <li><span id="fn:r1394">Paerl, H.W. et al., 2016: Mitigating cyanobacterial harmful algal blooms in aquatic ecosystems impacted by climate change and anthropogenic nutrients. Harmful Algae, 54, 213–222, doi:10.1016/j.hal.2015.09.009.</span></li> <li><span id="fn:r1395">Gobler, C.J. et al., 2017: Ocean warming since 1982 has expanded the niche of toxic algal blooms in the North Atlantic and North Pacific oceans. PNAS, 114(19): 4975-4980, doi: 10.1073/pnas.1619575114.</span></li> <li><span id="fn:r1396">McKibben, S.M. et al., 2017: Climatic regulation of the neurotoxin domoic acid. PNAS, 114(2), 239–244.</span></li> <li><span id="fn:r1397">Rodríguez, F. et al., 2017: Canary Islands (NE Atlantic) as a biodiversity ‘hotspot’of Gambierdiscus: Implications for future trends of ciguatera in the area. Harmful Algae, 67, 131–143.</span></li> <li><span id="fn:r1398">Paerl, H.W., T.G. Otten and R. Kudela, 2018: Mitigating the Expansion of Harmful Algal Blooms Across the Freshwater-to-Marine Continuum. Environ. Sci. Technol., 52(10), 5519–5529, doi:10.1021/acs.est.7b05950.</span></li> <li><span id="fn:r1399">Riebesell, U. et al., 2018: Toxic algal bloom induced by ocean acidification disrupts the pelagic food web. Nat. Clim. Change, 8(12), 1082–1086, doi:10.1038/s41558-018-0344-1.</span></li> <li><span id="fn:r1400">Townhill, B.L. et al., 2018: Harmful algal blooms and climate change: exploring future distribution changes. ICES J. Mar. Sci., 75(6), 1882–1893, doi:10.1093/icesjms/fsy113.</span></li> <li><span id="fn:r1401">Borbor-Córdova, M.J. et al., 2018: Risk Perception of Coastal Communities and Authorities on Harmful Algal Blooms in Ecuador. Front. Mar. Sci., 5(365), doi:10.3389/fmars.2018.00365.</span></li> <li><span id="fn:r1402">Cuellar-Martinez, T. et al., 2018: Addressing the Problem of Harmful Algal Blooms in Latin America and the Caribbean- A Regional Network for Early Warning and Response. Front. Mar. Sci., 5(409), doi:10.3389/fmars.2018.00409.</span></li> <li><span id="fn:r1403">Boxall, A.B.A. et al., 2009: Impacts of climate change on indirect human exposure to pathogens and chemicals from agriculture. Environ. Health. Perspect., 117(4), 508–514, doi:10.1289/ehp.0800084.</span></li> <li><span id="fn:r1404">Alava, J.J., A.M. Cisneros-Montemayor, U.R. Sumaila and W.W.L. Cheung, 2018: Projected amplification of food web bioaccumulation of MeHg and PCBs under climate change in the Northeastern Pacific. Sci. Rep., 8(1), 13460, doi:10.1038/s41598-018-31824-5.</span></li> <li><span id="fn:r1405">Alava, J.J., W.W.L. Cheung, P.S. Ross and U.R. Sumaila, 2017: Climate change-contaminant interactions in marine food webs: Toward a conceptual framework. Global Change Biol., 23(10), 3984–4001, doi:10.1111/gcb.13667.</span></li> <li><span id="fn:r1406">Alava, J.J., W.W.L. Cheung, P.S. Ross and U.R. Sumaila, 2017: Climate change-contaminant interactions in marine food webs: Toward a conceptual framework. Global Change Biol., 23(10), 3984–4001, doi:10.1111/gcb.13667.</span></li> <li><span id="fn:r1407">Desforges, J.-P. et al., 2017: Effects of Polar Bear and Killer Whale Derived Contaminant Cocktails on Marine Mammal Immunity. Environ. Sci. Technol., 51(19), 11431–11439, doi:10.1021/acs.est.7b03532.</span></li> <li><span id="fn:r1408">Desforges, J.-P. et al., 2018: Predicting global killer whale population collapse from PCB pollution. Science, 361(6409), 1373, doi:10.1126/science.aat1953.</span></li> <li><span id="fn:r1409">Ishikawa, T. and Y. Ikegaki, 1980: Control of Mercury Pollution in Japan and the Minamata Bay Cleanup. J.Water Pollut. Contro Fed., 52(5), 1013–1018.</span></li> <li><span id="fn:r1410">UNEP, 2013: Minamata convention on Mercury. [Available at: http://www.mercuryconvention.org/Convention%5D . Accessed: 2019/09/30.</span></li> <li><span id="fn:r1411">Fort, J. et al., 2015: Mercury in wintering seabirds, an aggravating factor to winter wrecks? Sci. Total Environ., 527–528(Supplement C), 448–454, doi:10.1016/j.scitotenv.2015.05.018.</span></li> <li><span id="fn:r1412">Scheuhammer, A. et al., 2015: Recent progress on our understanding of the biological effects of mercury in fish and wildlife in the Canadian Arctic. Sci. Total Environ., 509, 91–103.</span></li> <li><span id="fn:r1413">Scheuhammer, A.M., 1991: Effects of acidification on the availability of toxic metals and calcium to wild birds and mammals. Environ. Pollut., 71(2), 329–375, doi:10.1016/0269-7491(91)90036-V.</span></li> <li><span id="fn:r1414">Celo, V., D.R.S. Lean and S.L. Scott, 2006: Abiotic methylation of mercury in the aquatic environment. Sci. Total Environ., 368(1), 126–137, doi:10.1016/j.scitotenv.2005.09.043.</span></li> <li><span id="fn:r1415">López, I.R., J. Kalman, C. Vale and J. Blasco, 2010: Influence of sediment acidification on the bioaccumulation of metals in Ruditapes philippinarum. Environ. Sci. Pollut. Res., 17(9), 1519–1528, doi:10.1007/s11356-010-0338-7.</span></li> <li><span id="fn:r1416">Macdonald, R.W. and L.L. Loseto, 2010: Are Arctic Ocean ecosystems exceptionally vulnerable to global emissions of mercury? A call for emphasised research on methylation and the consequences of climate change. Environ. Chem., 7(2), 133–138.</span></li> <li><span id="fn:r1417">Riget, F., K. Vorkamp and D. Muir, 2010: Temporal trends of contaminants in Arctic char (Salvelinus alpinus) from a small lake, southwest Greenland during a warming climate. J. Environ. Monit., 12(12), 2252–2258, doi:10.1039/C0EM00154F.</span></li> <li><span id="fn:r1418">Corbitt, E.S. et al., 2011: Global Source–Receptor Relationships for Mercury Deposition Under Present-Day and 2050 Emissions Scenarios. Environ. Sci. Technol., 45(24), 10477–10484, doi:10.1021/es202496y.</span></li> <li><span id="fn:r1419">Krabbenhoft, D.P. and E.M. Sunderland, 2013: Global Change and Mercury. Science, 341(6153), 1457.</span></li> <li><span id="fn:r1420">Roberts, D.A. et al., 2013: Ocean acidification increases the toxicity of contaminated sediments. Global Change Biol., 19(2), 340–351, doi:10.1111/gcb.12048.</span></li> <li><span id="fn:r1421">McKinney, M.A. et al., 2015: A review of ecological impacts of global climate change on persistent organic pollutant and mercury pathways and exposures in arctic marine ecosystems. Curr. Zool., 61(4), 617–628, doi:10.1093/czoolo/61.4.617.</span></li> <li><span id="fn:r1422">Morrissey, C.A., L.I. Bendell-Young and J.E. Elliott, 2005: Identifying Sources and Biomagnification of Persistent Organic Contaminants in Biota from Mountain Streams of Southwestern British Columbia, Canada. Environ. Sci. Technol., 39(20), 8090–8098, doi:10.1021/es050431n.</span></li> <li><span id="fn:r1423">Booth, S. and D. Zeller, 2005: Mercury, food webs, and marine mammals: Implications of diet and climate change for human health. Environ. Health. Perspect., 113(5), 521–526, doi:10.1289/ehp.7603.</span></li> <li><span id="fn:r1424">Alava, J.J., A.M. Cisneros-Montemayor, U.R. Sumaila and W.W.L. Cheung, 2018: Projected amplification of food web bioaccumulation of MeHg and PCBs under climate change in the Northeastern Pacific. Sci. Rep., 8(1), 13460, doi:10.1038/s41598-018-31824-5.</span></li> <li><span id="fn:r1425">Marques, A., M.L. Nunes, S.K. Moore and M.S. Strom, 2010: Climate change and seafood safety: Human health implications. Food Res. Int., 43(7), 1766–1779, doi:10.1016/j.foodres.2010.02.010.</span></li> <li><span id="fn:r1426">Tirado, M.C. et al., 2010: Climate change and food safety: A review. Food Res. Int., 43(7), 1745–1765, doi:10.1016/j.foodres.2010.07.003.</span></li> <li><span id="fn:r1427">Alava, J.J., W.W.L. Cheung, P.S. Ross and U.R. Sumaila, 2017: Climate change-contaminant interactions in marine food webs: Toward a conceptual framework. Global Change Biol., 23(10), 3984–4001, doi:10.1111/gcb.13667.</span></li> <li><span id="fn:r1428">Cisneros-Montemayor, A.M., D. Pauly, L.V. Weatherdon and Y. Ota, 2016: A Global Estimate of Seafood Consumption by Coastal Indigenous Peoples. PLoS One, 11(12), doi:10.1371/journal.pone.0166681.</span></li> <li><span id="fn:r1429">Marques, A., M.L. Nunes, S.K. Moore and M.S. Strom, 2010: Climate change and seafood safety: Human health implications. Food Res. Int., 43(7), 1766–1779, doi:10.1016/j.foodres.2010.02.010.</span></li> <li><span id="fn:r1430">Tirado, M.C. et al., 2010: Climate change and food safety: A review. Food Res. Int., 43(7), 1745–1765, doi:10.1016/j.foodres.2010.07.003.</span></li> <li><span id="fn:r1431">Alava, J.J., W.W.L. Cheung, P.S. Ross and U.R. Sumaila, 2017: Climate change-contaminant interactions in marine food webs: Toward a conceptual framework. Global Change Biol., 23(10), 3984–4001, doi:10.1111/gcb.13667.</span></li> <li><span id="fn:r1432">Woodall, L.C. et al., 2014: The deep sea is a major sink for microplastic debris. R. Soc. Open Sci., 1(4), 140317, doi:doi:10.1098/rsos.140317.</span></li> <li><span id="fn:r1433">GESAMP, 2015: Sources, fate and effects of microplastics in the marine environment: a global assessment. [Kershaw, P.J. (ed.)]. International Maritime Organization, 96 pp., London, UK, ISSN: 1020-4873</span></li> <li><span id="fn:r1434">van Sebille, E. et al., 2015: A global inventory of small floating plastic debris. Environ. Res. Lett., 10(12), 124006, doi:10.1088/1748-9326/10/12/124006.</span></li> <li><span id="fn:r1435">Wall, C.B. et al., 2017: Elevated pCO(2) affects tissue biomass composition, but not calcification, in a reef coral under two light regimes. R. Soc. Open Sci., 4(11), 170683, doi:10.1098/rsos.170683.</span></li> <li><span id="fn:r1436">Wall, C.B. et al., 2017: Elevated pCO(2) affects tissue biomass composition, but not calcification, in a reef coral under two light regimes. R. Soc. Open Sci., 4(11), 170683, doi:10.1098/rsos.170683.</span></li> <li><span id="fn:r1437">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1438">Béné, C. et al., 2015: Feeding 9 billion by 2050 – Putting fish back on the menu. Food Secur., 7(2), 261–274, doi:10.1007/s12571-015-0427-z.</span></li> <li><span id="fn:r1439">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1440">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1441">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1442">Hilmi, N. et al., 2017: Ocean acidification in the Middle East and North African region. Region et Developpement, 46, 43–57 pp, LEADm Universite du Sud – Toulon Var.</span></li> <li><span id="fn:r1443">Blanchard, J.L. et al., 2017: Linked sustainability challenges and trade-offs among fisheries, aquaculture and agriculture. Nat. Ecol. Evol., 1(9), 1240–1249, doi:10.1038/s41559-017-0258-8.</span></li> <li><span id="fn:r1444">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1445">Gephart, J.A. et al., 2016: Vulnerability to shocks in the global seafood trade network. Environ. Res. Lett., 11(3), 035008.</span></li> <li><span id="fn:r1446">Tate, R.D., K. Benkendorff, R. Ab Lah and B.P. Kelaher, 2017: Ocean acidification and warming impacts the nutritional properties of the predatory whelk, Dicathais orbita. J. Exp. Mar. Biol. Ecol., 493, 7–13, doi:10.1016/j.jembe.2017.03.006.</span></li> <li><span id="fn:r1447">Lemasson, A.J., J.M. Hall-Spencer, V. Kuri and A.M. Knights, 2019: Changes in the biochemical and nutrient composition of seafood due to ocean acidification and warming. Mar. Environ. Res., 143, 82–92, doi:10.1016/j.marenvres.2018.11.006.</span></li> <li><span id="fn:r1448">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1449">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1450">Kuhnlein, H.V. and O. Receveur, 1996: Dietary Change and Traditional Food Systems of Indigenous Peoples. Annu. Rev. Nutr., 16(1), 417–442, doi:10.1146/annurev.nu.16.070196.002221.</span></li> <li><span id="fn:r1451">Shannon, C., 2002: Acculturation: Aboriginal and Torres Strait Islander nutrition. Asia Pacific Journal of Clinical Nutrition, 11, S576–S578, doi:10.1046/j.0964-7058.2002.00352.x.</span></li> <li><span id="fn:r1452">Charlton, K.E. et al., 2016: Fish, food security and health in Pacific Island countries and territories: a systematic literature review. BMC Public Health, 16(1), 285, doi:10.1186/s12889-016-2953-9.</span></li> <li><span id="fn:r1453">Batal, M. et al., 2017: Quantifying associations of the dietary share of ultra-processed foods with overall diet quality in First Nations peoples in the Canadian provinces of British Columbia, Alberta, Manitoba and Ontario. Public Health Nutr., 21(1), 103-113. doi:10.1017/S1368980017001677.</span></li> <li><span id="fn:r1454">Thaman, R.R., 1982: Deterioration of traditional food systems, increasing malnutrition and food dependency in the Pacific Islands. J. Food. Nutr., 39(3) 109-121.</span></li> <li><span id="fn:r1455">Quinn, R.W., G.M. Spreitzer and C.F. Lam, 2012: Building a Sustainable Model of Human Energy in Organizations: Exploring the Critical Role of Resources. Acad. Manag., 6(1), 337–396, doi:10.1080/19416520.2012.676762.</span></li> <li><span id="fn:r1456">Luick, B., A. Bersamin and J.S. Stern, 2014: Locally harvested foods support serum 25-hydroxyvitamin D sufficiency in an indigenous population of Western Alaska. Int. J. Circumpolar Health, 73(1), 22732, doi:10.3402/ijch.v73.22732.</span></li> <li><span id="fn:r1457">Gracey, M.S., 2007: Nutrition-related disorders in Indigenous Australians: how things have changed. Med, J. Aust., 186(1), 15.</span></li> <li><span id="fn:r1458">Sheikh, N., G.M. Egeland, L. Johnson-Down and H.V. Kuhnlein, 2011: Changing dietary patterns and body mass index over time in Canadian Inuit communities. Int. J. Circumpolar Health, 70(5), 511–519, doi:10.3402/ijch.v70i5.17863.</span></li> <li><span id="fn:r1459">Adger, W.N. et al., 2012: Cultural dimensions of climate change impacts and adaptation. Nat. Clim. Change, 3, 112, doi:10.1038/nclimate1666.</span></li> <li><span id="fn:r1460">Marshall, N.A. et al., 2018: Measuring What Matters in the Great Barrier Reef. Front. Ecol. Environ, 16(5), 271-27.</span></li> <li><span id="fn:r1461">Cisneros-Montemayor, A.M., D. Pauly, L.V. Weatherdon and Y. Ota, 2016: A Global Estimate of Seafood Consumption by Coastal Indigenous Peoples. PLoS One, 11(12), doi:10.1371/journal.pone.0166681.</span></li> <li><span id="fn:r1462">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1463">Roué, M., 2012: History and Epistemology of Local and Indigenous Knowledge : from Tradition to Trend. Revue d’ethnoécologie, (1), doi:10.4000/ethnoecologie.813.</span></li> <li><span id="fn:r1464">Alderson-Day, B., S. McCarthy-Jones and C. Fernyhough, 2015: Hearing voices in the resting brain: A review of intrinsic functional connectivity research on auditory verbal hallucinations. Neurosci. Biobehav. Rev., 55(Supplement C), 78–87, doi:10.1016/j.neubiorev.2015.04.016.</span></li> <li><span id="fn:r1465">Camus, V.G., 2017: Le cas de l’atoll de Tabiteuea, république de Kiribati. In: Les atolls du Pacifique face au changement climatique. Une comparaison Tuamotu-Kiribati, Karthala [T. Bambridge and J.-P. Latouche (eds.)], Karthala, Chavannes de Bogis, Switzerland,122 pp. ISBN: 978-2811117399</span></li> <li><span id="fn:r1466">Kench, P.S., M.R. Ford and S.D. Owen, 2018: Patterns of island change and persistence offer alternate adaptation pathways for atoll nations. Nat. Commun., 9(1), 605, doi:10.1038/s41467-018-02954-1.</span></li> <li><span id="fn:r1467">Camus, V.G., 2017: Le cas de l’atoll de Tabiteuea, république de Kiribati. In: Les atolls du Pacifique face au changement climatique. Une comparaison Tuamotu-Kiribati, Karthala [T. Bambridge and J.-P. Latouche (eds.)], Karthala, Chavannes de Bogis, Switzerland,122 pp. ISBN: 978-2811117399</span></li> <li><span id="fn:r1468">Bambridge, T. and P.Y. Le Meur, 2018: Savoirs locaux et biodiversité aux îles Marquises: don, pouvoir et perte. Revue d’anthropologie et des connaissances, 12(1), 29-55.</span></li> <li><span id="fn:r1469">Borthwick, A.G.L., 2016: Marine Renewable Energy Seascape. Engineering, 2(1), 69–78, doi:10.1016/J.ENG.2016.01.011.</span></li> <li><span id="fn:r1470">Lynn, K. et al., 2013: The impacts of climate change on tribal traditional foods. Clim. Change, 120(3), 545–556, doi:10.1007/s10584-013-0736-1.</span></li> <li><span id="fn:r1471">Larsen, J.N. et al., 2014: Polar regions. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part B: Regional Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Barros, V.R., C.B. Field and D.J. Dokken (eds.)]. World Meteorological Organization, Geneva, Switzerland, 1567-1612.</span></li> <li><span id="fn:r1472">Weatherdon, L.V. et al., 2016: Observed and Projected Impacts of Climate Change on Marine Fisheries, Aquaculture, Coastal Tourism, and Human Health: An Update. Front. Mar. Sci., 3(36), 473, doi:10.3389/fmars.2016.00048.</span></li> <li><span id="fn:r1473">Davis, R., 2015: ‘All in’: Snow crab, capitalization, and the future of small-scale fisheries in Newfoundland. Mar. Policy, 61, 323–330, doi:10.1016/j.marpol.2015.04.008.</span></li> <li><span id="fn:r1474">Paolisso, M. et al., 2012: Climate Change, Justice, and Adaptation among African American Communities in the Chesapeake Bay Region. Weather, Clim. Soc., 4(1), 34–47, doi:10.1175/WCAS-D-11-00039.1.</span></li> <li><span id="fn:r1475">Ruiz, J., L. Prieto and D. Astorga, 2012: A model for temperature control of jellyfish (Cotylorhiza tuberculata) outbreaks: A causal analysis in a Mediterranean coastal lagoon. Ecol. Model., 233, 59–69, doi:10.1016/j.ecolmodel.2012.03.019.</span></li> <li><span id="fn:r1476">Metcalf, S.J. et al., 2015: Measuring the vulnerability of marine social-ecological systems: a prerequisite for the identification of climate change adaptations. Ecol. Soc., 20(2): 35, doi:10.5751/ES-07509-200235.</span></li> <li><span id="fn:r1477">Meadows, P.S., 2011: Ecosystem Sustainability, Climate Change, and Rural Communities. J. Anim. Plant Sci., 21, 317–332.</span></li> <li><span id="fn:r1478">Wynveen, C.J. and S.G. Sutton, 2015: Engaging the public in climate change-related pro-environmental behaviors to protect coral reefs: The role of public trust in the management agency. Mar. Policy, 53, 131–140, doi:10.1016/j.marpol.2014.10.030.</span></li> <li><span id="fn:r1479">Bennett, N.J. et al., 2018: Environmental Stewardship: A Conceptual Review and Analytical Framework. Environ. Manage., 61(4), 597–614, doi:10.1007/s00267-017-0993-2.</span></li> <li><span id="fn:r1480">Wynveen, C.J. and S.G. Sutton, 2015: Engaging the public in climate change-related pro-environmental behaviors to protect coral reefs: The role of public trust in the management agency. Mar. Policy, 53, 131–140, doi:10.1016/j.marpol.2014.10.030.</span></li> <li><span id="fn:r1481">Malone, K., 2016: Reconsidering children’s encounters with nature and place using posthumanism. Aust. J. Environ. Educ., 32(1), 42–56.</span></li> <li><span id="fn:r1482">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1483">Pescaroli, G. and M. Magni, 2015: Flood warnings in coastal areas: how do experience and information influence responses to alert services? Nat. Hazards Earth Syst. Sci., 15(4), 703–714, doi:10.5194/nhess-15-703-2015.</span></li> <li><span id="fn:r1484">Marshall, N.A. et al., 2018: Measuring What Matters in the Great Barrier Reef. Front. Ecol. Environ, 16(5), 271-27.</span></li> <li><span id="fn:r1485">Marshall, N.A. et al., 2018: Measuring What Matters in the Great Barrier Reef. Front. Ecol. Environ, 16(5), 271-27.</span></li> <li><span id="fn:r1486">Marshall, N. et al., 2019: Reef Grief: investigating the relationship between place meanings and place change on the Great Barrier Reef, Australia. Sustain. Sci., 14(3), 579–587, doi:10.1007/s11625-019-00666-z.</span></li> <li><span id="fn:r1487">Marshall, N. et al., 2019: Reef Grief: investigating the relationship between place meanings and place change on the Great Barrier Reef, Australia. Sustain. Sci., 14(3), 579–587, doi:10.1007/s11625-019-00666-z.</span></li> <li><span id="fn:r1488">Fisher, J. A. and K. Brown, 2015: Reprint of” Ecosystem services concepts and approaches in conservation: Just a rhetorical tool?”. Ecol. Econ., 117, 261–269.</span></li> <li><span id="fn:r1489">Cinner, J.E. et al., 2018: Building adaptive capacity to climate change in tropical coastal communities. Nat. Clim. Change, 8(2), 117–123, doi:10.1038/s41558-017-0065-x.</span></li> <li><span id="fn:r1490">Marshall, N.A. et al., 2012: Transformational capacity and the influence of place and identity. Environ. Res. Lett., 7(3), 034022.</span></li> <li><span id="fn:r1491">Tidball, K., 2012: Urgent biophilia: human-nature interactions and biological attractions in disaster resilience. Ecol. Soc., . 17(2): 5, [https://dx.doi.org/10.5751/ES-04596-170205 http://dx.doi.org/10.5751/ES-04596-170205] .</span></li> <li><span id="fn:r1492">Turner, N. et al., 2008: From Invisibility to Transparency: Identifying the Implications. Ecol. Soc., 13(2): 7. [online] URL: http://www.ecologyandsociety.org/vol13/iss2/art7/ .</span></li> <li><span id="fn:r1493">Adger, W.N. et al., 2012: Cultural dimensions of climate change impacts and adaptation. Nat. Clim. Change, 3, 112, doi:10.1038/nclimate1666.</span></li> <li><span id="fn:r1494">Miller, K.I. and G.R. Russ, 2014: Studies of no-take marine reserves: Methods for differentiating reserve and habitat effects. Ocean Coast. Manage., 96(Supplement C), 51–60.</span></li> <li><span id="fn:r1495">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r1496">Spijkers, J. and W.J. Boonstra, 2017: Environmental change and social conflict: the northeast Atlantic mackerel dispute. Reg. Environ. Change, 17(6), 1835–1851, doi:10.1007/s10113-017-1150-4.</span></li> <li><span id="fn:r1497">Miller, K.I. and G.R. Russ, 2014: Studies of no-take marine reserves: Methods for differentiating reserve and habitat effects. Ocean Coast. Manage., 96(Supplement C), 51–60.</span></li> <li><span id="fn:r1498">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r1499">Belhabib, D., V.W.Y. Lam and W.W.L. Cheung, 2016: Overview of West African fisheries under climate change: Impacts, vulnerabilities and adaptive responses of the artisanal and industrial sectors. Mar. Policy, 71(Supplement C), 15–28, doi:10.1016/j.marpol.2016.05.009.</span></li> <li><span id="fn:r1500">Pomeroy, R., J. Parks, K.L. Mrakovcich and C. LaMonica, 2016: Drivers and impacts of fisheries scarcity, competition, and conflict on maritime security. Mar. Policy, 67(Supplement C), 94–104, doi:10.1016/j.marpol.2016.01.005.</span></li> <li><span id="fn:r1501">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r1502">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r1503">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r1504">Belhabib, D. et al., 2018: Impacts of anthropogenic and natural “extreme events” on global fisheries. Fish Fish., doi:10.1111/faf.12314.</span></li> <li><span id="fn:r1505">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r1506">Ndhlovu, N., O. Saito, R. Djalante and N. Yagi, 2017: Assessing the Sensitivity of Small-Scale Fishery Groups to Climate Change in Lake Kariba, Zimbabwe. Sustainability, 9(12), 2209.</span></li> <li><span id="fn:r1507">Shaffiril, H.A.M., A.A. Samah and J. Lawrence, 2017: Adapting towards climate change impacts: Strategies for small-scale fishermen in Malaysia. Mar. Policy, 81, 196–201.</span></li> <li><span id="fn:r1508">Spijkers, J. and W.J. Boonstra, 2017: Environmental change and social conflict: the northeast Atlantic mackerel dispute. Reg. Environ. Change, 17(6), 1835–1851, doi:10.1007/s10113-017-1150-4.</span></li> <li><span id="fn:r1509">Swartz, W., R. Sumaila and R. Watson, 2013: Global Ex-vessel Fish Price Database Revisited: A New Approach for Estimating ‘Missing’ Prices. Environ. Resour. Econ., 56(4), 467–480.</span></li> <li><span id="fn:r1510">Tai, T.C. et al., 2017: Ex-vessel Fish Price Database: Disaggregating Prices for Low-Priced Species from Reduction Fisheries. Front. Mar. Sci., 4(363), doi:10.3389/fmars.2017.00363.</span></li> <li><span id="fn:r1511">Teh, L.C.L. and U.R. Sumaila, 2013: Contribution of marine fisheries to worldwide employment. Fish Fish., 14(1), 77–88, doi:10.1111/j.1467-2979.2011.00450.x.</span></li> <li><span id="fn:r1512">Chuenpagdee, R., 2011: World small-scale fisheries: contemporary visions. EburonAcademic Publishers, Delft, The Netherlands. 400 pp. ISBN: 978-90-5972-539-3</span></li> <li><span id="fn:r1513">Pörtner, H.O. et al., 2014: Ocean systems. In: Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel of Climate Change [Field, C.B., V.R. Barros, D.J. Dokken, K.J. Mach, M.D. Mastrandrea, T.E. Bilir, M. Chatterjee, K.L. Ebi, Y.O. Estrada, R.C. Genova, B. Girma, E.S. Kissel, A.N. Levy, S. MacCracken, P.R. Mastrandrea and L L. White (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 411–484.</span></li> <li><span id="fn:r1514">Ekstrom, J.A. et al., 2015: Vulnerability and adaptation of US shellfisheries to ocean acidification. Nat. Clim. Change, 5, 207, doi:10.1038/nclimate2508.</span></li> <li><span id="fn:r1515">Lam, V.W.Y., W.W.L. Cheung, G. Reygondeau and U. R. Sumaila, 2016: Projected change in global fisheries revenues under climate change. Sci. Rep., 6, 32607 EP –, doi:10.1038/srep32607.</span></li> <li><span id="fn:r1516">Lam, V.W.Y., W.W.L. Cheung, G. Reygondeau and U. R. Sumaila, 2016: Projected change in global fisheries revenues under climate change. Sci. Rep., 6, 32607 EP –, doi:10.1038/srep32607.</span></li> <li><span id="fn:r1517">Sumaila, U.R. et al., 2019: Benefits of the Paris Agreement to ocean life, economies, and people. Sci. Adv., 5(2), eaau3855, doi:10.1126/sciadv.aau3855.</span></li> <li><span id="fn:r1518">Sumaila, U.R. et al., 2019: Benefits of the Paris Agreement to ocean life, economies, and people. Sci. Adv., 5(2), eaau3855, doi:10.1126/sciadv.aau3855.</span></li> <li><span id="fn:r1519">Sumaila, U.R. et al., 2019: Benefits of the Paris Agreement to ocean life, economies, and people. Sci. Adv., 5(2), eaau3855, doi:10.1126/sciadv.aau3855.</span></li> <li><span id="fn:r1520">Barange, M., 2019: Avoiding misinterpretation of climate change projections of fish catches. ICES J. Mar. Sci., doi:10.1093/icesjms/fsz061.</span></li> <li><span id="fn:r1521">Gaines, S.D. et al., 2018: Improved fisheries management could offset many negative effects of climate change. Sci. Adv., 4(8), eaao1378, doi:10.1126/sciadv.aao1378.</span></li> <li><span id="fn:r1522">Hilmi, N. et al., 2015: Bridging the gap between ocean acidification impacts and economic valuation: regional impacts of ocean acidification on fisheries and aquaculture. Brochure of The Third International Monaco Workshop on Economics of Ocean Acidification, Monaco.</span></li> <li><span id="fn:r1523">Barbier, E.B., 2015: Climate change impacts on rural poverty in low-elevation coastal zones. Estuar. Coast. Shelf Sci., 165, A1–A13, doi:10.1016/j.ecss.2015.05.035.</span></li> <li><span id="fn:r1524">Lam, V.W.Y., W.W.L. Cheung, G. Reygondeau and U. R. Sumaila, 2016: Projected change in global fisheries revenues under climate change. Sci. Rep., 6, 32607 EP –, doi:10.1038/srep32607.</span></li> <li><span id="fn:r1525">Allison, E.H. et al., 2009: Vulnerability of national economies to the impacts of climate change on fisheries. Fish Fish., 10(2), 173–196, doi:10.1111/j.1467-2979.2008.00310.x.</span></li> <li><span id="fn:r1526">Srinivasan, U.T., W.W.L. Cheung, R. Watson and U. R. Sumaila, 2010: Food security implications of global marine catch losses due to overfishing. Journal of Bioeconomics, 12(3), 183–200.</span></li> <li><span id="fn:r1527">Golden, C.D. et al., 2016: Nutrition: Fall in fish catch threatens human health. Nature, 534(7607), 317–320, doi:10.1038/534317a.</span></li> <li><span id="fn:r1528">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r1529">Bell, J. et al., 2018a: Climate change impacts, vulnerabilities and adaptations: Western and Central Pacific Ocean marine fisheries. In: Impacts of climate change on fisheries and aquaculture [Barange, M., Bahri, T., Beveridge, M.C.M., Cochrane, K.L., Funge-Smith, S. & Poulain, F. (eds.)]. FAO Fisheries and Aquaculture Technical Paper T, FAO, Rome, Italy. 305-324. ISBN: 978-92-5-130607-9</span></li> <li><span id="fn:r1530">Cinner, J.E. et al., 2016: A framework for understanding climate change impacts on coral reef social–ecological systems. Reg. Environ. Change, 16(4), 1133–1146, doi:10.1007/s10113-015-0832-z.</span></li> <li><span id="fn:r1531">Hallegatte, S. et al., 2015: Shock waves: managing the impacts of climate change on poverty. The World Bank.</span></li> <li><span id="fn:r1532">Lacoue-Labarthe, T. et al., 2016: Impacts of ocean acidification in a warming Mediterranean Sea: An overview. Reg. Stud. Mar. Sci., 5, 1–11, doi:10.1016/j.rsma.2015.12.005.</span></li> <li><span id="fn:r1533">Haynie, A.C. and L. Pfeiffer, 2012: Why economics matters for understanding the effects of climate change on fisheries. ICES J. Mar. Sci., 69(7), 1160–1167, doi:10.1093/icesjms/fss021.</span></li> <li><span id="fn:r1534">Galbraith, E.D., D.A. Carozza and D. Bianchi, 2017: A coupled human-Earth model perspective on long-term trends in the global marine fishery. Nat. Commun., 8, 14884 EP -, doi:10.1038/ncomms14884.</span></li> <li><span id="fn:r1535">Galbraith, E.D., D.A. Carozza and D. Bianchi, 2017: A coupled human-Earth model perspective on long-term trends in the global marine fishery. Nat. Commun., 8, 14884 EP -, doi:10.1038/ncomms14884.</span></li> <li><span id="fn:r1536">UNCTAD, 2018: Economic Development in Africa Report 2018. United Nations, UNCTAD/ALDC/AFRICA/2018 ISBN: 978-92-1-112924-3.</span></li> <li><span id="fn:r1537">Cisneros-Montemayor, A.M. et al., 2013: Global economic value of shark ecotourism: implications for conservation. Oryx, 47(3), 381–388.</span></li> <li><span id="fn:r1538">O’Malley, M.P., K. Lee-Brooks and H.B. Medd, 2013: The global economic impact of manta ray watching tourism. PLoS One, 8(5), e65051.</span></li> <li><span id="fn:r1539">Spalding, M. et al., 2017: Mapping the global value and distribution of coral reef tourism. Mar. Policy, 82(Supplement C), 104–113, doi:10.1016/j.marpol.2017.05.014.</span></li> <li><span id="fn:r1540">Giorgio, A. et al., 2018: Coastal Tourism Importance and Beach Users’ Preferences: The “Big Fives” Criterions and Related Management Aspects. J. Tourism Hospit., 7(347), 2167–0269.1000347.</span></li> <li><span id="fn:r1541">UNWTO, 2018: Tourism in Small Island Developing States. World Tourism Organization, Madrid, Spain. 5p. http://cf.cdn.unwto.org/sites/all/files/docpdf/tourisminsids.pdf</span></li> <li><span id="fn:r1542">Cisneros-Montemayor, A.M. and U.R. Sumaila, 2010: A global estimate of benefits from ecosystem-based marine recreation: potential impacts and implications for management. Journal of Bioeconomics, 12(3), 245–268.</span></li> <li><span id="fn:r1543">Jiang, M. and T. DeLacy, 2014: 14 A climate change adaptation framework for Pacific Island tourism. In T. DeLacy, M. Jiang, G. Lipman and S. Vorster (Eds), Green Growth and Travelism: Concept, Policy and Practice for Sustainable Tourism, Routledge, 225.</span></li> <li><span id="fn:r1544">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1545">Weatherdon, L.V. et al., 2016: Observed and Projected Impacts of Climate Change on Marine Fisheries, Aquaculture, Coastal Tourism, and Human Health: An Update. Front. Mar. Sci., 3(36), 473, doi:10.3389/fmars.2016.00048.</span></li> <li><span id="fn:r1546">Chen, P.-Y., C.-C. Chen, L. Chu and B. McCarl, 2015: Evaluating the economic damage of climate change on global coral reefs. Global Environ. Change, 30(Supplement C), 12–20, doi:10.1016/j.gloenvcha.2014.10.011.</span></li> <li><span id="fn:r1547">Swann, T. and R. Campbell, 2016: Great Barrier Bleached: Coral bleaching, the Great Barrier Reef and potential impacts on tourism. Australia Institute, Canberra, 41.</span></li> <li><span id="fn:r1548">Lithgow, D. et al., 2019: Exploring the co-occurrence between coastal squeeze and coastal tourism in a changing climate and its consequences. Tourism Manage., 74, 43–54, doi:10.1016/j.tourman.2019.02.005.</span></li> <li><span id="fn:r1549">Pearce, T., R. Currenti, A. Mateiwai and B. Doran, 2018: Adaptation to climate change and freshwater resources in Vusama village, Viti Levu, Fiji. Reg. Environ. Change, 18(2), 501–510, doi:10.1007/s10113-017-1222-5.</span></li> <li><span id="fn:r1550">Wabnitz, C.C.C., A.M. Cisneros-Montemayor, Q. Hanich and Y. Ota, 2017: Ecotourism, climate change and reef fish consumption in Palau: Benefits, trade-offs and adaptation strategies. Mar. Policy, 88, 323-332. doi:10.1016/j.marpol.2017.07.022.</span></li> <li><span id="fn:r1551">UNDP, 2017: Regional overview: Impact of hurricanes Irma and Maria. Conference supporting document. Report prepared with support of ACAPS, OCHOA and UNDP. 39pp.</span></li> <li><span id="fn:r1552">Klint, L., T. DeLacy and S. Filep, 2015: A Focus on the South Pacific. In: Small Islands and Tourism: Current Issues and Future Challenges. Tourism in Pacific Islands: Current Issues and Future Challenges. [Pratt, S., D. Harrison. (ed.)]. Routledge, London. ISBN: 978-1-315-77382-7.</span></li> <li><span id="fn:r1553">Lenzen, M. et al., 2018: The carbon footprint of global tourism. Nat. Clim. Change, 8(6), 522–528, doi:10.1038/s41558-018-0141-x.</span></li> <li><span id="fn:r1554">DiSegni, D.M. and M. Shechter, 2013: Socioeconomic Aspects: Human Migrations, Tourism and Fisheries. In: The Mediterranean Sea. Springer Netherlands, Dordrecht, pp. 571–575.</span></li> <li><span id="fn:r1555">Dundas, S.J. and R.H. von Haefen, 2015: Weather effects on the demand for coastal recreational fishing: Implications for a changing climate. CEnREP Working Paper No. 15-015, 63 pp. doi: 10.22004/ag.econ.264980</span></li> <li><span id="fn:r1556">Santos, R., J.S. Rehage, R. Boucek and J. Osborne, 2016: Shift in recreational fishing catches as a function of an extreme cold event. Ecosphere, 7(6), e01335.</span></li> <li><span id="fn:r1557">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1558">World Bank, 2017: Pacific Possible : long-term economic opportunities and challenges for Pacific Island Countries (English). Pacific possible series. The World Bank, Washington, DC. 130 p. http://documents.worldbank.org/curated/en/168951503668157320/pdf/ACS22308-PUBLIC-P154324-ADD-SERIES-PPFullReportFINALscreen.pdf</span></li> <li><span id="fn:r1559">UNCTAD, 2017: Climate change impacts on coastal transport infrastructure in the Caribbean: enhancing the adaptive capacity of Small Island Developing States (SIDS), JAMAICA: A case study., UNDA project 1415O.</span></li> <li><span id="fn:r1560">Monioudi, I.Ν. et al., 2018: Climate change impacts on critical international transportation assets of Caribbean Small Island Developing States (SIDS): the case of Jamaica and Saint Lucia. Reg. Environ. Change, 18(8), 2211–2225.</span></li> <li><span id="fn:r1561">World Bank, 2017: Pacific Possible : long-term economic opportunities and challenges for Pacific Island Countries (English). Pacific possible series. The World Bank, Washington, DC. 130 p. http://documents.worldbank.org/curated/en/168951503668157320/pdf/ACS22308-PUBLIC-P154324-ADD-SERIES-PPFullReportFINALscreen.pdf</span></li> <li><span id="fn:r1562">McNamara, D.E. and A. Keeler, 2013: A coupled physical and economic model of the response of coastal real estate to climate risk. Nat. Clim. Change, 3(6), 559–562, doi:10.1038/nclimate1826.</span></li> <li><span id="fn:r1563">Putra, H.C., H. Zhang and C. Andrews, 2015: Modeling Real Estate Market Responses to Climate Change in the Coastal Zone. JASSS J. Artific. Soc. S., 18(2), doi:10.18564/jasss.2577.</span></li> <li><span id="fn:r1564">Bunten, D. and M. Kahn, 2014: The Impact of Emerging Climate Risks on Urban Real Estate Price Dynamics. National Bureau of Economic Research, Cambridge, MA [Available at: http://www.nber.org/papers/w20018.pdf%5D . Accessed: 2019/09/30.</span></li> <li><span id="fn:r1565">World Bank, 2017: Pacific Possible : long-term economic opportunities and challenges for Pacific Island Countries (English). Pacific possible series. The World Bank, Washington, DC. 130 p. http://documents.worldbank.org/curated/en/168951503668157320/pdf/ACS22308-PUBLIC-P154324-ADD-SERIES-PPFullReportFINALscreen.pdf</span></li> <li><span id="fn:r1566">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1567">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r1568">Brierley, A.S. and M.J. Kingsford, 2009: Impacts of Climate Change on Marine Organisms and Ecosystems. Curr. Biol., 19(14), R602–R614, doi:10.1016/j.cub.2009.05.046.</span></li> <li><span id="fn:r1569">Davis, R., 2015: ‘All in’: Snow crab, capitalization, and the future of small-scale fisheries in Newfoundland. Mar. Policy, 61, 323–330, doi:10.1016/j.marpol.2015.04.008.</span></li> <li><span id="fn:r1570">Pelletier, J.F. and E. Guy, 2012: Évaluation des activités de transport maritime en arctique canadien. Cahiers Scientifiques Du Transport, (61), 3–33.</span></li> <li><span id="fn:r1571">George, R., 2013: Ninety percent of everything: inside shipping, the invisible industry that puts clothes on your back, gas in your car, and food on your plate. Macmillan-Picador, 1st eddition, 304 pp, USA, ISBN: 9781250058294.</span></li> <li><span id="fn:r1572">Cordes, E.E. et al., 2016: Environmental Impacts of the Deep-Water Oil and Gas Industry: A Review to Guide Management Strategies. Front. Environ. Sci., 4, 58.</span></li> <li><span id="fn:r1573">Koetse, M.J. and P. Rietveld, 2009: The impact of climate change and weather on transport: An overview of empirical findings. Transport. Res. D. Tr. E., 14(3), 205–221, doi:10.1016/j.trd.2008.12.004.</span></li> <li><span id="fn:r1574">Ng, A.K.Y. et al., 2018: Implications of climate change for shipping: Opening the Arctic seas. WiRes. Clim. Change, 9(2), e507, doi:10.1002/wcc.507.</span></li> <li><span id="fn:r1575">Guy, E. and F. Lasserre, 2016: Commercial shipping in the Arctic: new perspectives, challenges and regulations. Polar Record, 52(3), 294–304, doi:10.1017/S0032247415001011.</span></li> <li><span id="fn:r1576">Prowse, T.D. et al., 2009: Implications of Climate Change for Economic Development in Northern Canada: Energy, Resource, and Transportation Sectors. Ambio, 38(5), 272–281, doi:10.1579/0044-7447-38.5.272.</span></li> <li><span id="fn:r1577">Wassmann, P., M. Duarte Carlos, S. AgustÍ and K. Sejr Mikael, 2010: Footprints of climate change in the Arctic marine ecosystem. Global Change Biol., 17(2), 1235–1249, doi:10.1111/j.1365-2486.2010.02311.x.</span></li> <li><span id="fn:r1578">Pelletier, J.F. and E. Guy, 2012: Évaluation des activités de transport maritime en arctique canadien. Cahiers Scientifiques Du Transport, (61), 3–33.</span></li> <li><span id="fn:r1579">George, R., 2013: Ninety percent of everything: inside shipping, the invisible industry that puts clothes on your back, gas in your car, and food on your plate. Macmillan-Picador, 1st eddition, 304 pp, USA, ISBN: 9781250058294.</span></li> <li><span id="fn:r1580">Hodgson, J., W. Russell and M. Megannety, 2016: Exploring plausible futures for marine transportation in the Canadian arctic, a scenarios based approach. Prepared for Transport Canada. Hodgson and Associates, Vancouver, Canada, 120 pp.</span></li> <li><span id="fn:r1581">Pizzolato, L. et al., 2016: The influence of declining sea ice on shipping activity in the Canadian Arctic. Geophys. Res. Lett., 43(23).</span></li> <li><span id="fn:r1582">Dawson, J., 2017: Climate Change Adaptation Strategies and Policy Options for Arctic Shipping. Transport Canada. Ottawa, Canada. 154 pp. http://hdl.handle.net/10393/36016</span></li> <li><span id="fn:r1583">Wan, Z., M. Zhu, S. Chen and D. Sperling, 2016: Pollution: Three steps to a green shipping industry.</span></li> <li><span id="fn:r1584">Harrison, G.P. and A.R. Wallace, 2005: Climate sensitivity of marine energy. Renew. Energ., 30(12), 1801–1817, doi:10.1016/j.renene.2004.12.006.</span></li> <li><span id="fn:r1585">Koetse, M.J. and P. Rietveld, 2009: The impact of climate change and weather on transport: An overview of empirical findings. Transport. Res. D. Tr. E., 14(3), 205–221, doi:10.1016/j.trd.2008.12.004.</span></li> <li><span id="fn:r1586">Bae, Y.H., K.O. Kim and B.H. Choi, 2010: Lake Sihwa tidal power plant project. Ocean Eng., 37(5), 454–463, doi:10.1016/j.oceaneng.2010.01.015.</span></li> <li><span id="fn:r1587">Jaroszweski, D., L. Chapman and J. Petts, 2010: Assessing the potential impact of climate change on transportation: the need for an interdisciplinary approach. J. Transport. Geogr., 18(2), 331–335, doi:10.1016/j.jtrangeo.2009.07.005.</span></li> <li><span id="fn:r1588">O Rourke, F., F. Boyle and A. Reynolds, 2010: Tidal energy update 2009. Appl. Energy, 87(2), 398–409, doi:10.1016/j.apenergy.2009.08.014.</span></li> <li><span id="fn:r1589">Hooper, T. and M. Austen, 2013: Tidal barrages in the UK: Ecological and social impacts, potential mitigation, and tools to support barrage planning. Renew. Sustain. Energ. Rev., 23, 289–298, doi:10.1016/j.rser.2013.03.001.</span></li> <li><span id="fn:r1590">Kempener, R. and F. Neumann, 2014b: Tidal Energy: Technology Brief. International Renewable Energy Agency (IRENA). Abu Dhabi.</span></li> <li><span id="fn:r1591">Kempener, R. and F. Neumann, 2014a: Salinity gradient energy—technology brief. IRENA Ocean Energy Technology, 4.</span></li> <li><span id="fn:r1592">Abanades, J., D. Greaves and G. Iglesias, 2015: Coastal defence using wave farms: The role of farm-to-coast distance. Renew. Energ., 75, 572–582, doi:10.1016/j.renene.2014.10.048.</span></li> <li><span id="fn:r1593">Astariz, S., C. Perez-Collazo, J. Abanades and G. Iglesias, 2015: Towards the optimal design of a co-located wind-wave farm. Energy, 84, 15–24, doi:10.1016/j.energy.2015.01.114.</span></li> <li><span id="fn:r1594">Borthwick, A.G.L., 2016: Marine Renewable Energy Seascape. Engineering, 2(1), 69–78, doi:10.1016/J.ENG.2016.01.011.</span></li> <li><span id="fn:r1595">Foteinis, S. and T. Tsoutsos, 2017: Strategies to improve sustainability and offset the initial high capital expenditure of wave energy converters (WECs). Renew. Sustain. Energ. Rev., 70, 775–785, doi:10.1016/j.rser.2016.11.258.</span></li> <li><span id="fn:r1596">Manasseh, R. et al., 2017: Integration of wave energy and other marine renewable energy sources with the needs of coastal societies. The International Journal of Ocean and Climate Systems, 8(1), 19–36, doi:10.1177/1759313116683962.</span></li> <li><span id="fn:r1597">Beck, M.W. et al., 2018: The global flood protection savings provided by coral reefs. Nat. Commun., 9(1), 2186, doi:10.1038/s41467-018-04568-z.</span></li> <li><span id="fn:r1598">Gattuso, J.-P. et al., 2018: Ocean Solutions to Address Climate Change and Its Effects on Marine Ecosystems. Front. Mar. Sci., 5(337), doi:10.3389/fmars.2018.00337.</span></li> <li><span id="fn:r1599">Hemer, M.A. et al., 2018: Perspectives on a way forward for ocean renewable energy in Australia. Renew. Energ., 127, 733–745, doi:10.1016/j.renene.2018.05.036.</span></li> <li><span id="fn:r1600">Dinh, V.N. and E. McKeogh, 2019b: Offshore Wind Energy: Technology Opportunities and Challenges. In: Proceedings of the 1st Vietnam Symposium on Advances in Offshore Engineering. Energy and Geotechnics [Marco di Prisco, S.-H. C., Giovanni Solari, Ioannis Vayas (ed.)][Randolph, M.F., D.H. Doan, A.M. Tang, M. Bui and V.N. Dinh (eds.)]. Springer, Singapore, 3–22.</span></li> <li><span id="fn:r1601">Dinh, V.N. and E. McKeogh, 2019a: Offshore Wind Energy: Technology Opportunities and Challenges. In: Proceedings of the 1st Vietnam Symposium on Advances in Offshore Engineering, [Randolph, M.F., D.H. Doan, A.M. Tang, M. Bui and V.N. Dinh (eds.)], Springer Singapore, pp. 3–22.</span></li> <li><span id="fn:r1602">Greene, C., B. Monger and M. Huntley, 2010: Geoengineering: The inescapable truth of getting to 350. Solutions, 1(5), 57–66.</span></li> <li><span id="fn:r1603">Greene, C.H. et al., 2016: Marine microalgae: Climate, energy, and food security from the sea. Oceanography, 29(4), 10–15.</span></li> <li><span id="fn:r1604">Harrison, G.P. and A.R. Wallace, 2005: Climate sensitivity of marine energy. Renew. Energ., 30(12), 1801–1817, doi:10.1016/j.renene.2004.12.006.</span></li> <li><span id="fn:r1605">Singh, G.G. et al., 2019: Climate impacts on the ocean are making the Sustainable Development Goals a moving target travelling away from us. People and Nature, 1(3), 317–330. doi:10.1002/pan3.26.</span></li> <li><span id="fn:r1606">Singh, G.G. et al., 2019: Climate impacts on the ocean are making the Sustainable Development Goals a moving target travelling away from us. People and Nature, 1(3), 317–330. doi:10.1002/pan3.26.</span></li> <li><span id="fn:r1607">Carvalho, B., E. Rangel and M. Vale, 2017: Evaluation of the impacts of climate change on disease vectors through ecological niche modelling. Bulletin of entomological research, 107(4), 419–430.</span></li> <li><span id="fn:r1608">Castelle, B., S. Bujan, S. Ferreira and G. Dodet, 2017: Foredune morphological changes and beach recovery from the extreme 2013/2014 winter at a high-energy sandy coast. Mar. Geol., 385, 41–55, doi:10.1016/j.margeo.2016.12.006.</span></li> <li><span id="fn:r1609">Pearse, R., 2017: Gender and climate change. WiRes. Clim. Change, 8(2), 1–16, e451. doi: 10.1002/wcc.451.</span></li> <li><span id="fn:r1610">Wouters, H. et al., 2017: Heat stress increase under climate change twice as large in cities as in rural areas: A study for a densely populated midlatitude maritime region. Geophys. Res. Lett., 44(17), 8997–9007.</span></li> <li><span id="fn:r1611">Linares, O.F., 2009: From past to future agricultural expertise in Africa: Jola women of Senegal expand market-gardening. PNAS, 106(50), 21074.</span></li> <li><span id="fn:r1612">Dennis, K.C., I. Niang-Diop and R.J. Nicholls, 1995: Sea level Rise and Senegal: Potential Impacts and Consequences. J. Coast. Res., 243–261.</span></li> <li><span id="fn:r1613">Azad, A.K., K.M. Hossain and M. Nasreen, 2013: Flood-induced vulnerabilities and problems encountered by women in northern Bangladesh. Int. J. Disast. Risk Sci., 4(4), 190–199, doi:10.1007/s13753-013-0020-z.</span></li> <li><span id="fn:r1614">Salehyan, I., 2008: From climate change to conflict? No consensus yet. J. Peace Res., 45(3), 315–326.</span></li> <li><span id="fn:r1615">Singh, G.G. et al., 2017: A rapid assessment of co-benefits and trade-offs among Sustainable Development Goals. Mar. Policy, 93, 223–231.</span></li> <li><span id="fn:r1616">UNEP, 2017: The Emissions Gap Report. United Natoins Environment Programme, Nairobi [Available at: http://www.worldcat.org/title/emissions-gap-report-2017-a-un-environment-synthesis-report/oclc/1009432397%5D . Accessed: 2019/09/30.</span></li> <li><span id="fn:r1617">IPCC, 2018: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.-O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA., 630</span></li> <li><span id="fn:r1618">Griscom, B.W. et al., 2017: Natural climate solutions. PNAS, 114(44), 11645.</span></li> <li><span id="fn:r1619">Grassi, G. et al., 2017: The key role of forests in meeting climate targets requires science for credible mitigation. Nat. Clim. Change, 7, 220, doi:10.1038/nclimate3227.</span></li> <li><span id="fn:r1620">Arévalo-Martínez, D.L. et al., 2015: Massive nitrous oxide emissions from the tropical South Pacific Ocean. Nat. Geosci., 8, 530, doi:10.1038/ngeo2469.</span></li> <li><span id="fn:r1621">Borges, A.V. et al., 2016: Massive marine methane emissions from near-shore shallow coastal areas. Sci. Rep., 6, 27908, doi:10.1038/srep27908.</span></li> <li><span id="fn:r1622">Hamdan, L.J. and K.P. Wickland, 2016: Methane emissions from oceans, coasts, and freshwater habitats: New perspectives and feedbacks on climate. Limnol. Oceanogr., 61(S1), S3–S12, doi:10.1002/lno.10449.</span></li> <li><span id="fn:r1623">Nellemann, C. et al., 2009: Blue carbon: the role of healthy oceans in binding carbon: a rapid response assessment. UNEP/Earthprint, Arendal, Norway, 78 p. ISBN: 978-82-7701-060-1</span></li> <li><span id="fn:r1624">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r1625">Pendleton, L. et al., 2012: Estimating Global “Blue Carbon” Emissions from Conversion and Degradation of Vegetated Coastal Ecosystems. PLoS One, 7(9), e43542, doi:10.1371/journal.pone.0043542.</span></li> <li><span id="fn:r1626">Thomas, S., 2014: Blue carbon: Knowledge gaps, critical issues, and novel approaches. Ecol. Econ., 107(Supplement C), 22–38.</span></li> <li><span id="fn:r1627">Macreadie, P.I. et al., 2017a: Can we manage coastal ecosystems to sequester more blue carbon? Front. Ecol. Environ., 15(4), 206–213, doi:10.1002/fee.1484.</span></li> <li><span id="fn:r1628">Alongi, D.M., 2018: Blue Carbon: Coastal Sequestration for Climate Change Mitigation. Springer, Cham, Switzerland. ISBN: 978-3-319-91697-2</span></li> <li><span id="fn:r1629">Windham-Myers, L., S. Crooks and T.G. Troxler, 2019: A blue carbon primer: the state of coastal wetland carbon science, practice and policy. CRC Press, Boca Raton, Florida. 481 pp. ISBN: 978-1-4987-6909-9.</span></li> <li><span id="fn:r1630">Lovelock, C.E. and C.M. Duarte, 2019: Dimensions of Blue Carbon and emerging perspectives. Biol. Lett., 15(3), 20180781.</span></li> <li><span id="fn:r1631">Nahlik, A.M. and M.S. Fennessy, 2016: Carbon storage in US wetlands. Nat. Commun., 7, 13835, doi:10.1038/ncomms13835.</span></li> <li><span id="fn:r1632">Vázquez-González, C. et al., 2017: Mangrove and Freshwater Wetland Conservation Through Carbon Offsets: A Cost-Benefit Analysis for Establishing Environmental Policies. Environ. Manage., 59(2), 274–290, doi:10.1007/s00267-016-0790-3.</span></li> <li><span id="fn:r1633">Krause-Jensen, D. and C.M. Duarte, 2016: Substantial role of macroalgae in marine carbon sequestration. Nat. Geosci., 9(10), 737–742, doi:10.1038/ngeo2790.</span></li> <li><span id="fn:r1634">Krause-Jensen, D. et al., 2018: Sequestration of macroalgal carbon: the elephant in the Blue Carbon room. Biol. Lett., 14(6), 20180236, doi:10.1098/rsbl.2018.0236.</span></li> <li><span id="fn:r1635">Raven, J., 2018: Blue carbon: past, present and future, with emphasis on macroalgae. Biol. Lett., 14(10), 20180336.</span></li> <li><span id="fn:r1636">Henson, S.A. et al., 2010: Detection of anthropogenic climate change in satellite records of ocean chlorophyll and productivity. Biogeosciences, 7(2), 621–640, doi:10.5194/bg-7-621-2010.</span></li> <li><span id="fn:r1637">DeVries, T., M. Holzer and F. Primeau, 2017: Recent increase in oceanic carbon uptake driven by weaker upper-ocean overturning. Nature, 542(7640), 215.</span></li> <li><span id="fn:r1638">Boyd, P.W. et al., 2019: Multi-faceted particle pumps drive carbon sequestration in the ocean. Nature, 568(7752), 327–335, doi:10.1038/s41586-019-1098-2.</span></li> <li><span id="fn:r1639">Cartapanis, O., E.D. Galbraith, D. Bianchi and S. L. Jaccard, 2018: Carbon burial in deep sea sediment and implications for oceanic inventories of carbon and alkalinity over the last glacial cycle. Clim. Past, 14(11), 1819–1850, doi:10.5194/cp-14-1819-2018.</span></li> <li><span id="fn:r1640">Jiao, N. et al., 2010: Microbial production of recalcitrant dissolved organic matter: long-term carbon storage in the global ocean. Nat. Rev. Microbiol., 8(8), 593–599, doi:10.1038/Nrmicro2386.</span></li> <li><span id="fn:r1641">Jiao, N. et al., 2014b: Mechanisms of microbial carbon sequestration in the ocean – future research directions. Biogeosciences, 11(19), 5285–5306, doi:10.5194/bg-11-5285-2014.</span></li> <li><span id="fn:r1642">Jiao, N. et al., 2010: Microbial production of recalcitrant dissolved organic matter: long-term carbon storage in the global ocean. Nat. Rev. Microbiol., 8(8), 593–599, doi:10.1038/Nrmicro2386.</span></li> <li><span id="fn:r1643">Jiao, N. et al., 2014a: Presence of Prochlorococcus in the aphotic waters of the western Pacific Ocean. Biogeosciences, 11(8), 2391–2400, doi:10.5194/bg-11-2391-2014.</span></li> <li><span id="fn:r1644">Legendre, L. et al., 2015: The microbial carbon pump concept: Potential biogeochemical significance in the globally changing ocean. Progr. Oceanogr., 134, 432–450, doi:10.1016/j.pocean.2015.01.008.</span></li> <li><span id="fn:r1645">Jiao, N. et al., 2018a: Unveiling the enigma of refractory carbon in the ocean. Natl. Sci. Rev., 5(4), 459-463. , doi:10.1093/nsr/nwy020.</span></li> <li><span id="fn:r1646">Ciais, P. et al., 2013: Carbon and Other Biogeochemical Cycles. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Stocker, T.F., D. Qin, G.-K. Plattner, M. Tignor, S.K. Allen, J. Boschung, A. Nauels, Y. Xia, V. Bex and P.M. Midgley(eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, 465–570.</span></li> <li><span id="fn:r1647">Gattuso, J.-P. et al., 2018: Ocean Solutions to Address Climate Change and Its Effects on Marine Ecosystems. Front. Mar. Sci., 5(337), doi:10.3389/fmars.2018.00337.</span></li> <li><span id="fn:r1648">Regnier, P. et al., 2013: Anthropogenic perturbation of the carbon fluxes from land to ocean. Nat. Geosci., 6(8), 597–607, doi:10.1038/ngeo1830.</span></li> <li><span id="fn:r1649">Cloern, J.E. et al., 2016: Human activities and climate variability drive fast‐paced change across the world’s estuarine–coastal ecosystems. Global Change Biol., 22(2), 513–529.</span></li> <li><span id="fn:r1650">Day, J.W. and J.M. Rybczyk, 2019: Global Change Impacts on the Future of Coastal Systems: Perverse Interactions Among Climate Change, Ecosystem Degradation, Energy Scarcity, and Population. In: Coasts and Estuaries. Elsevier, 621–639.</span></li> <li><span id="fn:r1651">Ramesh, R. et al., 2015: Land–Ocean Interactions in the Coastal Zone: Past, present & future. Anthropocene, 12, 85–98, doi:10.1016/j.ancene.2016.01.005.</span></li> <li><span id="fn:r1652">Li, X., R. Bellerby, C. Craft and S.E. Widney, 2018a: Coastal wetland loss, consequences, and challenges for restoration. Anthropocene Coasts, 1(0), 1–15.</span></li> <li><span id="fn:r1653">Jiao, N., K. Tang, H. Cai and Y. Mao, 2011: Increasing the microbial carbon sink in the sea by reducing chemical fertilization on the land. Nat. Rev. Microbiol., 9(1), doi:10.1038/nrmicro2386-c2.</span></li> <li><span id="fn:r1654">Regnier, P. et al., 2013: Anthropogenic perturbation of the carbon fluxes from land to ocean. Nat. Geosci., 6(8), 597–607, doi:10.1038/ngeo1830.</span></li> <li><span id="fn:r1655">Bauer, J.E. et al., 2013: The changing carbon cycle of the coastal ocean. Nature, 504(7478), 61–70, doi:10.1038/nature12857.</span></li> <li><span id="fn:r1656">Barragán, J.M. and M. de Andrés, 2015: Analysis and trends of the world’s coastal cities and agglomerations. Ocean Coast. Manage., 114, 11–20, doi:10.1016/j.ocecoaman.2015.06.004.</span></li> <li><span id="fn:r1657">Crooks, S. et al., 2011: Mitigating climate change through restoration and management of coastal wetlands and near-shore marine ecosystems: challenges and opportunities. Environment Department Paper 121, World Bank, Washington, D.C. 59 p.</span></li> <li><span id="fn:r1658">Hejnowicz, A.P., H. Kennedy, M.A. Rudd and M.R. Huxham, 2015: Harnessing the climate mitigation, conservation and poverty alleviation potential of seagrasses: prospects for developing blue carbon initiatives and payment for ecosystem service programmes. Front. Mar. Sci., 2, 32.</span></li> <li><span id="fn:r1659">Needelman, B.A. et al., 2018: The Science and Policy of the Verified Carbon Standard Methodology for Tidal Wetland and Seagrass Restoration. Estuar. Coast., 41(8), 2159–2171, doi:10.1007/s12237-018-0429-0.</span></li> <li><span id="fn:r1660">Troxler, T.G., H.A. Kennedy, S. Crooks and A.E. Sutton-Grier, 2018: Introduction of Coastal Wetlands into the IPCC Greenhouse Gas Inventory Methodological Guidance. Editors: Windham-Myers, Crooks, Troxler, In: A Blue Carbon Primer. CRC Press, Boca Raton,, pp. 217–234, eBook ISBN9780429435362, https://doi.org/10.1201/9780429435362 .</span></li> <li><span id="fn:r1661">Needelman, B.A., I.M. Emmer, M.P. Oreska and J.P. Megonigal, 2019: Blue carbon accounting for carbon markets. In: A Blue Carbon Primer . [Windham-Myers, L., Crooks, S. and Troxler, T. G. (eds.)]. CRC Press, Boca Raton, FL, pp. 283–292, ISBN: 978-1-4987-6909-9.</span></li> <li><span id="fn:r1662">Crooks, S. et al., 2011: Mitigating climate change through restoration and management of coastal wetlands and near-shore marine ecosystems: challenges and opportunities. Environment Department Paper 121, World Bank, Washington, D.C. 59 p.</span></li> <li><span id="fn:r1663">Hejnowicz, A.P., H. Kennedy, M.A. Rudd and M.R. Huxham, 2015: Harnessing the climate mitigation, conservation and poverty alleviation potential of seagrasses: prospects for developing blue carbon initiatives and payment for ecosystem service programmes. Front. Mar. Sci., 2, 32.</span></li> <li><span id="fn:r1664">Ahmed, N. and M. Glaser, 2016b: Coastal aquaculture, mangrove deforestation and blue carbon emissions: Is REDD+ a solution? Mar. Policy, 66, 58–66, doi:10.1016/j.marpol.2016.01.011.</span></li> <li><span id="fn:r1665">Aziz, A.A., S. Thomas, P. Dargusch and S. Phinn, 2016: Assessing the potential of REDD+ in a production mangrove forest in Malaysia using stakeholder analysis and ecosystem services mapping. Mar. Policy, 74, 6–17, doi:10.1016/j.marpol.2016.09.013.</span></li> <li><span id="fn:r1666">Krause-Jensen, D. and C.M. Duarte, 2016: Substantial role of macroalgae in marine carbon sequestration. Nat. Geosci., 9(10), 737–742, doi:10.1038/ngeo2790.</span></li> <li><span id="fn:r1667">Zhang, Y. et al., 2017: Carbon sequestration processes and mechanisms in coastal mariculture environments in China. Science China Earth Sciences, 60(12), 2097–2107, doi:10.1007/s11430-017-9148-7.</span></li> <li><span id="fn:r1668">Chmura, G.L., S.C. Anisfeld, D.R. Cahoon and J.C. Lynch, 2003: Global carbon sequestration in tidal, saline wetland soils. Global Biogeochem. Cy., 17(4), doi:10.1029/2002GB001917.</span></li> <li><span id="fn:r1669">Duarte, C.M., J.J. Middelburg and N. Caraco, 2005: Major role of marine vegetation on the oceanic carbon cycle. Biogeosciences, 2(1), 1–8, doi:10.5194/bg-2-1-2005.</span></li> <li><span id="fn:r1670">Kennedy, H. et al., 2010: Seagrass sediments as a global carbon sink: Isotopic constraints. Global Biogeochem. Cy., 24(4), n/a–n/a, doi:10.1029/2010GB003848.</span></li> <li><span id="fn:r1671">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r1672">Duarte, C.M. et al., 2017: Can Seaweed Farming Play a Role in Climate Change Mitigation and Adaptation? Front. Mar. Sci., 4, 100.</span></li> <li><span id="fn:r1673">Herr, D. and E. Landis, 2016: Coastal blue carbon ecosystems. Opportunities for nationally determined contributions. Policy Brief. Gland, Switzerland: IUCN and Washington, DC, USA: TNC.</span></li> <li><span id="fn:r1674">Martin, A. et al., 2016a: Blue Carbon – Nationally Determined Contributions Inventory. Appendix to: Coastal blue carbon ecosystems. Opportunities for Nationally Determined Contributions. GRID-Arendal, Norway [Available at: http://bluecsolutions.org/dev/wp-content/uploads/Blue-Carbon-NDC-Appendix.pdf%5D . Accessed: 2019/09/30.</span></li> <li><span id="fn:r1675">Gallo, N.D., D.G. Victor and L.A. Levin, 2017: Ocean commitments under the Paris Agreement. Nat. Clim. Change, 7(11), 833-838, doi:10.1038/NCLIMATE3422.</span></li> <li><span id="fn:r1676">Donato, D.C. et al., 2011: Mangroves among the most carbon-rich forests in the tropics. Nat. Geosci., 4, 293, doi:10.1038/ngeo1123.</span></li> <li><span id="fn:r1677">Alongi, D.M., 2015: The impact of climate change on mangrove forests. Curr. Clim. Change Rep., 1(1), 30–39.</span></li> <li><span id="fn:r1678">Howard, J. et al., 2017: Clarifying the role of coastal and marine systems in climate mitigation. Front. Ecol. Environ., 15(1), 42–50, doi:10.1002/fee.1451.</span></li> <li><span id="fn:r1679">Almahasheer, H. et al., 2017: Low Carbon sink capacity of Red Sea mangroves. Sci. Rep., 7(1), 9700, doi:10.1038/s41598-017-10424-9.</span></li> <li><span id="fn:r1680">Kelleway, J.J. et al., 2016: Seventy years of continuous encroachment substantially increases ‘blue carbon’ capacity as mangroves replace intertidal salt marshes. Glob Chang Biol, 22(3), 1097–109, doi:10.1111/gcb.13158.</span></li> <li><span id="fn:r1681">Macreadie, P.I. et al., 2017b: Carbon sequestration by Australian tidal marshes. Sci. Rep., 7, 44071, doi:10.1038/srep44071.</span></li> <li><span id="fn:r1682">Serrano, O., P.S. Lavery, M. Rozaimi and M.Á. Mateo, 2014: Influence of water depth on the carbon sequestration capacity of seagrasses. Global Biogeochem. Cy., 28(9), 950–961, doi:10.1002/2014GB004872.</span></li> <li><span id="fn:r1683">McKee, K.L., D.R. Cahoon and I.C. Feller, 2007: Caribbean mangroves adjust to rising sea level through biotic controls on change in soil elevation. Global Ecol. Biogeogr., 16(5), 545–556, doi:10.1111/j.1466-8238.2007.00317.x.</span></li> <li><span id="fn:r1684">Laffoley, D. and G.D. Grimsditch, 2009: The management of natural coastal carbon sinks. IUCN, Gland, Switzerland. 53.: ISBN: 978-2-8317-1205-5.</span></li> <li><span id="fn:r1685">Pan, Y. et al., 2011: A Large and Persistent Carbon Sink in the World’s Forests. Science, 333(6045), 988.</span></li> <li><span id="fn:r1686">Marba, N. and C.M. Duarte, 2009: Mediterranean warming triggers seagrass (Posidonia oceanica) shoot mortality. Global Change Biol., 16(8), 2366–2375, doi:10.1111/j.1365-2486.2009.02130.x.</span></li> <li><span id="fn:r1687">Duarte, C.M. et al., 2010: Seagrass community metabolism: Assessing the carbon sink capacity of seagrass meadows. Global Biogeochem. Cy., 24(4), doi:10.1029/2010GB003793.</span></li> <li><span id="fn:r1688">Pendleton, L. et al., 2012: Estimating Global “Blue Carbon” Emissions from Conversion and Degradation of Vegetated Coastal Ecosystems. PLoS One, 7(9), e43542, doi:10.1371/journal.pone.0043542.</span></li> <li><span id="fn:r1689">Lovelock, C.E., J.W. Fourqurean and J.T. Morris, 2017: Modeled CO2 Emissions from Coastal Wetland Transitions to Other Land Uses: Tidal Marshes, Mangrove Forests, and Seagrass Beds. Front. Mar. Sci., 4, 143.</span></li> <li><span id="fn:r1690">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r1691">Jickells, T.D., J.E. Andrews and D.J. Parkes, 2015: Direct and Indirect Effects of Estuarine Reclamation on Nutrient and Metal Fluxes in the Global Coastal Zone. Aquat. Geochem., 22(4), 337–348, doi:10.1007/s10498-015-9278-7.</span></li> <li><span id="fn:r1692">Gu, J. et al., 2018: Losses of salt marsh in China: Trends, threats and management. Estuar. Coast. Shelf Sci., 214, 98–109, doi:10.1016/j.ecss.2018.09.015.</span></li> <li><span id="fn:r1693">Li, X., R. Bellerby, C. Craft and S.E. Widney, 2018a: Coastal wetland loss, consequences, and challenges for restoration. Anthropocene Coasts, 1(0), 1–15.</span></li> <li><span id="fn:r1694">Alongi, D.M., 2015: The impact of climate change on mangrove forests. Curr. Clim. Change Rep., 1(1), 30–39.</span></li> <li><span id="fn:r1695">Atwood, T.B. et al., 2017: Global patterns in mangrove soil carbon stocks and losses. Nat. Clim. Change, 7, 523, doi:10.1038/nclimate3326.</span></li> <li><span id="fn:r1696">Pendleton, L. et al., 2012: Estimating Global “Blue Carbon” Emissions from Conversion and Degradation of Vegetated Coastal Ecosystems. PLoS One, 7(9), e43542, doi:10.1371/journal.pone.0043542.</span></li> <li><span id="fn:r1697">Howard, J. et al., 2017: Clarifying the role of coastal and marine systems in climate mitigation. Front. Ecol. Environ., 15(1), 42–50, doi:10.1002/fee.1451.</span></li> <li><span id="fn:r1698">Lovelock, C.E., J.W. Fourqurean and J.T. Morris, 2017: Modeled CO2 Emissions from Coastal Wetland Transitions to Other Land Uses: Tidal Marshes, Mangrove Forests, and Seagrass Beds. Front. Mar. Sci., 4, 143.</span></li> <li><span id="fn:r1699">Taillardat, P., D. A. Friess and M. Lupascu, 2018: Mangrove blue carbon strategies for climate change mitigation are most effective at the national scale. Biol. Lett., 14(10), 20180251.</span></li> <li><span id="fn:r1700">Taillardat, P., D. A. Friess and M. Lupascu, 2018: Mangrove blue carbon strategies for climate change mitigation are most effective at the national scale. Biol. Lett., 14(10), 20180251.</span></li> <li><span id="fn:r1701">Lovelock, C.E., J.W. Fourqurean and J.T. Morris, 2017: Modeled CO2 Emissions from Coastal Wetland Transitions to Other Land Uses: Tidal Marshes, Mangrove Forests, and Seagrass Beds. Front. Mar. Sci., 4, 143.</span></li> <li><span id="fn:r1702">Taillardat, P., D. A. Friess and M. Lupascu, 2018: Mangrove blue carbon strategies for climate change mitigation are most effective at the national scale. Biol. Lett., 14(10), 20180251.</span></li> <li><span id="fn:r1703">Miteva, D.A., B.C. Murray and S.K. Pattanayak, 2015: Do protected areas reduce blue carbon emissions? A quasi-experimental evaluation of mangroves in Indonesia. Ecol. Econ., 119, 127–135.</span></li> <li><span id="fn:r1704">Herr, D., M. Unger, D. Laffoley and A. McGivern, 2017: Pathways for implementation of blue carbon initiatives. Aquat. Conserv. Mar. Freshw. Ecosyst., 27(S1), 116–129, doi:10.1002/aqc.2793.</span></li> <li><span id="fn:r1705">Howard, J. et al., 2017: Clarifying the role of coastal and marine systems in climate mitigation. Front. Ecol. Environ., 15(1), 42–50, doi:10.1002/fee.1451.</span></li> <li><span id="fn:r1706">Macreadie, P.I. et al., 2017a: Can we manage coastal ecosystems to sequester more blue carbon? Front. Ecol. Environ., 15(4), 206–213, doi:10.1002/fee.1484.</span></li> <li><span id="fn:r1707">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r1708">Isensee, K., J. Howard, E. Pidgeon and J. Ramos, 2019: Coastal blue carbon. In: WMO Statement on the State of the Global Climate in 2018. WMO, Geneva, pp. 10–11, ISBN: 978-92-63-11233-0</span></li> <li><span id="fn:r1709">López-Portillo, J., A.L. Lara-Domínguez, G. Vázquez and J.A. Aké-Castillo, 2017: Water Quality and Mangrove-Derived Tannins in Four Coastal Lagoons from the Gulf of Mexico with Variable Hydrologic Dynamics.In: Martinez, M.L.; Taramelli, A., and Silva, R. (eds.), Coastal Resilience: Exploring the Many Challenges from Different Viewpoints. Journal of Coastal Research, Special Issue No. 77, pp. 28–38. Coconut Creek (Florida), ISSN 0749-0208 doi:10.2112/SI77-004.1.</span></li> <li><span id="fn:r1710">Zhao, Q. et al., 2016a: A review of methodologies and success indicators for coastal wetland restoration. Ecol. Indic., 60, 442–452, doi:10.1016/j.ecolind.2015.07.003.</span></li> <li><span id="fn:r1711">Adam, P., 2019: Salt marsh restoration. In: Coastal Wetlands. [G.M.E. Perillo, E. Wolanski, D.R. Cahoon, C.S. Hopkinson, eds.]Elsevier, Amsterdam, Netherlands, pp. 817–861. ISBN: 978-0-444-63893-9.</span></li> <li><span id="fn:r1712">Bayraktarov, E. et al., 2016: The cost and feasibility of marine coastal restoration. Ecol. Appl., 26(4), 1055–1074, doi:10.1890/15-1077.</span></li> <li><span id="fn:r1713">Wylie, L., A.E. Sutton-Grier and A. Moore, 2016: Keys to successful blue carbon projects: Lessons learned from global case studies. Mar. Policy, 65, 76–84, doi:10.1016/j.marpol.2015.12.020.</span></li> <li><span id="fn:r1714">Adame, M.F., S. Cherian, R. Reef and B. Stewart-Koster, 2017: Mangrove root biomass and the uncertainty of belowground carbon estimations. Forest Ecol. Manag., 403, 52–60, doi:10.1016/j.foreco.2017.08.016.</span></li> <li><span id="fn:r1715">Schile, L.M., J.C. Callaway, K.N. Suding and N.M. Kelly, 2017: Can community structure track sea level rise? Stress and competitive controls in tidal wetlands. Ecol. Evol., 7(4), 1276–1285, doi:10.1002/ece3.2758.</span></li> <li><span id="fn:r1716">Lavery, P.S., M.-Á. Mateo, O. Serrano and M. Rozaimi, 2013: Variability in the Carbon Storage of Seagrass Habitats and Its Implications for Global Estimates of Blue Carbon Ecosystem Service. PLoS One, 8(9), e73748, doi:10.1371/journal.pone.0073748.</span></li> <li><span id="fn:r1717">Kelleway, J.J. et al., 2017b: Geochemical analyses reveal the importance of environmental history for blue carbon sequestration. J. Geophys. Res-Biogeo., 122(7), 1789–1805, doi:10.1002/2017JG003775.</span></li> <li><span id="fn:r1718">McLeod, E. et al., 2011: A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2. Front. Ecol. Environ., 9(10), 552–560, doi:10.1890/110004.</span></li> <li><span id="fn:r1719">Johannessen, S.C. and R.W. Macdonald, 2016: Geoengineering with seagrasses: is credit due where credit is given? Environ. Res. Lett., 11(11), 113001.</span></li> <li><span id="fn:r1720">Johannessen, S.C. and R.W. Macdonald, 2018a: Reply to Oreska et al ‘Comment on Geoengineering with seagrasses: is credit due where credit is given?’. Environ. Res. Lett., 13(3), 038002.</span></li> <li><span id="fn:r1721">Johannessen, S.C. and R.W. Macdonald, 2018b: Reply to Macreadie et al Comment on ‘Geoengineering with seagrasses: is credit due where credit is given?’. Environ. Res. Lett., 13(2), 028001.</span></li> <li><span id="fn:r1722">Macreadie, P.I. et al., 2018: Comment on ‘Geoengineering with seagrasses: is credit due where credit is given?’. Environ. Res. Lett., 13(2), 028002.</span></li> <li><span id="fn:r1723">Oreska, M.P. et al., 2018: Comment on Geoengineering with seagrasses: is credit due where credit is given? Environ. Res. Lett., 13(3), 038001.</span></li> <li><span id="fn:r1724">Keller, J.K., 2019b: Greenhouse Gases. In: A Blue Carbon Primer, The State of Coastal Wetland Carbon Science, Practice and Policy [Windham-Myers, L., S. Crooks and T.G. Troxler (eds.)]. Taylor and Francis Group, United States. ISBN: 978-1-4987-6909-9.</span></li> <li><span id="fn:r1725">Adams, C.A., J.E. Andrews and T. Jickells, 2012: Nitrous oxide and methane fluxes vs. carbon, nitrogen and phosphorous burial in new intertidal and saltmarsh sediments. Sci. Total Environ., 434, 240–251, doi:10.1016/j.scitotenv.2011.11.058.</span></li> <li><span id="fn:r1726">Chen, S. and D. Ganapin, 2016: Polycentric coastal and ocean management in the Caribbean Sea Large Marine Ecosystem: harnessing community-based actions to implement regional frameworks. Environ. Dev., 17, 264–276, doi:10.1016/j.envdev.2015.07.010.</span></li> <li><span id="fn:r1727">Chmura, G.L., L. Kellman, L. van Ardenne and G.R. Guntenspergen, 2016: Greenhouse Gas Fluxes from Salt Marshes Exposed to Chronic Nutrient Enrichment. PLoS One, 11(2), e0149937, doi:10.1371/journal.pone.0149937.</span></li> <li><span id="fn:r1728">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r1729">Cameron, C., L.B. Hutley and D.A. Friess, 2019: Estimating the full greenhouse gas emissions offset potential and profile between rehabilitating and established mangroves. Sci. Total Environ., 665, 419–431, doi:10.1016/j.scitotenv.2019.02.104.</span></li> <li><span id="fn:r1730">Adams, C.A., J.E. Andrews and T. Jickells, 2012: Nitrous oxide and methane fluxes vs. carbon, nitrogen and phosphorous burial in new intertidal and saltmarsh sediments. Sci. Total Environ., 434, 240–251, doi:10.1016/j.scitotenv.2011.11.058.</span></li> <li><span id="fn:r1731">Chmura, G.L., L. Kellman, L. van Ardenne and G.R. Guntenspergen, 2016: Greenhouse Gas Fluxes from Salt Marshes Exposed to Chronic Nutrient Enrichment. PLoS One, 11(2), e0149937, doi:10.1371/journal.pone.0149937.</span></li> <li><span id="fn:r1732">Maher, D.T. et al., 2016: Pristine mangrove creek waters are a sink of nitrous oxide. Sci. Rep., 6, 25701, doi:10.1038/srep25701.</span></li> <li><span id="fn:r1733">Howard, J. et al., 2017: Clarifying the role of coastal and marine systems in climate mitigation. Front. Ecol. Environ., 15(1), 42–50, doi:10.1002/fee.1451.</span></li> <li><span id="fn:r1734">Macreadie, P.I. et al., 2017a: Can we manage coastal ecosystems to sequester more blue carbon? Front. Ecol. Environ., 15(4), 206–213, doi:10.1002/fee.1484.</span></li> <li><span id="fn:r1735">Kennedy, H., J.W. Fourqurean and S. Papadimitriou, 2018: The Calcium Carbonate Cycle in Seagrass Ecosystems. In: A Blue Carbon Primer. CRC Press, pp. 107–119.</span></li> <li><span id="fn:r1736">Saderne, V. et al., 2019: Role of carbonate burial in Blue Carbon budgets. Nat. Commun., 10(1), 1106.</span></li> <li><span id="fn:r1737">Chew, S.T. and J.B. Gallagher, 2018: Accounting for black carbon lowers estimates of blue carbon storage services. Sci. Rep., 8(1), 2553, doi:10.1038/s41598-018-20644-2.</span></li> <li><span id="fn:r1738">Maher, D.T., M. Call, I.R. Santos and C.J. Sanders, 2018: Beyond burial: lateral exchange is a significant atmospheric carbon sink in mangrove forests. Biol. Lett., 14(7), 20180200.</span></li> <li><span id="fn:r1739">Santos, I.R. et al., 2019: Carbon outwelling and outgassing vs. burial in an estuarine tidal creek surrounded by mangrove and saltmarsh wetlands. Limnol. Oceanogr., 64(3), 996–1013, doi:10.1002/lno.11090.</span></li> <li><span id="fn:r1740">Ward, R.D., D.A. Friess, R.H. Day and R.A. MacKenzie, 2016: Impacts of climate change on mangrove ecosystems: a region by region overview. Ecosyst. Health Sustain., 2(4), e01211, doi:10.1002/ehs2.1211.</span></li> <li><span id="fn:r1741">Duke, N.C. et al., 2017: Large-scale dieback of mangroves in Australia’s Gulf of Carpentaria: a severe ecosystem response, coincidental with an unusually extreme weather event. Mar. Freshw. Res., 68(10), 1816–1829.</span></li> <li><span id="fn:r1742">Jennerjahn, T.C. et al., 2017: Mangrove Ecosystems under Climate Change. In: Mangrove Ecosystems: A Global Biogeographic Perspective [V.H. Rivera-Monroy, S.Y. Lee, E. Kristensen, and R.R. Twilley eds.]. Springer, pp. 211–244, ISBN: 978-3-319-62206-4</span></li> <li><span id="fn:r1743">Nowicki, R.J. et al., 2017: Predicting seagrass recovery times and their implications following an extreme climate event. Mar. Ecol. Prog. Ser., 567, 79–93.</span></li> <li><span id="fn:r1744">Kirwan, M.L. and J.P. Megonigal, 2013: Tidal wetland stability in the face of human impacts and sea level rise. Nature, 504, 53, doi:10.1038/nature12856.</span></li> <li><span id="fn:r1745">Spencer, T. et al., 2016: Global coastal wetland change under sea level rise and related stresses: The DIVA Wetland Change Model. Global Planet. Change, 139, 15–30, doi:10.1016/j.gloplacha.2015.12.018.</span></li> <li><span id="fn:r1746">Barnes, R.S.K., 2017: Are seaward pneumatophore fringes transitional between mangrove and lower-shore system compartments? Mar. Environ. Res., 125, 99–109, doi:10.1016/j.marenvres.2017.01.008.</span></li> <li><span id="fn:r1747">Kelleway, J.J. et al., 2016: Seventy years of continuous encroachment substantially increases ‘blue carbon’ capacity as mangroves replace intertidal salt marshes. Glob Chang Biol, 22(3), 1097–109, doi:10.1111/gcb.13158.</span></li> <li><span id="fn:r1748">Murdiyarso, D. et al., 2015: The potential of Indonesian mangrove forests for global climate change mitigation. Nat. Clim. Change, 5, 1089, doi:10.1038/nclimate2734.</span></li> <li><span id="fn:r1749">Atwood, T.B. et al., 2017: Global patterns in mangrove soil carbon stocks and losses. Nat. Clim. Change, 7, 523, doi:10.1038/nclimate3326.</span></li> <li><span id="fn:r1750">Griscom, B.W. et al., 2017: Natural climate solutions. PNAS, 114(44), 11645.</span></li> <li><span id="fn:r1751">Gattuso, J.-P. et al., 2018: Ocean Solutions to Address Climate Change and Its Effects on Marine Ecosystems. Front. Mar. Sci., 5(337), doi:10.3389/fmars.2018.00337.</span></li> <li><span id="fn:r1752">Griscom, B.W. et al., 2017: Natural climate solutions. PNAS, 114(44), 11645.</span></li> <li><span id="fn:r1753">Gittman, R.K. et al., 2015: Engineering away our natural defenses: an analysis of shoreline hardening in the US. Front. Ecol. Environ., 13(6), 301–307, doi:10.1890/150065.</span></li> <li><span id="fn:r1754">Li, X., R. Bellerby, C. Craft and S.E. Widney, 2018a: Coastal wetland loss, consequences, and challenges for restoration. Anthropocene Coasts, 1(0), 1–15.</span></li> <li><span id="fn:r1755">Bayraktarov, E. et al., 2016: The cost and feasibility of marine coastal restoration. Ecol. Appl., 26(4), 1055–1074, doi:10.1890/15-1077.</span></li> <li><span id="fn:r1756">Costanza, R. et al., 2008: The value of coastal wetlands for hurricane protection. Ambio, 37(4), 241–248.</span></li> <li><span id="fn:r1757">Spalding, M.D. et al., 2014: The role of ecosystems in coastal protection: Adapting to climate change and coastal hazards. Ocean Coast. Manage., 90, 50–57, doi:10.1016/j.ocecoaman.2013.09.007.</span></li> <li><span id="fn:r1758">Temmerman, S. et al., 2013: Ecosystem-based coastal defence in the face of global change. Nature, 504, 79, doi:10.1038/nature12859.</span></li> <li><span id="fn:r1759">Möller, I., 2019: Applying Uncertain Science to Nature-Based Coastal Protection: Lessons From Shallow Wetland-Dominated Shores. Front. Environ. Sci., 7(49), doi:10.3389/fenvs.2019.00049.</span></li> <li><span id="fn:r1760">Vázquez-González, C. et al., 2017: Mangrove and Freshwater Wetland Conservation Through Carbon Offsets: A Cost-Benefit Analysis for Establishing Environmental Policies. Environ. Manage., 59(2), 274–290, doi:10.1007/s00267-016-0790-3.</span></li> <li><span id="fn:r1761">Windham-Myers, L., S. Crooks and T.G. Troxler, 2019: A blue carbon primer: the state of coastal wetland carbon science, practice and policy. CRC Press, Boca Raton, Florida. 481 pp. ISBN: 978-1-4987-6909-9.</span></li> <li><span id="fn:r1762">Howard, J. et al., 2017: Clarifying the role of coastal and marine systems in climate mitigation. Front. Ecol. Environ., 15(1), 42–50, doi:10.1002/fee.1451.</span></li> <li><span id="fn:r1763">Hill, R. et al., 2015: Can macroalgae contribute to blue carbon? An Australian perspective. Limnol. Oceanogr., 60(5), 1689–1706, doi:10.1002/lno.10128.</span></li> <li><span id="fn:r1764">Krause-Jensen, D. and C.M. Duarte, 2016: Substantial role of macroalgae in marine carbon sequestration. Nat. Geosci., 9(10), 737–742, doi:10.1038/ngeo2790.</span></li> <li><span id="fn:r1765">Krause-Jensen, D. and C.M. Duarte, 2016: Substantial role of macroalgae in marine carbon sequestration. Nat. Geosci., 9(10), 737–742, doi:10.1038/ngeo2790.</span></li> <li><span id="fn:r1766">Krause-Jensen, D. et al., 2018: Sequestration of macroalgal carbon: the elephant in the Blue Carbon room. Biol. Lett., 14(6), 20180236, doi:10.1098/rsbl.2018.0236.</span></li> <li><span id="fn:r1767">Smale, D.A. et al., 2018: Appreciating interconnectivity between habitats is key to blue carbon management. Front. Ecol. Environ., 16(2), 71–73, doi:10.1002/fee.1765.</span></li> <li><span id="fn:r1768">N‘Yeurt, A. .R. et al., 2012: Negative carbon via Ocean Afforestation. Process Saf. Environ., 90(6), 467–474, doi:10.1016/j.psep.2012.10.008.</span></li> <li><span id="fn:r1769">Chung, I.K. et al., 2013: Installing kelp forests/seaweed beds for mitigation and adaptation against global warming: Korean Project Overview. ICES J. Mar. Sci., 70(5), 1038–1044, doi:10.1093/icesjms/fss206.</span></li> <li><span id="fn:r1770">Chung, I.K., C.F.A. Sondak and J. Beardall, 2017: The future of seaweed aquaculture in a rapidly changing world. European J. Phycol., 52(4), 495–505, doi:10.1080/09670262.2017.1359678.</span></li> <li><span id="fn:r1771">Duarte, C.M. et al., 2017: Can Seaweed Farming Play a Role in Climate Change Mitigation and Adaptation? Front. Mar. Sci., 4, 100.</span></li> <li><span id="fn:r1772">N‘Yeurt, A.d.R. and V. Iese, 2014: The proliferating brown alga Sargassum polycystum in Tuvalu, South Pacific: assessment of the bloom and applications to local agriculture and sustainable energy. J. App. Phycol., 27(5), 2037–2045, doi:10.1007/s10811-014-0435-y.</span></li> <li><span id="fn:r1773">Moreira, D. and J.C.M. Pires, 2016: Atmospheric CO2 capture by algae: Negative carbon dioxide emission path. Bioresour. Technol. 215, 371–379, doi:10.1016/j.biortech.2016.03.060.</span></li> <li><span id="fn:r1774">Sondak, C.F.A. et al., 2017: Carbon dioxide mitigation potential of seaweed aquaculture beds (SABs). J. App. Phycol., 29(5), 2363–2373, doi:10.1007/s10811-016-1022-1.</span></li> <li><span id="fn:r1775">Hughes, A.D. et al., 2012: Does seaweed offer a solution for bioenergy with biological carbon capture and storage? Greenh, Gases:, 2(6), 402–407, doi:10.1002/ghg.1319.</span></li> <li><span id="fn:r1776">Dubois, B. et al., 2013: Effect of Tropical Algae as Additives on Rumen in Vitro Gas Production and Fermentation Characteristics. Am. J. Plant Sci., 04(12), 34–43, doi:10.4236/ajps.2013.412A2005.</span></li> <li><span id="fn:r1777">Machado, L. et al., 2016: Dose-response effects of Asparagopsis taxiformis and Oedogonium sp. on in vitro fermentation and methane production. J. App. Phycol., 28(2), 1443–1452, doi:10.1007/s10811-015-0639-9.</span></li> <li><span id="fn:r1778">Machado, L. et al., 2018: In Vitro Response of Rumen Microbiota to the Antimethanogenic Red Macroalga Asparagopsis taxiformis. Microb. Ecol., 75(3), 811–818, doi:10.1007/s00248-017-1086-8.</span></li> <li><span id="fn:r1779">Jiao, N., K. Tang, H. Cai and Y. Mao, 2011: Increasing the microbial carbon sink in the sea by reducing chemical fertilization on the land. Nat. Rev. Microbiol., 9(1), doi:10.1038/nrmicro2386-c2.</span></li> <li><span id="fn:r1780">Jiao, N. et al., 2014b: Mechanisms of microbial carbon sequestration in the ocean – future research directions. Biogeosciences, 11(19), 5285–5306, doi:10.5194/bg-11-5285-2014.</span></li> <li><span id="fn:r1781">Jiao, N., H. Wang, G. Xu and S. Aricò, 2018b: Blue Carbon on the Rise:Challenges and Opportunities. Natl. Sci. Rev., 5(4), 464-468 doi:10.1093/nsr/nwy030.</span></li> <li><span id="fn:r1782">Taylor, P.G. and A.R. Townsend, 2010: Stoichiometric control of organic carbon-nitrate relationships from soils to the sea. Nature, 464(7292), 1178–1181, doi:10.1038/nature08985.</span></li> <li><span id="fn:r1783">Yuan, X. et al., 2010: Bacterial production and respiration in subtropical Hong Kong waters: influence of the Pearl River discharge and sewage effluent. Aqut. Microb. Ecol., 58(2), 167–179, doi:10.3354/ame03146.</span></li> <li><span id="fn:r1784">Jiao, N., K. Tang, H. Cai and Y. Mao, 2011: Increasing the microbial carbon sink in the sea by reducing chemical fertilization on the land. Nat. Rev. Microbiol., 9(1), doi:10.1038/nrmicro2386-c2.</span></li> <li><span id="fn:r1785">Jiao, N. et al., 2014b: Mechanisms of microbial carbon sequestration in the ocean – future research directions. Biogeosciences, 11(19), 5285–5306, doi:10.5194/bg-11-5285-2014.</span></li> <li><span id="fn:r1786">Liu, J., N. Jiao and K. Tang, 2014: An experimental study on the effects of nutrient enrichment on organic carbon persistence in the western Pacific oligotrophic gyre. Biogeosciences, 11(18), 5115–5122, doi:10.5194/bg-11-5115-2014.</span></li> <li><span id="fn:r1787">Miranda, P.M.A., J.M.R. Alves and N. Serra, 2013: Climate change and upwelling: response of Iberian upwelling to atmospheric forcing in a regional climate scenario. Clim. Dyn., 40(11–12), 2813–2824, doi:10.1007/s00382-012-1442-9.</span></li> <li><span id="fn:r1788">Jiao, N. et al., 2018a: Unveiling the enigma of refractory carbon in the ocean. Natl. Sci. Rev., 5(4), 459-463. , doi:10.1093/nsr/nwy020.</span></li> <li><span id="fn:r1789">Zhang, S. et al., 2018: Phosphorus release from cyanobacterial blooms during their decline period in eutrophic Dianchi Lake, China. Environ. Sci. Pollut. Res., doi:10.1007/s11356-018-1517-1.</span></li> <li><span id="fn:r1790">Rothman, D.H., J.M. Hayes and R.E. Summons, 2003: Dynamics of the Neoproterozoic carbon cycle. PNAS, 100(14), 8124, doi:10.1073/pnas.0832439100.</span></li> <li><span id="fn:r1791">Hale, R. et al., 2017: Mediation of macronutrients and carbon by post-disturbance shelf sea sediment communities. Biogeochemistry, 135(1), 121–133, doi:10.1007/s10533-017-0350-9.</span></li> <li><span id="fn:r1792">Avelar, S., T.S. van der Voort and T.I. Eglinton, 2017: Relevance of carbon stocks of marine sediments for national greenhouse gas inventories of maritime nations. Carbon Bal. Manage., 12(1), 10, doi:10.1186/s13021-017-0077-x.</span></li> <li><span id="fn:r1793">Luisetti, T. et al., 2019: Quantifying and valuing carbon flows and stores in coastal and shelf ecosystems in the UK. Ecosyst. Serv., 35, 67–76, doi:10.1016/j.ecoser.2018.10.013.</span></li> <li><span id="fn:r1794">van de Velde, S. et al., 2018: Anthropogenic disturbance keeps the coastal seafloor biogeochemistry in a transient state. Sci. Rep., 8(1), 5582, doi:10.1038/s41598-018-23925-y.</span></li> <li><span id="fn:r1795">Hu, L. et al., 2016: Recent organic carbon sequestration in the shelf sediments of the Bohai Sea and Yellow Sea, China. J. Mar. Syst., 155, 50–58, doi:10.1016/j.jmarsys.2015.10.018.</span></li> <li><span id="fn:r1796">Diesing, M. et al., 2017: Predicting the standing stock of organic carbon in surface sediments of the North–West European continental shelf. Biogeochemistry, 135(1), 183–200, doi:10.1007/s10533-017-0310-4.</span></li> <li><span id="fn:r1797">Renforth, P. and G. Henderson, 2017: Assessing ocean alkalinity for carbon sequestration. Rev. Geophys., 55(3), 636–674, doi:10.1002/2016RG000533.</span></li> <li><span id="fn:r1798">Albright, R. et al., 2016b: Reversal of ocean acidification enhances net coral reef calcification. Nature, 531, 362, doi:10.1038/nature17155.</span></li> <li><span id="fn:r1799">Feng, E.Y., P.K. David, K. Wolfgang and O. Andreas, 2016: Could artificial ocean alkalinization protect tropical coral ecosystems from ocean acidification? Environ. Res. Lett., 11(7), 074008.</span></li> <li><span id="fn:r1800">Gattuso, J.-P. et al., 2018: Ocean Solutions to Address Climate Change and Its Effects on Marine Ecosystems. Front. Mar. Sci., 5(337), doi:10.3389/fmars.2018.00337.</span></li> <li><span id="fn:r1801">Montserrat, F. et al., 2017: Olivine Dissolution in Seawater: Implications for CO2 Sequestration through Enhanced Weathering in Coastal Environments. Environ. Sci. Technol., 51(7), 3960–3972, doi:10.1021/acs.est.6b05942.</span></li> <li><span id="fn:r1802">Rau, G.H., E.L. McLeod and O. Hoegh-Guldberg, 2012: The need for new ocean conservation strategies in a high-carbon dioxide world. Nat. Clim. Change, 2, 720, doi:10.1038/nclimate1555.</span></li> <li><span id="fn:r1803">GESAMP, 2019: High Level Review of a Wide Range of Proposed Marine Geoengineering Techniques [Boyd, P.W. and C.M.G. Vivian (eds.)]. IMO/FAO/UNESCO-IOC/UNIDO/WMO/IAEA/UN/UN Environment/UNDP/ISA Joint Group of Experts on the Scientific Aspects of Marine Environmental Protection, GESAMP, International Maritime Organization, No. 98, 144 pp. London, UK, ISSN: 1020-4973.</span></li> <li><span id="fn:r1804">Taylor, L.L. et al., 2015: Enhanced weathering strategies for stabilizing climate and averting ocean acidification. Nat. Clim. Change, 6, 402, doi:10.1038/nclimate2882.</span></li> <li><span id="fn:r1805">Keller, D.P., 2019a: Marine climate engineering. In: Handbook on Marine Environment Protection: Science, Impacts and Sustainable Management [Salomon, M. and T. Markus (eds.)]. Springer, Switzerland. ISBN: 978-3-319-60154-0</span></li> <li><span id="fn:r1806">Legendre, L. et al., 2015: The microbial carbon pump concept: Potential biogeochemical significance in the globally changing ocean. Progr. Oceanogr., 134, 432–450, doi:10.1016/j.pocean.2015.01.008.</span></li> <li><span id="fn:r1807">Cartapanis, O., E.D. Galbraith, D. Bianchi and S. L. Jaccard, 2018: Carbon burial in deep sea sediment and implications for oceanic inventories of carbon and alkalinity over the last glacial cycle. Clim. Past, 14(11), 1819–1850, doi:10.5194/cp-14-1819-2018.</span></li> <li><span id="fn:r1808">Keller, D.P., E.Y. Feng and A. Oschlies, 2014a: Potential climate engineering effectiveness and side effects during a high carbon dioxide-emission scenario. Nat. Commun., 5, 3304, doi:10.1038/ncomms4304.</span></li> <li><span id="fn:r1809">Bowie, A.R. et al., 2015: Iron budgets for three distinct biogeochemical sites around the Kerguelen Archipelago (Southern Ocean) during the natural fertilisation study, KEOPS-2. Biogeosciences, 12(14), 4421–4445.</span></li> <li><span id="fn:r1810">Tagliabue, A. et al., 2017: The integral role of iron in ocean biogeochemistry. Nature, 543(7643), 51–59, doi:10.1038/nature21058.</span></li> <li><span id="fn:r1811">Boyd, P.W. et al., 2007: Mesoscale Iron Enrichment Experiments 1993-2005: Synthesis and Future Directions. Science, 315(5812), 612, doi:10.1126/science.1131669.</span></li> <li><span id="fn:r1812">Yoon, J.E. et al., 2016: Ocean Iron Fertilization Experiments: Past–Present–Future with Introduction to Korean Iron Fertilization Experiment in the Southern Ocean (KIFES) Project. Biogeosciences Discuss., 2016, 1–41, doi:10.5194/bg-2016-472.</span></li> <li><span id="fn:r1813">GESAMP, 2019: High Level Review of a Wide Range of Proposed Marine Geoengineering Techniques [Boyd, P.W. and C.M.G. Vivian (eds.)]. IMO/FAO/UNESCO-IOC/UNIDO/WMO/IAEA/UN/UN Environment/UNDP/ISA Joint Group of Experts on the Scientific Aspects of Marine Environmental Protection, GESAMP, International Maritime Organization, No. 98, 144 pp. London, UK, ISSN: 1020-4973.</span></li> <li><span id="fn:r1814">Williamson, P. and C. Turley, 2012: Ocean acidification in a geoengineering context. Philos. Trans. Roy. Soc. A., 370(1974), 4317.</span></li> <li><span id="fn:r1815">Aumont, O. and L. Bopp, 2006: Globalizing results from ocean in situ iron fertilization studies. Global Biogeochem. Cy., 20(2), doi:10.1029/2005GB002591.</span></li> <li><span id="fn:r1816">Williamson, P. and C. Turley, 2012: Ocean acidification in a geoengineering context. Philos. Trans. Roy. Soc. A., 370(1974), 4317.</span></li> <li><span id="fn:r1817">Boyd, P.W. and M. Bressac, 2016: Developing a test-bed for robust research governance of geoengineering: the contribution of ocean iron biogeochemistry. Philos. Trans. Roy. Soc. A., 374(2081).</span></li> <li><span id="fn:r1818">Williams, G.A. et al., 2016: Meeting the climate change challenge: Pressing issues in southern China and SE Asian coastal ecosystems. Reg. Stud. Mar. Sci., 8, 373–381, doi:10.1016/j.rsma.2016.07.002.</span></li> <li><span id="fn:r1819">Fuentes-George, K., 2017: Consensus, Certainty, and Catastrophe: Discourse, Governance, and Ocean Iron Fertilization. Global Environmental Politics, 17(2), 125–143, doi:10.1162/GLEP_a_00404.</span></li> <li><span id="fn:r1820">McGee, J., K. Brent and W. Burns, 2018: Geoengineering the oceans: an emerging frontier in international climate change governance. Australian Journal of Maritime & Ocean Affairs, 10(1), 67–80, doi:10.1080/18366503.2017.1400899.</span></li> <li><span id="fn:r1821">Robinson, J. et al., 2014: How deep is deep enough? Ocean iron fertilization and carbon sequestration in the Southern Ocean. Geophys. Res. Lett., 41(7), 2489–2495, doi:10.1002/2013GL058799.</span></li> <li><span id="fn:r1822">Harrison, D.P., 2017: Global negative emissions capacity of ocean macronutrient fertilization. Environ. Res. Lett., 12(3), 035001.</span></li> <li><span id="fn:r1823">Williamson, P. and C. Turley, 2012: Ocean acidification in a geoengineering context. Philos. Trans. Roy. Soc. A., 370(1974), 4317.</span></li> <li><span id="fn:r1824">Bauman, S.J. et al., 2014: Augmenting the biological pump: The shortcomings of geoengineered upwelling. Oceanography, 27(3), 17–23.</span></li> <li><span id="fn:r1825">Kwiatkowski, L., K.L. Ricke and K. Caldeira, 2015: Atmospheric consequences of disruption of the ocean thermocline. Environ. Res. Lett., 10(3) 034016, doi:10.1088/1748-9326/10/3/034016.</span></li> <li><span id="fn:r1826">Wong, P.P., et al. 2014a: Coastal systems and low-lying areas. In: Climate Change 2014: Impacts, Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. [Field, C.B., et al. (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, USA, pp. 361-409. ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r1827">Narayan, S. et al., 2016: The Effectiveness, Costs and Coastal Protection Benefits of Natural and Nature-Based Defences. PLoS One, 11(5), e0154735, doi:10.1371/journal.pone.0154735.</span></li> <li><span id="fn:r1828">Moosavi, S., 2017: Ecological Coastal Protection: Pathways to Living Shorelines. Procedia Eng., 196, 930–938, doi:10.1016/j.proeng.2017.08.027.</span></li> <li><span id="fn:r1829">Mutombo, K. and A. Ölçer, 2016: Towards Port Infrastructure: A Global Port Climate Risk Analysis. WMU Journal of Maritime Affairs, 16, 161, doi:10.1007/s13437-016-0113-9.</span></li> <li><span id="fn:r1830">Forzieri, G. et al., 2018: Escalating impacts of climate extremes on critical infrastructures in Europe. Global Environ. Change, 48, 97–107, doi:10.1016/j.gloenvcha.2017.11.007.</span></li> <li><span id="fn:r1831">Oswald Beiler, M., L. Marroquin and S. McNeil, 2016: State-of-the-practice assessment of climate change adaptation practices across metropolitan planning organizations pre- and post-Hurricane Sandy. Transport. Res. A-Pol., 88, 163–174, doi:10.1016/j.tra.2016.04.003.</span></li> <li><span id="fn:r1832">Thorne, K.M. et al., 2017: Are coastal managers ready for climate change? A case study from estuaries along the Pacific coast of the United States. Ocean Coast. Manage., 143, 38–50, doi:10.1016/j.ocecoaman.2017.02.010.</span></li> <li><span id="fn:r1833">Archer, D. et al., 2014: Moving towards inclusive urban adaptation: approaches to integrating community-based adaptation to climate change at city and national scale. Clim. Dev., 6(4), 345–356, doi:10.1080/17565529.2014.918868.</span></li> <li><span id="fn:r1834">Shaffiril, H.A.M., A.A. Samah and J. Lawrence, 2017: Adapting towards climate change impacts: Strategies for small-scale fishermen in Malaysia. Mar. Policy, 81, 196–201.</span></li> <li><span id="fn:r1835">Elliff, C.I. and I.R. Silva, 2017: Coral reefs as the first line of defense: Shoreline protection in face of climate change. Mar. Environ. Res., 127, 148–154, doi:10.1016/j.marenvres.2017.03.007.</span></li> <li><span id="fn:r1836">van Oppen, M.J.H. et al., 2017a: Shifting paradigms in restoration of the world’s coral reefs. Global Change Biol., 23(9), 3437–3448, doi:10.1111/gcb.13647.</span></li> <li><span id="fn:r1837">Gattuso, J.-P. et al., 2018: Ocean Solutions to Address Climate Change and Its Effects on Marine Ecosystems. Front. Mar. Sci., 5(337), doi:10.3389/fmars.2018.00337.</span></li> <li><span id="fn:r1838">Barbier, E.B., 2015: Climate change impacts on rural poverty in low-elevation coastal zones. Estuar. Coast. Shelf Sci., 165, A1–A13, doi:10.1016/j.ecss.2015.05.035.</span></li> <li><span id="fn:r1839">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r1840">Robins, P.E. et al., 2016: Impact of climate change on UK estuaries: A review of past trends and potential projections. Estuar. Coast. Shelf Sci., 169, 119–135, doi:10.1016/j.ecss.2015.12.016.</span></li> <li><span id="fn:r1841">Runting, R.K., C.E. Lovelock, H.L. Beyer and J.R. Rhodes, 2017: Costs and Opportunities for Preserving Coastal Wetlands under Sea Level Rise. Conserv. Lett., 10(1), 49–57, doi:doi:10.1111/conl.12239.</span></li> <li><span id="fn:r1842">Broto, V.C., E. Boyd and J. Ensor, 2015: Participatory urban planning for climate change adaptation in coastal cities: lessons from a pilot experience in Maputo, Mozambique. Curr. Opin. Environ. Sustain., 13, 11–18, doi:10.1016/j.cosust.2014.12.005.</span></li> <li><span id="fn:r1843">Bennett, N.J., A. Kadfak and P. Dearden, 2016: Community-based scenario planning: a process for vulnerability analysis and adaptation planning to social–ecological change in coastal communities. Environ. Dev. Sustain., 18(6), 1771–1799, doi:10.1007/s10668-015-9707-1.</span></li> <li><span id="fn:r1844">Crozier, L.G. and J.A. Hutchings, 2014: Plastic and evolutionary responses to climate change in fish. Evol. Appl., 7(1), 68–87, doi:doi:10.1111/eva.12135.</span></li> <li><span id="fn:r1845">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r1846">Diamond, S.E., 2018: Contemporary climate-driven range shifts: Putting evolution back on the table. Funct. Ecol., 32(7), 1652–1665, doi:10.1111/1365-2435.13095.</span></li> <li><span id="fn:r1847">Gienapp, P. and J. Merilä, 2018: Evolutionary Responses to Climate Change. In: Encyclopedia of the Anthropocene [Dellasala, D.A. and M.I. Goldstein (eds.)]. Elsevier, Oxford, pp. 51–59., ISBN: 9780128096659</span></li> <li><span id="fn:r1848">Butt, N. et al., 2016: Challenges in assessing the vulnerability of species to climate change to inform conservation actions. Biol. Conserv., 199, 10–15, doi:10.1016/j.biocon.2016.04.020.</span></li> <li><span id="fn:r1849">Hobday, A.J. et al., 2015: Reconciling conflicts in pelagic fisheries under climate change. Deep Sea Res. Pt. II, 113, 291–300, doi:10.1016/j.dsr2.2014.10.024.</span></li> <li><span id="fn:r1850">Ondiviela, B. et al., 2014: The role of seagrasses in coastal protection in a changing climate. Coast. Eng., 87(Supplement C), 158–168, doi:10.1016/j.coastaleng.2013.11.005.</span></li> <li><span id="fn:r1851">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r1852">Okey, T.A., H.M. Alidina, V. Lo and S. Jessen, 2014: Effects of climate change on Canada’s Pacific marine ecosystems: a summary of scientific knowledge. Rev. Fish Biol. Fisher., 24(2), 519–559, doi:10.1007/s11160-014-9342-1.</span></li> <li><span id="fn:r1853">Young, J.W. et al., 2015: The trophodynamics of marine top predators: Current knowledge, recent advances and challenges. Deep Sea Res. Pt. II, 113, 170–187, doi:10.1016/j.dsr2.2014.05.015.</span></li> <li><span id="fn:r1854">Powell, E.J. et al., 2017: A synthesis of thresholds for focal species along the U.S. Atlantic and Gulf Coasts: A review of research and applications. Ocean Coast. Manage., 148, 75–88, doi:10.1016/j.ocecoaman.2017.07.012.</span></li> <li><span id="fn:r1855">Rinkevich, B., 2008: Management of coral reefs: We have gone wrong when neglecting active reef restoration. Mar. Pollut. Bull., 56(11), 1821–1824, doi:10.1016/j.marpolbul.2008.08.014.</span></li> <li><span id="fn:r1856">Miller, K.I. and G.R. Russ, 2014: Studies of no-take marine reserves: Methods for differentiating reserve and habitat effects. Ocean Coast. Manage., 96(Supplement C), 51–60.</span></li> <li><span id="fn:r1857">Miller, K.I. and G.R. Russ, 2014: Studies of no-take marine reserves: Methods for differentiating reserve and habitat effects. Ocean Coast. Manage., 96(Supplement C), 51–60.</span></li> <li><span id="fn:r1858">Linden, B. and B. Rinkevich, 2017: Elaborating an eco-engineering approach for stock enhanced sexually derived coral colonies. J. Exp. Mar. Biol. Ecol., 486(Supplement C), 314–321.</span></li> <li><span id="fn:r1859">Rinkevich, B., 1995: Restoration Strategies for Coral Reefs Damaged by Recreational Activities: The Use of Sexual and Asexual Recruits. Restor. Ecol., 3(4), 241–251, doi:10.1111/j.1526-100X.1995.tb00091.x.</span></li> <li><span id="fn:r1860">Rinkevich, B., 2005: What do we know about Eilat (Red Sea) reef degradation? A critical examination of the published literature. J. Exp. Mar. Biol. Ecol., 327(2), 183–200.</span></li> <li><span id="fn:r1861">Rinkevich, B., 2006: The coral gardening concept and the use of underwater nurseries: lessons learned from silvics and silviculture. In: Coral Reef Restoration Handbook [Precht, W.F. (ed.)]. CRS/Taylor; Francis Boca Raton, pp. 291–302. ISBN: 9780429117886.</span></li> <li><span id="fn:r1862">Rinkevich, B., 2008: Management of coral reefs: We have gone wrong when neglecting active reef restoration. Mar. Pollut. Bull., 56(11), 1821–1824, doi:10.1016/j.marpolbul.2008.08.014.</span></li> <li><span id="fn:r1863">Bongiorni, L. et al., 2011: First step in the restoration of a highly degraded coral reef (Singapore) by in situ coral intensive farming. Aquaculture, 322–323(Supplement C), 191–200.</span></li> <li><span id="fn:r1864">Shafir, S. and B. Rinkevich, 2008: Chapter 9 – The underwater silviculture approach for reef restoration: an emergent aquaculture theme. In: Aquaculture Research Trends [Schwartz, S. H.]. Nova Science Publications, New York, pp. 279–295. ISBN: 9781604562170.</span></li> <li><span id="fn:r1865">Mbije, N.E.J., E. Spanier and B. Rinkevich, 2010: Testing the first phase of the ‘gardening concept’ as an applicable tool in restoring denuded reefs in Tanzania. Ecol. Eng., 36(5), 713–721, doi:10.1016/j.ecoleng.2009.12.018.</span></li> <li><span id="fn:r1866">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010b: Employing a highly fragmented, weedy coral species in reef restoration. Ecol. Eng., 36(10), 1424–1432, doi:10.1016/j.ecoleng.2010.06.022.</span></li> <li><span id="fn:r1867">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010a: Coral Reef Restoration (Bolinao, Philippines) in the Face of Frequent Natural Catastrophes. Restor. Ecol., 18(3), 285–299, doi:10.1111/j.1526-100X.2009.00647.x.</span></li> <li><span id="fn:r1868">Bongiorni, L. et al., 2011: First step in the restoration of a highly degraded coral reef (Singapore) by in situ coral intensive farming. Aquaculture, 322–323(Supplement C), 191–200.</span></li> <li><span id="fn:r1869">Horoszowski-Fridman, Y.B., I. Izhaki and B. Rinkevich, 2011: Engineering of coral reef larval supply through transplantation of nursery-farmed gravid colonies. J. Exp. Mar. Biol. Ecol., 399(2), 162–166, doi:10.1016/j.jembe.2011.01.005.</span></li> <li><span id="fn:r1870">Linden, B. and B. Rinkevich, 2011: Creating stocks of young colonies from brooding coral larvae, amenable to active reef restoration. J. Exp. Mar. Biol. Ecol., 398(1), 40–46.</span></li> <li><span id="fn:r1871">Mbije, N.E., E. Spanier and B. Rinkevich, 2013: A first endeavour in restoring denuded, post-bleached reefs in Tanzania. Estuar. Coast. Shelf Sci., 128(Supplement C), 41–51.</span></li> <li><span id="fn:r1872">Cruz, D.W.d., R.D. Villanueva and M.V.B. Baria, 2014: Community-based, low-tech method of restoring a lost thicket of Acropora corals. ICES J. Mar. Sci., 71(7), 1866–1875, doi:10.1093/icesjms/fst228.</span></li> <li><span id="fn:r1873">Chavanich, S. et al., 2015: Conservation, management, and restoration of coral reefs. Animal evolution: early emerging animals matter, 118(2), 132–134.</span></li> <li><span id="fn:r1874">Horoszowski-Fridman, Y.B., J.-C. Brêthes, N. Rahmani and B. Rinkevich, 2015: Marine silviculture: Incorporating ecosystem engineering properties into reef restoration acts. Ecol. Eng., 82(Supplement C), 201–213.</span></li> <li><span id="fn:r1875">Lirman, D. and S. Schopmeyer, 2016: Ecological solutions to reef degradation: optimizing coral reef restoration in the Caribbean and Western Atlantic. Peerj, 4, e2597, doi:10.7717/peerj.2597.</span></li> <li><span id="fn:r1876">Montoya Maya, P.H., K.P. Smit, A.J. Burt and S. Frias-Torres, 2016: Large-scale coral reef restoration could assist natural recovery in Seychelles, Indian Ocean. Nat. Conserv., 16(3), 1–17, doi:10.3897/natureconservation.16.8604.</span></li> <li><span id="fn:r1877">Lohr, K.E. and J.T. Patterson, 2017: Intraspecific variation in phenotype among nursery-reared staghorn coral Acropora cervicornis (Lamarck, 1816). J. Exp. Mar. Biol. Ecol., 486(Supplement C), 87–92.</span></li> <li><span id="fn:r1878">Rachmilovitz, E.N. and B. Rinkevich, 2017: Tiling the reef – Exploring the first step of an ecological engineering tool that may promote phase-shift reversals in coral reefs. Ecol. Eng., 105(Supplement C), 150–161.</span></li> <li><span id="fn:r1879">Rinkevich, B., 2015b: Novel tradable instruments in the conservation of coral reefs, based on the coral gardening concept for reef restoration. J. Environ. Manage., 162(Supplement C), 199–205.</span></li> <li><span id="fn:r1880">Hein, M.Y., B.L. Willis, R. Beeden and A. Birtles, 2017: The need for broader ecological and socioeconomic tools to evaluate the effectiveness of coral restoration programs. Restor. Ecol., 25(6), 873–883, doi:10.1111/rec.12580.</span></li> <li><span id="fn:r1881">Rinkevich, B., 2014: Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Curr. Opin. Environ. Sustain., 7(Supplement C), 28–36, doi:10.1016/j.cosust.2013.11.018.</span></li> <li><span id="fn:r1882">Rinkevich, B., 2015b: Novel tradable instruments in the conservation of coral reefs, based on the coral gardening concept for reef restoration. J. Environ. Manage., 162(Supplement C), 199–205.</span></li> <li><span id="fn:r1883">Linden, B. and B. Rinkevich, 2017: Elaborating an eco-engineering approach for stock enhanced sexually derived coral colonies. J. Exp. Mar. Biol. Ecol., 486(Supplement C), 314–321.</span></li> <li><span id="fn:r1884">Rinkevich, B., 2014: Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Curr. Opin. Environ. Sustain., 7(Supplement C), 28–36, doi:10.1016/j.cosust.2013.11.018.</span></li> <li><span id="fn:r1885">Forsman, Z.H., C.A. Page, R.J. Toonen and D. Vaughan, 2015: Growing coral larger and faster: micro-colony-fusion as a strategy for accelerating coral cover. Peerj, 3(1), e1313, doi:10.7717/peerj.1313.</span></li> <li><span id="fn:r1886">Coelho, V.R. et al., 2017: Shading as a mitigation tool for coral bleaching in three common Indo-Pacific species. J. Exp. Mar. Biol. Ecol., 497(Supplement C), 152–163.</span></li> <li><span id="fn:r1887">Horoszowski-Fridman, Y.B. and B. Rinkevich, 2017: Restoration of the Animal Forests: Harnessing Silviculture Biodiversity Concepts for Coral Transplantation in Marine Animal Forests.[Rossi, S., L. Bramanti, A. Gori and C. Orejas (eds.)]. Springer International Publishing, Cham, pp. 1–2, ISBN: 978-3-319-21011-7 .</span></li> <li><span id="fn:r1888">Linden, B. and B. Rinkevich, 2017: Elaborating an eco-engineering approach for stock enhanced sexually derived coral colonies. J. Exp. Mar. Biol. Ecol., 486(Supplement C), 314–321.</span></li> <li><span id="fn:r1889">Rachmilovitz, E.N. and B. Rinkevich, 2017: Tiling the reef – Exploring the first step of an ecological engineering tool that may promote phase-shift reversals in coral reefs. Ecol. Eng., 105(Supplement C), 150–161.</span></li> <li><span id="fn:r1890">Casey, J.M., S.R. Connolly and T.D. Ainsworth, 2015: Coral transplantation triggers shift in microbiome and promotion of coral disease associated potential pathogens. Sci. Rep., 5(1), 833, doi:10.1038/srep11903.</span></li> <li><span id="fn:r1891">Horoszowski-Fridman, Y.B. and B. Rinkevich, 2017: Restoration of the Animal Forests: Harnessing Silviculture Biodiversity Concepts for Coral Transplantation in Marine Animal Forests.[Rossi, S., L. Bramanti, A. Gori and C. Orejas (eds.)]. Springer International Publishing, Cham, pp. 1–2, ISBN: 978-3-319-21011-7 .</span></li> <li><span id="fn:r1892">Shaver, E.C. and B.R. Silliman, 2017: Time to cash in on positive interactions for coral restoration. Peerj, 5, e3499, doi:10.7717/peerj.3499.</span></li> <li><span id="fn:r1893">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010b: Employing a highly fragmented, weedy coral species in reef restoration. Ecol. Eng., 36(10), 1424–1432, doi:10.1016/j.ecoleng.2010.06.022.</span></li> <li><span id="fn:r1894">Gómez, C.E.G. et al., 2014: Responses of the tropical gorgonian coral Eunicea fusca to ocean acidification conditions. Coral Reefs, 34, 451–460.</span></li> <li><span id="fn:r1895">Iwao, K., N. Wada, A. Ohdera and M. Omori, 2014: How many donor colonies should be cross-fertilized for nursery farming of sexually propagated corals? Natural Resources, 05(10), 521–526, doi:10.4236/nr.2014.510047.</span></li> <li><span id="fn:r1896">Drury, C. et al., 2016: Genomic variation among populations of threatened coral: Acropora cervicornis. BMC Genomics, 17(1), 958, doi:10.1186/s12864-016-2583-8.</span></li> <li><span id="fn:r1897">Horoszowski-Fridman, Y.B. and B. Rinkevich, 2017: Restoration of the Animal Forests: Harnessing Silviculture Biodiversity Concepts for Coral Transplantation in Marine Animal Forests.[Rossi, S., L. Bramanti, A. Gori and C. Orejas (eds.)]. Springer International Publishing, Cham, pp. 1–2, ISBN: 978-3-319-21011-7 .</span></li> <li><span id="fn:r1898">Rinkevich, B., 2014: Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Curr. Opin. Environ. Sustain., 7(Supplement C), 28–36, doi:10.1016/j.cosust.2013.11.018.</span></li> <li><span id="fn:r1899">Rinkevich, B., 2015b: Novel tradable instruments in the conservation of coral reefs, based on the coral gardening concept for reef restoration. J. Environ. Manage., 162(Supplement C), 199–205.</span></li> <li><span id="fn:r1900">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010b: Employing a highly fragmented, weedy coral species in reef restoration. Ecol. Eng., 36(10), 1424–1432, doi:10.1016/j.ecoleng.2010.06.022.</span></li> <li><span id="fn:r1901">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010a: Coral Reef Restoration (Bolinao, Philippines) in the Face of Frequent Natural Catastrophes. Restor. Ecol., 18(3), 285–299, doi:10.1111/j.1526-100X.2009.00647.x.</span></li> <li><span id="fn:r1902">Horoszowski-Fridman, Y.B., I. Izhaki and B. Rinkevich, 2011: Engineering of coral reef larval supply through transplantation of nursery-farmed gravid colonies. J. Exp. Mar. Biol. Ecol., 399(2), 162–166, doi:10.1016/j.jembe.2011.01.005.</span></li> <li><span id="fn:r1903">Brown, B., R. Dunne, M. Goodson and A. Douglas, 2002: Experience shapes the susceptibility of a reef coral to bleaching. Coral Reefs, 21(2), 119–126.</span></li> <li><span id="fn:r1904">Horoszowski-Fridman, Y.B., I. Izhaki and B. Rinkevich, 2011: Engineering of coral reef larval supply through transplantation of nursery-farmed gravid colonies. J. Exp. Mar. Biol. Ecol., 399(2), 162–166, doi:10.1016/j.jembe.2011.01.005.</span></li> <li><span id="fn:r1905">Palumbi, S.R., D.J. Barshis, N. Traylor-Knowles and R.A. Bay, 2014: Mechanisms of reef coral resistance to future climate change. Science, 344(6186), 895–898, doi:10.1126/science.1251336.</span></li> <li><span id="fn:r1906">Putnam, H.M. and R.D. Gates, 2015: Preconditioning in the reef-building coral Pocillopora damicornis and the potential for trans-generational acclimatization in coral larvae under future climate change conditions. J. Exp. Biol., 218(15), 2365–2372, doi:10.1242/jeb.123018.</span></li> <li><span id="fn:r1907">Putnam, H.M., J.M. Davidson and R.D. Gates, 2016: Ocean acidification influences host DNA methylation and phenotypic plasticity in environmentally susceptible corals. Evol. Appl., 9(9), 1165–1178, doi:10.1111/eva.12408.</span></li> <li><span id="fn:r1908">Hoegh-Guldberg, O. et al., 2018: Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. 630 pp., In Press.</span></li> <li><span id="fn:r1909">IPCC, 2018: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.-O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I. Gomis, E. Lonnoy, T. Maycock, M. Tignor and T. Waterfield (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA., 630</span></li> <li><span id="fn:r1910">Graham, N.A.J., J.E. Cinner, A.V. Norstrom and M. Nystrom, 2014: Coral reefs as novel ecosystems: embracing new futures. Curr. Opin. Environ. Sustain., 7, 9–14, doi:10.1016/j.cosust.2013.11.023.</span></li> <li><span id="fn:r1911">Rinkevich, B., 2015a: Climate Change and Active Reef Restoration—Ways of Constructing the “Reefs of Tomorrow”. J. Mar. Sci. Eng., 3(1), 111–127, doi:10.3390/jmse3010111.</span></li> <li><span id="fn:r1912">Harborne, A.R. et al., 2017: Multiple Stressors and the Functioning of Coral Reefs. Annu. Rev. Mar. Sci., Vol 8, 9(1), 445–468, doi:10.1146/annurev-marine-010816-060551.</span></li> <li><span id="fn:r1913">Rinkevich, B., 1995: Restoration Strategies for Coral Reefs Damaged by Recreational Activities: The Use of Sexual and Asexual Recruits. Restor. Ecol., 3(4), 241–251, doi:10.1111/j.1526-100X.1995.tb00091.x.</span></li> <li><span id="fn:r1914">Rinkevich, B., 2000: Steps towards the evaluation of coral reef restoration by using small branch fragments. Mar. Biol., 136(5), 807–812, doi:10.1007/s002270000293.</span></li> <li><span id="fn:r1915">Barton, J.A., B.L. Willis and K.S. Hutson, 2017: Coral propagation: a review of techniques for ornamental trade and reef restoration. Rev. Aquacult., 9(3), 238–256, doi:10.1111/raq.12135.</span></li> <li><span id="fn:r1916">Hoegh-Guldberg, O. et al., 2008: Assisted Colonization and Rapid Climate Change. Science, 321(5887), 345.</span></li> <li><span id="fn:r1917">Chauvenet, A.L.M. et al., 2013: Maximizing the success of assisted colonizations. Animal Conserv., 16(2), 161–169, doi:10.1111/j.1469-1795.2012.00589.x.</span></li> <li><span id="fn:r1918">van Oppen, M.J.H., J.K. Oliver, H.M. Putnam and R.D. Gates, 2015: Building coral reef resilience through assisted evolution. PNAS, 112(8), 2307.</span></li> <li><span id="fn:r1919">Rinkevich, B., 2019: Coral chimerism as an evolutionary rescue mechanism to mitigate global climate change impacts. Global Change Biol., 25(4), 1198–1206, doi:10.1111/gcb.14576.</span></li> <li><span id="fn:r1920">McIlroy, S.E. and M.A. Coffroth, 2017: Coral ontogeny affects early symbiont acquisition in laboratory-reared recruits. Coral Reefs, 36(3), 927–932, doi:10.1007/s00338-017-1584-7.</span></li> <li><span id="fn:r1921">Bourne, D.G., K.M. Morrow and N.S. Webster, 2016: Insights into the Coral Microbiome: Underpinning the Health and Resilience of Reef Ecosystems. Annu. Rev. Microbiol., 70(1), 317–340, doi:10.1146/annurev-micro-102215-095440.</span></li> <li><span id="fn:r1922">Sweet, M.J. and M.T. Bulling, 2017: On the Importance of the Microbiome and Pathobiome in Coral Health and Disease. Front. Mar. Sci., 4(9), doi:10.3389/fmars.2017.00009.</span></li> <li><span id="fn:r1923">van Oppen, M.J.H. et al., 2017b: Shifting paradigms in restoration of the world’s coral reefs. Global Change Biol., 23(9), 3437–3448, doi:10.1111/gcb.13647.</span></li> <li><span id="fn:r1924">Rinkevich, B., 2006: The coral gardening concept and the use of underwater nurseries: lessons learned from silvics and silviculture. In: Coral Reef Restoration Handbook [Precht, W.F. (ed.)]. CRS/Taylor; Francis Boca Raton, pp. 291–302. ISBN: 9780429117886.</span></li> <li><span id="fn:r1925">Rinkevich, B., 2014: Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Curr. Opin. Environ. Sustain., 7(Supplement C), 28–36, doi:10.1016/j.cosust.2013.11.018.</span></li> <li><span id="fn:r1926">Riegl, B.M. et al., 2011: Present Limits to Heat-Adaptability in Corals and Population-Level Responses to Climate Extremes. PLoS One, 6(9), e24802, doi:10.1371/journal.pone.0024802.</span></li> <li><span id="fn:r1927">Coles, S.L. and B.M. Riegl, 2013: Thermal tolerances of reef corals in the Gulf: A review of the potential for increasing coral survival and adaptation to climate change through assisted translocation. Mar. Pollut. Bull., 72(2), 323–332, doi:10.1016/j.marpolbul.2012.09.006.</span></li> <li><span id="fn:r1928">Ferrario, F. et al., 2014: The effectiveness of coral reefs for coastal hazard risk reduction and adaptation. Nat. Commun., 5, 3794, doi:10.1038/ncomms4794.</span></li> <li><span id="fn:r1929">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010a: Coral Reef Restoration (Bolinao, Philippines) in the Face of Frequent Natural Catastrophes. Restor. Ecol., 18(3), 285–299, doi:10.1111/j.1526-100X.2009.00647.x.</span></li> <li><span id="fn:r1930">Schopmeyer, S., A. et al., 2012: In Situ Coral Nurseries Serve as Genetic Repositories for Coral Reef Restoration after an Extreme Cold‐Water Event. Restor. Ecol., 20(6), 696–703, doi:10.1111/j.1526-100X.2011.00836.x.</span></li> <li><span id="fn:r1931">Hernández-Delgado, E.A. et al., 2014: Community-Based Coral Reef Rehabilitation in a Changing Climate: Lessons Learned from Hurricanes, Extreme Rainfall, and Changing Land Use Impacts. Open Ecol. J., 04(14), 918–944, doi:10.4236/oje.2014.414077.</span></li> <li><span id="fn:r1932">Rinkevich, B., 2015a: Climate Change and Active Reef Restoration—Ways of Constructing the “Reefs of Tomorrow”. J. Mar. Sci. Eng., 3(1), 111–127, doi:10.3390/jmse3010111.</span></li> <li><span id="fn:r1933">West, J.M. et al., 2017: Climate-Smart Design for Ecosystem Management: A Test Application for Coral Reefs. Environ. Manage., 59(1), 102–117, doi:10.1007/s00267-016-0774-3.</span></li> <li><span id="fn:r1934">Vergés, A. et al., 2019: Tropicalisation of temperate reefs: Implications for ecosystem functions and management actions. Funct. Ecol., 33(6), 1000-1013. doi:10.1111/1365-2435.13310.</span></li> <li><span id="fn:r1935">Rinkevich, B., 2014: Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Curr. Opin. Environ. Sustain., 7(Supplement C), 28–36, doi:10.1016/j.cosust.2013.11.018.</span></li> <li><span id="fn:r1936">Lirman, D. and S. Schopmeyer, 2016: Ecological solutions to reef degradation: optimizing coral reef restoration in the Caribbean and Western Atlantic. Peerj, 4, e2597, doi:10.7717/peerj.2597.</span></li> <li><span id="fn:r1937">Frias-Torres, S. and C. van de Geer, 2015: Testing animal-assisted cleaning prior to transplantation in coral reef restoration. Peerj, 3, e1287, doi:10.7717/peerj.1287.</span></li> <li><span id="fn:r1938">Lirman, D. and S. Schopmeyer, 2016: Ecological solutions to reef degradation: optimizing coral reef restoration in the Caribbean and Western Atlantic. Peerj, 4, e2597, doi:10.7717/peerj.2597.</span></li> <li><span id="fn:r1939">Montoya Maya, P.H., K.P. Smit, A.J. Burt and S. Frias-Torres, 2016: Large-scale coral reef restoration could assist natural recovery in Seychelles, Indian Ocean. Nat. Conserv., 16(3), 1–17, doi:10.3897/natureconservation.16.8604.</span></li> <li><span id="fn:r1940">Jacob, C., A. Buffard, S. Pioch and S. Thorin, 2017: Marine ecosystem restoration and biodiversity offset. Ecol. Eng., doi:10.1016/j.ecoleng.2017.09.007.</span></li> <li><span id="fn:r1941">Rachmilovitz, E.N. and B. Rinkevich, 2017: Tiling the reef – Exploring the first step of an ecological engineering tool that may promote phase-shift reversals in coral reefs. Ecol. Eng., 105(Supplement C), 150–161.</span></li> <li><span id="fn:r1942">Rinkevich, B., 2015b: Novel tradable instruments in the conservation of coral reefs, based on the coral gardening concept for reef restoration. J. Environ. Manage., 162(Supplement C), 199–205.</span></li> <li><span id="fn:r1943">Barton, J.A., B.L. Willis and K.S. Hutson, 2017: Coral propagation: a review of techniques for ornamental trade and reef restoration. Rev. Aquacult., 9(3), 238–256, doi:10.1111/raq.12135.</span></li> <li><span id="fn:r1944">Flores, R. . et al., 2017: Application of Transplantation Technology to Improve Coral Reef Resources for Sustainable Fisheries and Underwater Tourism. Int. J. Environ. Sci. Dev., 8(1), 44.</span></li> <li><span id="fn:r1945">Hein, M.Y., B.L. Willis, R. Beeden and A. Birtles, 2017: The need for broader ecological and socioeconomic tools to evaluate the effectiveness of coral restoration programs. Restor. Ecol., 25(6), 873–883, doi:10.1111/rec.12580.</span></li> <li><span id="fn:r1946">Rinkevich, B., 2014: Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Curr. Opin. Environ. Sustain., 7(Supplement C), 28–36, doi:10.1016/j.cosust.2013.11.018.</span></li> <li><span id="fn:r1947">Shaish, L., G. Levy, G. Katzir and B. Rinkevich, 2010a: Coral Reef Restoration (Bolinao, Philippines) in the Face of Frequent Natural Catastrophes. Restor. Ecol., 18(3), 285–299, doi:10.1111/j.1526-100X.2009.00647.x.</span></li> <li><span id="fn:r1948">Schopmeyer, S., A. et al., 2012: In Situ Coral Nurseries Serve as Genetic Repositories for Coral Reef Restoration after an Extreme Cold‐Water Event. Restor. Ecol., 20(6), 696–703, doi:10.1111/j.1526-100X.2011.00836.x.</span></li> <li><span id="fn:r1949">Coles, S.L. and B.M. Riegl, 2013: Thermal tolerances of reef corals in the Gulf: A review of the potential for increasing coral survival and adaptation to climate change through assisted translocation. Mar. Pollut. Bull., 72(2), 323–332, doi:10.1016/j.marpolbul.2012.09.006.</span></li> <li><span id="fn:r1950">Hernández-Delgado, E.A. et al., 2014: Community-Based Coral Reef Rehabilitation in a Changing Climate: Lessons Learned from Hurricanes, Extreme Rainfall, and Changing Land Use Impacts. Open Ecol. J., 04(14), 918–944, doi:10.4236/oje.2014.414077.</span></li> <li><span id="fn:r1951">Rinkevich, B., 2015a: Climate Change and Active Reef Restoration—Ways of Constructing the “Reefs of Tomorrow”. J. Mar. Sci. Eng., 3(1), 111–127, doi:10.3390/jmse3010111.</span></li> <li><span id="fn:r1952">Wilson, A.M.W. and C. Forsyth, 2018: Restoring near-shore marine ecosystems to enhance climate security for island ocean states: Aligning international processes and local practices. Mar. Policy, 93, 284-294 doi:10.1016/j.marpol.2018.01.018.</span></li> <li><span id="fn:r1953">Perry, C.T. et al., 2018: Loss of coral reef growth capacity to track future increases in sea level. Nature, 558(7710), 396–400, doi:10.1038/s41586-018-0194-z.</span></li> <li><span id="fn:r1954">Rinkevich, B., 2008: Management of coral reefs: We have gone wrong when neglecting active reef restoration. Mar. Pollut. Bull., 56(11), 1821–1824, doi:10.1016/j.marpolbul.2008.08.014.</span></li> <li><span id="fn:r1955">Ban, S.S., N.A.J. Graham and S.R. Connolly, 2014: Evidence for multiple stressor interactions and effects on coral reefs. Global Change Biol., 20(3), 681–697, doi:10.1111/gcb.12453.</span></li> <li><span id="fn:r1956">Schönberg, C.H.L. et al., 2017: Bioerosion: the other ocean acidification problem. ICES J. Mar. Sci., 74(4), 895–925, doi:10.1093/icesjms/fsw254.</span></li> <li><span id="fn:r1957">Bayraktarov, E. et al., 2016: The cost and feasibility of marine coastal restoration. Ecol. Appl., 26(4), 1055–1074, doi:10.1890/15-1077.</span></li> <li><span id="fn:r1958">Flores, R. . et al., 2017: Application of Transplantation Technology to Improve Coral Reef Resources for Sustainable Fisheries and Underwater Tourism. Int. J. Environ. Sci. Dev., 8(1), 44.</span></li> <li><span id="fn:r1959">Linden, B. and B. Rinkevich, 2017: Elaborating an eco-engineering approach for stock enhanced sexually derived coral colonies. J. Exp. Mar. Biol. Ecol., 486(Supplement C), 314–321.</span></li> <li><span id="fn:r1960">Hayden, H.L. and E.F. Granek, 2015: Coastal sediment elevation change following anthropogenic mangrove clearing. Estuar. Coast. Shelf Sci., 165, 70–74, doi:10.1016/j.ecss.2015.09.004.</span></li> <li><span id="fn:r1961">Huxham, M. et al., 2015: Applying Climate Compatible Development and economic valuation to coastal management: A case study of Kenya’s mangrove forests. J. Environ. Manage., 157, 168–181, doi:10.1016/j.jenvman.2015.04.018.</span></li> <li><span id="fn:r1962">Ahmed, N. and M. Glaser, 2016a: Can “Integrated Multi-Trophic Aquaculture (IMTA)” adapt to climate change in coastal Bangladesh? Ocean Coast. Manage., 132, 120–131, doi:10.1016/j.ocecoaman.2016.08.017.</span></li> <li><span id="fn:r1963">Sierra-Correa, P.C. and J.R. Cantera Kintz, 2015: Ecosystem-based adaptation for improving coastal planning for sea level rise: A systematic review for mangrove coasts. Mar. Policy, 51, 385–393, doi:10.1016/j.marpol.2014.09.013.</span></li> <li><span id="fn:r1964">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r1965">Nanlohy, H., A.N. Bambang, Ambariyanto and S. Hutabarat, 2015: Coastal Communities Knowledge Level on Climate Change as a Consideration in Mangrove Ecosystems Management in the Kotania Bay, West Seram Regency. Procedia Environ. Sci., 23, 157–163, doi:10.1016/j.proenv.2015.01.024.</span></li> <li><span id="fn:r1966">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r1967">Triyanti, A., M. Bavinck, J. Gupta and M.A. Marfai, 2017: Social capital, interactive governance and coastal protection: The effectiveness of mangrove ecosystem-based strategies in promoting inclusive development in Demak, Indonesia. Ocean Coast. Manage., 150, 3–11, doi:10.1016/j.ocecoaman.2017.10.017.</span></li> <li><span id="fn:r1968">Hayden, H.L. and E.F. Granek, 2015: Coastal sediment elevation change following anthropogenic mangrove clearing. Estuar. Coast. Shelf Sci., 165, 70–74, doi:10.1016/j.ecss.2015.09.004.</span></li> <li><span id="fn:r1969">Nanlohy, H., A.N. Bambang, Ambariyanto and S. Hutabarat, 2015: Coastal Communities Knowledge Level on Climate Change as a Consideration in Mangrove Ecosystems Management in the Kotania Bay, West Seram Regency. Procedia Environ. Sci., 23, 157–163, doi:10.1016/j.proenv.2015.01.024.</span></li> <li><span id="fn:r1970">Sierra-Correa, P.C. and J.R. Cantera Kintz, 2015: Ecosystem-based adaptation for improving coastal planning for sea level rise: A systematic review for mangrove coasts. Mar. Policy, 51, 385–393, doi:10.1016/j.marpol.2014.09.013.</span></li> <li><span id="fn:r1971">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r1972">Alongi, D.M., 2015: The impact of climate change on mangrove forests. Curr. Clim. Change Rep., 1(1), 30–39.</span></li> <li><span id="fn:r1973">Nanlohy, H., A.N. Bambang, Ambariyanto and S. Hutabarat, 2015: Coastal Communities Knowledge Level on Climate Change as a Consideration in Mangrove Ecosystems Management in the Kotania Bay, West Seram Regency. Procedia Environ. Sci., 23, 157–163, doi:10.1016/j.proenv.2015.01.024.</span></li> <li><span id="fn:r1974">Palacios, M.L. and J.R. Cantera, 2017: Mangrove timber use as an ecosystem service in the Colombian Pacific. Hydrobiologia, 803(1), 345–358.</span></li> <li><span id="fn:r1975">Nanlohy, H., A.N. Bambang, Ambariyanto and S. Hutabarat, 2015: Coastal Communities Knowledge Level on Climate Change as a Consideration in Mangrove Ecosystems Management in the Kotania Bay, West Seram Regency. Procedia Environ. Sci., 23, 157–163, doi:10.1016/j.proenv.2015.01.024.</span></li> <li><span id="fn:r1976">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r1977">Sierra-Correa, P.C. and J.R. Cantera Kintz, 2015: Ecosystem-based adaptation for improving coastal planning for sea level rise: A systematic review for mangrove coasts. Mar. Policy, 51, 385–393, doi:10.1016/j.marpol.2014.09.013.</span></li> <li><span id="fn:r1978">Ward, R.D., D.A. Friess, R.H. Day and R.A. MacKenzie, 2016: Impacts of climate change on mangrove ecosystems: a region by region overview. Ecosyst. Health Sustain., 2(4), e01211, doi:10.1002/ehs2.1211.</span></li> <li><span id="fn:r1979">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r1980">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r1981">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r1982">Sierra-Correa, P.C. and J.R. Cantera Kintz, 2015: Ecosystem-based adaptation for improving coastal planning for sea level rise: A systematic review for mangrove coasts. Mar. Policy, 51, 385–393, doi:10.1016/j.marpol.2014.09.013.</span></li> <li><span id="fn:r1983">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r1984">Gilman, E.L., J. Ellison, N.C. Duke and C. Field, 2008: Threats to mangroves from climate change and adaptation options: a review. Aquat. Bot., 89(2), 237–250.</span></li> <li><span id="fn:r1985">Ataur Rahman, M. and S. Rahman, 2015: Natural and traditional defense mechanisms to reduce climate risks in coastal zones of Bangladesh. Weather and Climate Extremes, 7, 84–95, doi:10.1016/j.wace.2014.12.004.</span></li> <li><span id="fn:r1986">Sierra-Correa, P.C. and J.R. Cantera Kintz, 2015: Ecosystem-based adaptation for improving coastal planning for sea level rise: A systematic review for mangrove coasts. Mar. Policy, 51, 385–393, doi:10.1016/j.marpol.2014.09.013.</span></li> <li><span id="fn:r1987">Ahmed, N. and M. Glaser, 2016a: Can “Integrated Multi-Trophic Aquaculture (IMTA)” adapt to climate change in coastal Bangladesh? Ocean Coast. Manage., 132, 120–131, doi:10.1016/j.ocecoaman.2016.08.017.</span></li> <li><span id="fn:r1988">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r1989">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r1990">Miloshis, M. and C.A. Fairfield, 2015: Coastal wetland management: A rating system for potential engineering interventions. Ecol. Eng., 75, 195–198.</span></li> <li><span id="fn:r1991">Schaeffer-Novelli, Y. et al., 2016: Climate changes in mangrove forests and salt marshes. Brazilian J. Oceanogr., 64((spe2)), 37–52.</span></li> <li><span id="fn:r1992">Watson, E.B. et al., 2017a: Anthropocene Survival of Southern New England’s Salt Marshes. Estuar. Coast., 40(3), 617–625, doi:10.1007/s12237-016-0166-1.</span></li> <li><span id="fn:r1993">Schuerch, M. et al., 2018: Future response of global coastal wetlands to sea level rise. Nature, 561(7722), 231–234, doi:10.1038/s41586-018-0476-5.</span></li> <li><span id="fn:r1994">Watson, E.B. et al., 2017a: Anthropocene Survival of Southern New England’s Salt Marshes. Estuar. Coast., 40(3), 617–625, doi:10.1007/s12237-016-0166-1.</span></li> <li><span id="fn:r1995">Ondiviela, B. et al., 2014: The role of seagrasses in coastal protection in a changing climate. Coast. Eng., 87(Supplement C), 158–168, doi:10.1016/j.coastaleng.2013.11.005.</span></li> <li><span id="fn:r1996">Miloshis, M. and C.A. Fairfield, 2015: Coastal wetland management: A rating system for potential engineering interventions. Ecol. Eng., 75, 195–198.</span></li> <li><span id="fn:r1997">Schaeffer-Novelli, Y. et al., 2016: Climate changes in mangrove forests and salt marshes. Brazilian J. Oceanogr., 64((spe2)), 37–52.</span></li> <li><span id="fn:r1998">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r1999">Wong, P.P., et al. 2014a: Coastal systems and low-lying areas. In: Climate Change 2014: Impacts, Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. [Field, C.B., et al. (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, USA, pp. 361-409. ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r2000">Ondiviela, B. et al., 2014: The role of seagrasses in coastal protection in a changing climate. Coast. Eng., 87(Supplement C), 158–168, doi:10.1016/j.coastaleng.2013.11.005.</span></li> <li><span id="fn:r2001">Onaka, S., H. Hashimoto, S.R. Nashreen Banu Soogun and A. Jheengut, 2015: Chapter 26 – Coastal Erosion and Demonstration Project as Coastal Adaptation Measures in Mauritius. In: Handbook of Coastal Disaster Mitigation for Engineers and Planners. [Esteban, M., H. Takagi and T. Shibayama (eds.)]. Butterworth-Heinemann, Boston, pp. 561–577. ISBN: 978-0-12-801060-0.</span></li> <li><span id="fn:r2002">Ranasinghe, R., 2016: Assessing climate change impacts on open sandy coasts: A review. Earth-Sci. Rev., 160, 320–332, doi:10.1016/j.earscirev.2016.07.011.</span></li> <li><span id="fn:r2003">MacDonald, M.A. et al., 2017: Benefits of coastal managed realignment for society: Evidence from ecosystem service assessments in two UK regions. Estuar. Coast. Shelf Sci., doi:10.1016/j.ecss.2017.09.007.</span></li> <li><span id="fn:r2004">Pranzini, E., 2017: Shore protection in Italy: From hard to soft engineering … and back. Ocean Coast. Manage., 156, 43–57. doi:10.1016/j.ocecoaman.2017.04.018.</span></li> <li><span id="fn:r2005">Salgado, K. and M.L. Martinez, 2017: Is ecosystem-based coastal defense a realistic alternative? Exploring the evidence. J. Coast. Conserv., 21(6), 837–848, doi:10.1007/s11852-017-0545-1.</span></li> <li><span id="fn:r2006">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2007">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2008">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2009">Pranzini, E., 2017: Shore protection in Italy: From hard to soft engineering … and back. Ocean Coast. Manage., 156, 43–57. doi:10.1016/j.ocecoaman.2017.04.018.</span></li> <li><span id="fn:r2010">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2011">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2012">Sánchez-Arcilla, A. et al., 2016: Managing coastal environments under climate change: Pathways to adaptation. Sci. Total Environ., 572, 1336–1352, doi:10.1016/j.scitotenv.2016.01.124.</span></li> <li><span id="fn:r2013">Goreau, T.J.F. and P. Prong, 2017: Biorock Electric Reefs Grow Back Severely Eroded Beaches in Months. J. Mar. Sci. Eng., 5(4), 48.</span></li> <li><span id="fn:r2014">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2015">Carro, I., Seijo, L., Nagy, G.J., Lagos, X. and Gutiérrez, O., 2018: Building capacity on ecosystem-based adaption strategy to cope with extreme events and sea level rise on the Uruguayan coast. Int. J. Clim. Change Strategies Manage., 10(4), 504–522, doi:10.1108/IJCCSM-07-2017-0149.</span></li> <li><span id="fn:r2016">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2017">Onaka, S., H. Hashimoto, S.R. Nashreen Banu Soogun and A. Jheengut, 2015: Chapter 26 – Coastal Erosion and Demonstration Project as Coastal Adaptation Measures in Mauritius. In: Handbook of Coastal Disaster Mitigation for Engineers and Planners. [Esteban, M., H. Takagi and T. Shibayama (eds.)]. Butterworth-Heinemann, Boston, pp. 561–577. ISBN: 978-0-12-801060-0.</span></li> <li><span id="fn:r2018">MacDonald, M.A. et al., 2017: Benefits of coastal managed realignment for society: Evidence from ecosystem service assessments in two UK regions. Estuar. Coast. Shelf Sci., doi:10.1016/j.ecss.2017.09.007.</span></li> <li><span id="fn:r2019">Nehren, U. et al., 2017: Sand Dunes and Mangroves for Disaster Risk Reduction and Climate Change Adaptation in the Coastal Zone of Quang Nam Province, Vietnam. In: Land Use and Climate Change Interactions in Central Vietnam: LUCCi [Nauditt, A. and L. Ribbe (eds.)]. Springer Singapore, Singapore, pp. 201–222. ISBN: 978-981-10-2624-9.</span></li> <li><span id="fn:r2020">Nehren, U. et al., 2017: Sand Dunes and Mangroves for Disaster Risk Reduction and Climate Change Adaptation in the Coastal Zone of Quang Nam Province, Vietnam. In: Land Use and Climate Change Interactions in Central Vietnam: LUCCi [Nauditt, A. and L. Ribbe (eds.)]. Springer Singapore, Singapore, pp. 201–222. ISBN: 978-981-10-2624-9.</span></li> <li><span id="fn:r2021">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2022">Magnan, A.K. and V.K.E. Duvat, 2018: Unavoidable solutions for coastal adaptation in Reunion Island (Indian Ocean). Environ. Sci. Policy, 89, 393–400, doi:10.1016/j.envsci.2018.09.002.</span></li> <li><span id="fn:r2023">Onaka, S., H. Hashimoto, S.R. Nashreen Banu Soogun and A. Jheengut, 2015: Chapter 26 – Coastal Erosion and Demonstration Project as Coastal Adaptation Measures in Mauritius. In: Handbook of Coastal Disaster Mitigation for Engineers and Planners. [Esteban, M., H. Takagi and T. Shibayama (eds.)]. Butterworth-Heinemann, Boston, pp. 561–577. ISBN: 978-0-12-801060-0.</span></li> <li><span id="fn:r2024">Martínez, C. et al., 2017: Coastal erosion in central Chile: A new hazard? Ocean Coast. Manage.,156, 141-155. doi:10.1016/j.ocecoaman.2017.07.011.</span></li> <li><span id="fn:r2025">Shumack, S. and P. Hesse, 2017: Assessing the geomorphic disturbance from fires on coastal dunes near Esperance, Western Australia: Implications for dune de-stabilisation. Aeolian Research, 31, 29–49. doi:10.1016/j.aeolia.2017.08.005.</span></li> <li><span id="fn:r2026">Pranzini, E., 2017: Shore protection in Italy: From hard to soft engineering … and back. Ocean Coast. Manage., 156, 43–57. doi:10.1016/j.ocecoaman.2017.04.018.</span></li> <li><span id="fn:r2027">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2028">Perry, J., 2015: Climate change adaptation in the world’s best places: A wicked problem in need of immediate attention. Landscape Urban Plan., 133, 1–11, doi:10.1016/j.landurbplan.2014.08.013.</span></li> <li><span id="fn:r2029">Moosavi, S., 2017: Ecological Coastal Protection: Pathways to Living Shorelines. Procedia Eng., 196, 930–938, doi:10.1016/j.proeng.2017.08.027.</span></li> <li><span id="fn:r2030">Scarano, F.R., 2017: Ecosystem-based adaptation to climate change: concept, scalability and a role for conservation science. Perspect. Ecol. Conserv., 15(2), 65–73, doi:10.1016/j.pecon.2017.05.003.</span></li> <li><span id="fn:r2031">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2032">Beetham, E., P.S. Kench and S. Popinet, 2017: Future Reef Growth Can Mitigate Physical Impacts of Sea level Rise on Atoll Islands. Earth’s Future, 5(10), 1002–1014, doi:10.1002/2017ef000589.</span></li> <li><span id="fn:r2033">Elliff, C.I. and I.R. Silva, 2017: Coral reefs as the first line of defense: Shoreline protection in face of climate change. Mar. Environ. Res., 127, 148–154, doi:10.1016/j.marenvres.2017.03.007.</span></li> <li><span id="fn:r2034">Beck, M.W. et al., 2018: The global flood protection savings provided by coral reefs. Nat. Commun., 9(1), 2186, doi:10.1038/s41467-018-04568-z.</span></li> <li><span id="fn:r2035">Comte, A. and L.H. Pendleton, 2018: Management strategies for coral reefs and people under Global Environ. Change: 25 years of scientific research. J. Environ. Manage., 209, 462–474, doi:10.1016/j.jenvman.2017.12.051.</span></li> <li><span id="fn:r2036">Ondiviela, B. et al., 2014: The role of seagrasses in coastal protection in a changing climate. Coast. Eng., 87(Supplement C), 158–168, doi:10.1016/j.coastaleng.2013.11.005.</span></li> <li><span id="fn:r2037">Miloshis, M. and C.A. Fairfield, 2015: Coastal wetland management: A rating system for potential engineering interventions. Ecol. Eng., 75, 195–198.</span></li> <li><span id="fn:r2038">Schaeffer-Novelli, Y. et al., 2016: Climate changes in mangrove forests and salt marshes. Brazilian J. Oceanogr., 64((spe2)), 37–52.</span></li> <li><span id="fn:r2039">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r2040">Watkiss, P., A. Hunt and M. Savaga, 2014: Early Value-for-Money Adaptation: Delivering VfM Adaptation using Iterative Frameworks and LowRegret Options, Global Climate Adaptation Partnership, UK Department for International Development, London, 53 pp. DOI: [https://dx.doi.org/10.12774/eod_cr.july2014.watkisspetal http://dx.doi.org/10.12774/eod_cr.july2014.watkisspetal]</span></li> <li><span id="fn:r2041">Narayan, S. et al., 2016: The Effectiveness, Costs and Coastal Protection Benefits of Natural and Nature-Based Defences. PLoS One, 11(5), e0154735, doi:10.1371/journal.pone.0154735.</span></li> <li><span id="fn:r2042">Ataur Rahman, M. and S. Rahman, 2015: Natural and traditional defense mechanisms to reduce climate risks in coastal zones of Bangladesh. Weather and Climate Extremes, 7, 84–95, doi:10.1016/j.wace.2014.12.004.</span></li> <li><span id="fn:r2043">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2044">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2045">Sánchez-Arcilla, A. et al., 2016: Managing coastal environments under climate change: Pathways to adaptation. Sci. Total Environ., 572, 1336–1352, doi:10.1016/j.scitotenv.2016.01.124.</span></li> <li><span id="fn:r2046">van der Nat, A., P. Vellinga, R. Leemans and E. van Slobbe, 2016: Ranking coastal flood protection designs from engineered to nature-based. Ecol. Eng., 87, 80–90, doi:10.1016/j.ecoleng.2015.11.007.</span></li> <li><span id="fn:r2047">Kochnower, D., S.M.W. Reddy and R.E. Flick, 2015: Factors influencing local decisions to use habitats to protect coastal communities from hazards. Ocean Coast. Manage., 116, 277–290, doi:10.1016/j.ocecoaman.2015.07.021.</span></li> <li><span id="fn:r2048">MacDonald, M.A. et al., 2017: Benefits of coastal managed realignment for society: Evidence from ecosystem service assessments in two UK regions. Estuar. Coast. Shelf Sci., doi:10.1016/j.ecss.2017.09.007.</span></li> <li><span id="fn:r2049">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2050">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2051">Narayan, S. et al., 2016: The Effectiveness, Costs and Coastal Protection Benefits of Natural and Nature-Based Defences. PLoS One, 11(5), e0154735, doi:10.1371/journal.pone.0154735.</span></li> <li><span id="fn:r2052">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r2053">Ataur Rahman, M. and S. Rahman, 2015: Natural and traditional defense mechanisms to reduce climate risks in coastal zones of Bangladesh. Weather and Climate Extremes, 7, 84–95, doi:10.1016/j.wace.2014.12.004.</span></li> <li><span id="fn:r2054">Abedin, M.A., U. Habiba and R. Shaw, 2014: Community Perception and Adaptation to Safe Drinking Water Scarcity: Salinity, Arsenic, and Drought Risks in Coastal Bangladesh. Int. J. Disast. Risk Sci., 5(2), 110–124, doi:10.1007/s13753-014-0021-6.</span></li> <li><span id="fn:r2055">Betzold, C. and I. Mohamed, 2017: Seawalls as a response to coastal erosion and flooding: a case study from Grande Comore, Comoros (West Indian Ocean). Reg. Environ. Change, 17(4), 1077–1087, doi:10.1007/s10113-016-1044-x.</span></li> <li><span id="fn:r2056">Linkon, S.B., 2018: Autonomy in Building Process to Adapt the Climate Change Impacts: A Study of the Coastal Settlements in Bangladesh. International Journal of Environment and Sustainability [IJES], 6(2), 19-39 ISSN 1927-9566</span></li> <li><span id="fn:r2057">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2058">Moosavi, S., 2017: Ecological Coastal Protection: Pathways to Living Shorelines. Procedia Eng., 196, 930–938, doi:10.1016/j.proeng.2017.08.027.</span></li> <li><span id="fn:r2059">Cartapanis, O., E.D. Galbraith, D. Bianchi and S. L. Jaccard, 2018: Carbon burial in deep sea sediment and implications for oceanic inventories of carbon and alkalinity over the last glacial cycle. Clim. Past, 14(11), 1819–1850, doi:10.5194/cp-14-1819-2018.</span></li> <li><span id="fn:r2060">Nagy, G.J., L. Seijo, J.E. Verocai and M. Bidegain, 2014: Stakeholders’ climate perception and adaptation in coastal Uruguay. International Journal of Climate Change Strategies and Management, 6(1), 63–84, doi:doi:10.1108/IJCCSM-03-2013-0035.</span></li> <li><span id="fn:r2061">Broto, V.C., E. Boyd and J. Ensor, 2015: Participatory urban planning for climate change adaptation in coastal cities: lessons from a pilot experience in Maputo, Mozambique. Curr. Opin. Environ. Sustain., 13, 11–18, doi:10.1016/j.cosust.2014.12.005.</span></li> <li><span id="fn:r2062">Marfai, M.A., A. Sekaranom and P. Ward, 2015: Community responses and adaptation strategies toward flood hazard in Jakarta, Indonesia. Natural Hazards: Journal of the International Society for the Prevention and Mitigation of Natural Hazards, 75, 1127–1144.</span></li> <li><span id="fn:r2063">Kabisch, N., H. Korn, J. Stadler and A. Bonn, 2017: Nature‐based Solutions to Climate Change Adaptation in Urban Areas. Linkages between Science, Policy and Practice. Theory and Practice of Urban Sustainability Transitions, Springer Open, 337 pp.</span></li> <li><span id="fn:r2064">Zikra, M., S. Suntoyo and L. Lukijanto, 2015: Climate Change Impacts on Indonesian Coastal Areas. Procedia Earth Planet. Sci., 14, 57–63.</span></li> <li><span id="fn:r2065">Peng, L., M.G. Stewart and R.E. Melchers, 2017: Corrosion and capacity prediction of marine steel infrastructure under a changing environment. Struct. Infrastruct. E., 13(8), 988–1001.</span></li> <li><span id="fn:r2066">DasGupta, R. and R. Shaw, 2015: An indicator based approach to assess coastal communities’ resilience against climate related disasters in Indian Sundarbans. J. Coast. Conserv., 19(1), 85–101, doi:10.1007/s11852-014-0369-1.</span></li> <li><span id="fn:r2067">Betzold, C. and I. Mohamed, 2017: Seawalls as a response to coastal erosion and flooding: a case study from Grande Comore, Comoros (West Indian Ocean). Reg. Environ. Change, 17(4), 1077–1087, doi:10.1007/s10113-016-1044-x.</span></li> <li><span id="fn:r2068">Hagedoorn, L.C. et al., 2019: Community-based adaptation to climate change in small island developing states: an analysis of the role of social capital. Clim. Dev., 1–12, doi:10.1080/17565529.2018.1562869.</span></li> <li><span id="fn:r2069">Dhar, T.K. and L. Khirfan, 2016: Community-based adaptation through ecological design: lessons from Negril, Jamaica. J. Urban Des., 21(2), 234–255, doi:10.1080/13574809.2015.1133224.</span></li> <li><span id="fn:r2070">Hobday, A.J. et al., 2016a: Planning adaptation to climate change in fast-warming marine regions with seafood-dependent coastal communities. Rev. Fish Biol. Fisher., 26(2), 249–264, doi:10.1007/s11160-016-9419-0.</span></li> <li><span id="fn:r2071">Jurjonas, M. and E. Seekamp, 2018: Rural coastal community resilience: Assessing a framework in eastern North Carolina. Ocean Coast. Manage., 162, 137–150, doi:10.1016/j.ocecoaman.2017.10.010.</span></li> <li><span id="fn:r2072">Ataur Rahman, M. and S. Rahman, 2015: Natural and traditional defense mechanisms to reduce climate risks in coastal zones of Bangladesh. Weather and Climate Extremes, 7, 84–95, doi:10.1016/j.wace.2014.12.004.</span></li> <li><span id="fn:r2073">Petzold, J. and B.M.W. Ratter, 2015: Climate change adaptation under a social capital approach – An analytical framework for small islands. Ocean Coast. Manage., 112, 36–43, doi:10.1016/j.ocecoaman.2015.05.003.</span></li> <li><span id="fn:r2074">Dhar, T.K. and L. Khirfan, 2016: Community-based adaptation through ecological design: lessons from Negril, Jamaica. J. Urban Des., 21(2), 234–255, doi:10.1080/13574809.2015.1133224.</span></li> <li><span id="fn:r2075">Gourlie, D. et al., 2018: Performing “A New Song”: Suggested Considerations for Drafting Effective Coastal Fisheries Legislation Under Climate Change. Mar. Policy, 88, 342–349, doi:10.1016/j.marpol.2017.06.012.</span></li> <li><span id="fn:r2076">Nursey-Bray, M., P. Fidelman and M. Owusu, 2018: Does co-management facilitate adaptive capacity in times of environmental change? Insights from fisheries in Australia. Mar. Policy, 96, 72–80, doi:10.1016/j.marpol.2018.07.016.</span></li> <li><span id="fn:r2077">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r2078">Asch, R.G., W.W.L. Cheung and G. Reygondeau, 2018: Future marine ecosystem drivers, biodiversity, and fisheries maximum catch potential in Pacific Island countries and territories under climate change. Mar. Policy, 88, 285–294, doi:10.1016/j.marpol.2017.08.015.</span></li> <li><span id="fn:r2079">Cheung, W.W.L., M.C. Jones, G. Reygondeau and T.L. Frölicher, 2018b: Opportunities for climate-risk reduction through effective fisheries management. Global Change Biol., 2108, 1–15, doi:doi:10.1111/gcb.14390.</span></li> <li><span id="fn:r2080">Finkbeiner, E.M. et al., 2018: Exploring trade-offs in climate change response in the context of Pacific Island fisheries. Mar. Policy, 88, 359–364, doi:10.1016/j.marpol.2017.09.032.</span></li> <li><span id="fn:r2081">Cvitanovic, C. et al., 2016: Linking adaptation science to action to build food secure Pacific Island communities. Clim. Risk Manage., 11, 53–62, doi:10.1016/j.crm.2016.01.003.</span></li> <li><span id="fn:r2082">Faraco, L.F.D. et al., 2016: Vulnerability Among Fishers in Southern Brazil and its Relation to Marine Protected Areas in a Scenario of Declining Fisheries. Desenvolvimento e Meio Ambiente, 38(1), 51–76, doi:10.5380/dma.v38i0.45850.</span></li> <li><span id="fn:r2083">Harkes, I.H.T. et al., 2015: Shrimp aquaculture as a vehicle for Climate Compatible Development in Sri Lanka. The case of Puttalam Lagoon. Mar. Policy, 61, 273–283, doi:10.1016/j.marpol.2015.08.003.</span></li> <li><span id="fn:r2084">Busch, D.S. et al., 2016: Climate science strategy of the US National Marine Fisheries Service. Mar. Policy, 74, 58–67, doi:10.1016/j.marpol.2016.09.001.</span></li> <li><span id="fn:r2085">Valmonte-Santos, R., M. W. Rosegrant and M.M. Dey, 2016: Fisheries sector under climate change in the coral triangle countries of Pacific Islands: Current status and policy issues. Mar. Policy, 67, 148–155, doi:10.1016/j.marpol.2015.12.022.</span></li> <li><span id="fn:r2086">Ataur Rahman, M. and S. Rahman, 2015: Natural and traditional defense mechanisms to reduce climate risks in coastal zones of Bangladesh. Weather and Climate Extremes, 7, 84–95, doi:10.1016/j.wace.2014.12.004.</span></li> <li><span id="fn:r2087">Linkon, S.B., 2018: Autonomy in Building Process to Adapt the Climate Change Impacts: A Study of the Coastal Settlements in Bangladesh. International Journal of Environment and Sustainability [IJES], 6(2), 19-39 ISSN 1927-9566</span></li> <li><span id="fn:r2088">Marfai, M.A., A. Sekaranom and P. Ward, 2015: Community responses and adaptation strategies toward flood hazard in Jakarta, Indonesia. Natural Hazards: Journal of the International Society for the Prevention and Mitigation of Natural Hazards, 75, 1127–1144.</span></li> <li><span id="fn:r2089">Ataur Rahman, M. and S. Rahman, 2015: Natural and traditional defense mechanisms to reduce climate risks in coastal zones of Bangladesh. Weather and Climate Extremes, 7, 84–95, doi:10.1016/j.wace.2014.12.004.</span></li> <li><span id="fn:r2090">Bennett, N.J., A. Kadfak and P. Dearden, 2016: Community-based scenario planning: a process for vulnerability analysis and adaptation planning to social–ecological change in coastal communities. Environ. Dev. Sustain., 18(6), 1771–1799, doi:10.1007/s10668-015-9707-1.</span></li> <li><span id="fn:r2091">Jamero, M.L., M. Onuki, M. Esteban and N. Tan, 2018: Community-based adaptation in low-lying islands in the Philippines: challenges and lessons learned. Reg. Environ. Change, 18(8), 2249–2260, doi:10.1007/s10113-018-1332-8.</span></li> <li><span id="fn:r2092">Hagedoorn, L.C. et al., 2019: Community-based adaptation to climate change in small island developing states: an analysis of the role of social capital. Clim. Dev., 1–12, doi:10.1080/17565529.2018.1562869.</span></li> <li><span id="fn:r2093">Barbier, E.B., 2015: Climate change impacts on rural poverty in low-elevation coastal zones. Estuar. Coast. Shelf Sci., 165, A1–A13, doi:10.1016/j.ecss.2015.05.035.</span></li> <li><span id="fn:r2094">Petzold, J. and B.M.W. Ratter, 2015: Climate change adaptation under a social capital approach – An analytical framework for small islands. Ocean Coast. Manage., 112, 36–43, doi:10.1016/j.ocecoaman.2015.05.003.</span></li> <li><span id="fn:r2095">Bennett, N.J., A. Kadfak and P. Dearden, 2016: Community-based scenario planning: a process for vulnerability analysis and adaptation planning to social–ecological change in coastal communities. Environ. Dev. Sustain., 18(6), 1771–1799, doi:10.1007/s10668-015-9707-1.</span></li> <li><span id="fn:r2096">Dhar, T.K. and L. Khirfan, 2016: Community-based adaptation through ecological design: lessons from Negril, Jamaica. J. Urban Des., 21(2), 234–255, doi:10.1080/13574809.2015.1133224.</span></li> <li><span id="fn:r2097">Jamero, M.L., M. Onuki, M. Esteban and N. Tan, 2018: Community-based adaptation in low-lying islands in the Philippines: challenges and lessons learned. Reg. Environ. Change, 18(8), 2249–2260, doi:10.1007/s10113-018-1332-8.</span></li> <li><span id="fn:r2098">Dutra, L.X.C. et al., 2015: Organizational drivers that strengthen adaptive capacity in the coastal zone of Australia. Ocean Coast. Manage., 109, 64–76, doi:10.1016/j.landusepol.2015.09.003.</span></li> <li><span id="fn:r2099">Tapsuwan, S. and W. Rongrongmuang, 2015: Climate change perception of the dive tourism industry in Koh Tao island, Thailand. J. Outdoor Recreat. Tour., 11, 58–63, doi:10.1016/j.jort.2015.06.005.</span></li> <li><span id="fn:r2100">Galappaththi, I.M., E.K. Galappaththi and S.S. Kodithuwakku, 2017: Can start-up motives influence social-ecological resilience in community-based entrepreneurship setting? Case of coastal shrimp farmers in Sri Lanka. Mar. Policy, 86, 156–163, doi:10.1016/j.marpol.2017.09.024.</span></li> <li><span id="fn:r2101">Ray, A., L. Hughes, D. M. Konisky and C. Kaylor, 2017: Extreme weather exposure and support for climate change adaptation. Global Environ. Change, 46, 104–113, doi:10.1016/j.gloenvcha.2017.07.002.</span></li> <li><span id="fn:r2102">Cinner, J.E. et al., 2018: Building adaptive capacity to climate change in tropical coastal communities. Nat. Clim. Change, 8(2), 117–123, doi:10.1038/s41558-017-0065-x.</span></li> <li><span id="fn:r2103">Hagedoorn, L.C. et al., 2019: Community-based adaptation to climate change in small island developing states: an analysis of the role of social capital. Clim. Dev., 1–12, doi:10.1080/17565529.2018.1562869.</span></li> <li><span id="fn:r2104">Elrick-Barr, C.E. et al., 2016: How are coastal households responding to climate change? Environ. Sci. Policy, 63, 177–186, doi:10.1016/j.envsci.2016.05.013.</span></li> <li><span id="fn:r2105">Hamilton, L.C. and T.G. Safford, 2015: Environmental Views from the Coast: Public Concern about Local to Global Marine Issues. Society & Natural Resources, 28(1), 57–74, doi:10.1080/08941920.2014.933926.</span></li> <li><span id="fn:r2106">Nanlohy, H., A.N. Bambang, Ambariyanto and S. Hutabarat, 2015: Coastal Communities Knowledge Level on Climate Change as a Consideration in Mangrove Ecosystems Management in the Kotania Bay, West Seram Regency. Procedia Environ. Sci., 23, 157–163, doi:10.1016/j.proenv.2015.01.024.</span></li> <li><span id="fn:r2107">Elrick-Barr, C.E. et al., 2016: How are coastal households responding to climate change? Environ. Sci. Policy, 63, 177–186, doi:10.1016/j.envsci.2016.05.013.</span></li> <li><span id="fn:r2108">Hernández-Delgado, E.A., 2015: The emerging threats of climate change on tropical coastal ecosystem services, public health, local economies and livelihood sustainability of small islands: Cumulative impacts and synergies. Mar. Pollut. Bull., 101(1), 5–28, doi:10.1016/j.marpolbul.2015.09.018.</span></li> <li><span id="fn:r2109">Sheller, M. and Y.M. León, 2016: Uneven socioecologies of Hispaniola: Asymmetric capabilities for climate adaptation in Haiti and the Dominican Republic. Geoforum, 73, 32–46, doi:10.1016/j.geoforum.2015.07.026.</span></li> <li><span id="fn:r2110">Abedin, M.A. and R. Shaw, 2015: The role of university networks in disaster risk reduction: Perspective from coastal Bangladesh. Int. J. Disast. Risk Reduc., 13, 381–389, doi:10.1016/j.ijdrr.2015.08.001.</span></li> <li><span id="fn:r2111">Hobday, A.J. et al., 2015: Reconciling conflicts in pelagic fisheries under climate change. Deep Sea Res. Pt. II, 113, 291–300, doi:10.1016/j.dsr2.2014.10.024.</span></li> <li><span id="fn:r2112">Lirman, D. and S. Schopmeyer, 2016: Ecological solutions to reef degradation: optimizing coral reef restoration in the Caribbean and Western Atlantic. Peerj, 4, e2597, doi:10.7717/peerj.2597.</span></li> <li><span id="fn:r2113">Williams, G.A. et al., 2016: Meeting the climate change challenge: Pressing issues in southern China and SE Asian coastal ecosystems. Reg. Stud. Mar. Sci., 8, 373–381, doi:10.1016/j.rsma.2016.07.002.</span></li> <li><span id="fn:r2114">Wong, P.P., et al. 2014a: Coastal systems and low-lying areas. In: Climate Change 2014: Impacts, Adaptation and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. [Field, C.B., et al. (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, USA, pp. 361-409. ISBN: 978-1-107-05807-1</span></li> <li><span id="fn:r2115">Poumadère, M. et al., 2015: Coastal vulnerabilities under the deliberation of stakeholders: The case of two French sandy beaches. Ocean Coast. Manage., 105, 166–176, doi:10.1016/j.ocecoaman.2014.12.024.</span></li> <li><span id="fn:r2116">Sherren, K., L. Loik and J.A. Debner, 2016: Climate adaptation in ‘new world’ cultural landscapes: The case of Bay of Fundy agricultural dykelands (Nova Scotia, Canada). Land Use Policy, 51, 267–280, doi:10.1016/j.landusepol.2015.11.018.</span></li> <li><span id="fn:r2117">Torabi, E., A. Dedekorkut-Howes and M. Howes, 2018: Adapting or maladapting: Building resilience to climate-related disasters in coastal cities. Cities, 72, 295–309, doi:10.1016/j.cities.2017.09.008.</span></li> <li><span id="fn:r2118">Rulleau, B. and H. Rey-Valette, 2017: Forward planning to maintain the attractiveness of coastal areas: Choosing between seawalls and managed retreat. Environ. Sci. Policy, 72, 12–19, doi:10.1016/j.envsci.2017.01.009.</span></li> <li><span id="fn:r2119">Friedrich, E. and D. Kretzinger, 2012: Vulnerability of wastewater infrastructure of coastal cities to sea level rise: A South African case study. Water SA, 38(5), 755–764.</span></li> <li><span id="fn:r2120">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2121">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2122">Becker, A.H. et al., 2016: A method to estimate climate-critical construction materials applied to seaport protection. Global Environ. Change, 40, 125–136.</span></li> <li><span id="fn:r2123">Colin, M., F. Palhol and A. Leuxe, 2016: Adaptation of transport infrastructures and networks to climate change. Transp. Res. Proc., 14, 86–95.</span></li> <li><span id="fn:r2124">Asadabadi, A. and E. Miller-Hooks, 2017: Assessing strategies for protecting transportation infrastructure from an uncertain climate future. Transport. Res. A-Pol., 105, 27–41.</span></li> <li><span id="fn:r2125">Brown, J.M. et al., 2018a: A coastal vulnerability assessment for planning climate resilient infrastructure. Ocean Coast. Manage., 163, 101–112.</span></li> <li><span id="fn:r2126">Jeong, H., H. Lee, H. Kim and H. Kim, 2014: Algorithm for economic assessment of infrastructure adaptation to climate change. In ISARC Proceedings of the International Symposium on Automation and Robotics in Construction. IAARC Publications, Australia, 31, 1.ISBN: 978-0-64-659711-9</span></li> <li><span id="fn:r2127">Friedrich, E. and D. Kretzinger, 2012: Vulnerability of wastewater infrastructure of coastal cities to sea level rise: A South African case study. Water SA, 38(5), 755–764.</span></li> <li><span id="fn:r2128">Colin, M., F. Palhol and A. Leuxe, 2016: Adaptation of transport infrastructures and networks to climate change. Transp. Res. Proc., 14, 86–95.</span></li> <li><span id="fn:r2129">van der Nat, A., P. Vellinga, R. Leemans and E. van Slobbe, 2016: Ranking coastal flood protection designs from engineered to nature-based. Ecol. Eng., 87, 80–90, doi:10.1016/j.ecoleng.2015.11.007.</span></li> <li><span id="fn:r2130">Kabisch, N., H. Korn, J. Stadler and A. Bonn, 2017: Nature‐based Solutions to Climate Change Adaptation in Urban Areas. Linkages between Science, Policy and Practice. Theory and Practice of Urban Sustainability Transitions, Springer Open, 337 pp.</span></li> <li><span id="fn:r2131">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2132">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2133">van der Nat, A., P. Vellinga, R. Leemans and E. van Slobbe, 2016: Ranking coastal flood protection designs from engineered to nature-based. Ecol. Eng., 87, 80–90, doi:10.1016/j.ecoleng.2015.11.007.</span></li> <li><span id="fn:r2134">Moosavi, S., 2017: Ecological Coastal Protection: Pathways to Living Shorelines. Procedia Eng., 196, 930–938, doi:10.1016/j.proeng.2017.08.027.</span></li> <li><span id="fn:r2135">Moosavi, S., 2017: Ecological Coastal Protection: Pathways to Living Shorelines. Procedia Eng., 196, 930–938, doi:10.1016/j.proeng.2017.08.027.</span></li> <li><span id="fn:r2136">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2137">Martínez, C.I.P., W.H.A. Piña and S.F. Moreno, 2018: Prevention, mitigation and adaptation to climate change from perspectives of urban population in an emerging economy. J. Clean. Prod., 178, 314–324.</span></li> <li><span id="fn:r2138">Woodruff, S.C., 2018: City membership in climate change adaptation networks. Environ. Sci. Policy, 84, 60–68.</span></li> <li><span id="fn:r2139">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2140">van der Nat, A., P. Vellinga, R. Leemans and E. van Slobbe, 2016: Ranking coastal flood protection designs from engineered to nature-based. Ecol. Eng., 87, 80–90, doi:10.1016/j.ecoleng.2015.11.007.</span></li> <li><span id="fn:r2141">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2142">Jeong, H., H. Lee, H. Kim and H. Kim, 2014: Algorithm for economic assessment of infrastructure adaptation to climate change. In ISARC Proceedings of the International Symposium on Automation and Robotics in Construction. IAARC Publications, Australia, 31, 1.ISBN: 978-0-64-659711-9</span></li> <li><span id="fn:r2143">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2144">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2145">Kaja, N. and M. Mellic, 2017: Climate change: Issues of Built Heritage Structures in the coastal region. Journal of Scientific Research, 13, 54–60.</span></li> <li><span id="fn:r2146">Moosavi, S., 2017: Ecological Coastal Protection: Pathways to Living Shorelines. Procedia Eng., 196, 930–938, doi:10.1016/j.proeng.2017.08.027.</span></li> <li><span id="fn:r2147">Martínez, C.I.P., W.H.A. Piña and S.F. Moreno, 2018: Prevention, mitigation and adaptation to climate change from perspectives of urban population in an emerging economy. J. Clean. Prod., 178, 314–324.</span></li> <li><span id="fn:r2148">Mikellidou, C.V., L.M. Shakou, G. Boustras and C. Dimopoulos, 2018: Energy critical infrastructures at risk from climate change: A state of the art review. Saf. Sci., 110, 110–120.</span></li> <li><span id="fn:r2149">Cheung, W.W.L., M.C. Jones, G. Reygondeau and T.L. Frölicher, 2018b: Opportunities for climate-risk reduction through effective fisheries management. Global Change Biol., 2108, 1–15, doi:doi:10.1111/gcb.14390.</span></li> <li><span id="fn:r2150">Islam, M.M., S. Sallu, K. Hubacek and J. Paavola, 2013: Vulnerability of fishery-based livelihoods to the impacts of climate variability and change: insights from coastal Bangladesh. Reg. Environ. Change, 14(1), 281–294, doi:10.1007/s10113-013-0487-6.</span></li> <li><span id="fn:r2151">Heenan, A. et al., 2015: A climate-informed, ecosystem approach to fisheries management. Mar. Policy, 57, 182–192, doi:10.1016/j.marpol.2015.03.018.</span></li> <li><span id="fn:r2152">Faraco, L.F.D. et al., 2016: Vulnerability Among Fishers in Southern Brazil and its Relation to Marine Protected Areas in a Scenario of Declining Fisheries. Desenvolvimento e Meio Ambiente, 38(1), 51–76, doi:10.5380/dma.v38i0.45850.</span></li> <li><span id="fn:r2153">Dasgupta, S. et al., 2017: The Impact of Aquatic Salinization on Fish Habitats and Poor Communities in a Changing Climate: Evidence from Southwest Coastal Bangladesh. Ecol. Econ., 139, 128–139, doi:10.1016/j.ecolecon.2017.04.009.</span></li> <li><span id="fn:r2154">Cheung, W.W.L., M.C. Jones, G. Reygondeau and T.L. Frölicher, 2018b: Opportunities for climate-risk reduction through effective fisheries management. Global Change Biol., 2108, 1–15, doi:doi:10.1111/gcb.14390.</span></li> <li><span id="fn:r2155">Harvey, B.J., K.L. Nash, J.L. Blanchard and D.P. Edwards, 2018: Ecosystem-based management of coral reefs under climate change. Ecol. Evol., 8(12), 6354–6368, doi:10.1002/ece3.4146.</span></li> <li><span id="fn:r2156">Gaines, S.D. et al., 2018: Improved fisheries management could offset many negative effects of climate change. Sci. Adv., 4(8), eaao1378, doi:10.1126/sciadv.aao1378.</span></li> <li><span id="fn:r2157">Hobday, A.J. et al., 2015: Reconciling conflicts in pelagic fisheries under climate change. Deep Sea Res. Pt. II, 113, 291–300, doi:10.1016/j.dsr2.2014.10.024.</span></li> <li><span id="fn:r2158">Dey, M.M. et al., 2016: Analysis of the economic impact of climate change and climate change adaptation strategies for fisheries sector in Pacific coral triangle countries: Model, estimation strategy, and baseline results. Mar. Policy, 67, 156–163, doi:10.1016/j.marpol.2015.12.011.</span></li> <li><span id="fn:r2159">Rosegrant, M.W., M.M. Dey, R. Valmonte-Santos and O.L. Chen, 2016: Economic impacts of climate change and climate change adaptation strategies in Vanuatu and Timor-Leste. Mar. Policy, 67, 179–188, doi:10.1016/j.marpol.2015.12.010.</span></li> <li><span id="fn:r2160">Campbell, J.R., 2017: Climate Change Impacts on Atolls and Island Nations in the South Pacific. Encyclopedia of the Anthropocene: Volume 2. [Dellasala, D.A., Goldstein, M.I. (eds.)] Elsevier, New York. p. 227-232. ISBN: 978-0-12-813576-1.</span></li> <li><span id="fn:r2161">Finkbeiner, E.M. et al., 2018: Exploring trade-offs in climate change response in the context of Pacific Island fisheries. Mar. Policy, 88, 359–364, doi:10.1016/j.marpol.2017.09.032.</span></li> <li><span id="fn:r2162">Ho, C.-H. et al., 2016: Mitigating uncertainty and enhancing resilience to climate change in the fisheries sector in Taiwan: Policy implications for food security. Ocean Coast. Manage., 130, 355–372, doi:10.1016/j.ocecoaman.2016.06.020.</span></li> <li><span id="fn:r2163">Gourlie, D. et al., 2017: Performing “A New Song”: Suggested Considerations for Drafting Effective Coastal Fisheries Legislation Under Climate Change. Mar. Policy, 88; 342-349, doi:10.1016/j.marpol.2017.06.012.</span></li> <li><span id="fn:r2164">Asch, R.G., W.W.L. Cheung and G. Reygondeau, 2018: Future marine ecosystem drivers, biodiversity, and fisheries maximum catch potential in Pacific Island countries and territories under climate change. Mar. Policy, 88, 285–294, doi:10.1016/j.marpol.2017.08.015.</span></li> <li><span id="fn:r2165">Payne, M.R. et al., 2017: Lessons from the First Generation of Marine Ecological Forecast Products. Front. Mar. Sci., 4(289), doi:10.3389/fmars.2017.00289.</span></li> <li><span id="fn:r2166">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r2167">Colburn, L.L. et al., 2016: Indicators of climate change and social vulnerability in fishing dependent communities along the Eastern and Gulf Coasts of the United States. Mar. Policy, 74, 323–333, doi:10.1016/j.marpol.2016.04.030.</span></li> <li><span id="fn:r2168">Cvitanovic, C. et al., 2016: Linking adaptation science to action to build food secure Pacific Island communities. Clim. Risk Manage., 11, 53–62, doi:10.1016/j.crm.2016.01.003.</span></li> <li><span id="fn:r2169">Faraco, L.F.D. et al., 2016: Vulnerability Among Fishers in Southern Brazil and its Relation to Marine Protected Areas in a Scenario of Declining Fisheries. Desenvolvimento e Meio Ambiente, 38(1), 51–76, doi:10.5380/dma.v38i0.45850.</span></li> <li><span id="fn:r2170">Miller, K.A., G.R. Munro, U.R. Sumaila and WW. Cheung, 2013: Governing marine fisheries in a changing climate: A game‐theoretic perspective. Can. J.gr. Econ., 61(2), 309–334.</span></li> <li><span id="fn:r2171">Álvarez-Romero, J.G. et al., 2018: Designing connected marine reserves in the face of global warming. Global Change Biol., 24(2), e671–e691, doi:10.1111/gcb.13989.</span></li> <li><span id="fn:r2172">Faraco, L.F.D. et al., 2016: Vulnerability Among Fishers in Southern Brazil and its Relation to Marine Protected Areas in a Scenario of Declining Fisheries. Desenvolvimento e Meio Ambiente, 38(1), 51–76, doi:10.5380/dma.v38i0.45850.</span></li> <li><span id="fn:r2173">Valmonte-Santos, R., M. W. Rosegrant and M.M. Dey, 2016: Fisheries sector under climate change in the coral triangle countries of Pacific Islands: Current status and policy issues. Mar. Policy, 67, 148–155, doi:10.1016/j.marpol.2015.12.022.</span></li> <li><span id="fn:r2174">Dasgupta, S. et al., 2017: The Impact of Aquatic Salinization on Fish Habitats and Poor Communities in a Changing Climate: Evidence from Southwest Coastal Bangladesh. Ecol. Econ., 139, 128–139, doi:10.1016/j.ecolecon.2017.04.009.</span></li> <li><span id="fn:r2175">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r2176">Asch, R.G., W.W.L. Cheung and G. Reygondeau, 2018: Future marine ecosystem drivers, biodiversity, and fisheries maximum catch potential in Pacific Island countries and territories under climate change. Mar. Policy, 88, 285–294, doi:10.1016/j.marpol.2017.08.015.</span></li> <li><span id="fn:r2177">Cheung, W.W.L., M.C. Jones, G. Reygondeau and T.L. Frölicher, 2018b: Opportunities for climate-risk reduction through effective fisheries management. Global Change Biol., 2108, 1–15, doi:doi:10.1111/gcb.14390.</span></li> <li><span id="fn:r2178">Harvey, B.J., K.L. Nash, J.L. Blanchard and D.P. Edwards, 2018: Ecosystem-based management of coral reefs under climate change. Ecol. Evol., 8(12), 6354–6368, doi:10.1002/ece3.4146.</span></li> <li><span id="fn:r2179">Jones, K.R. et al., 2018: The Location and Protection Status of Earth’s Diminishing Marine Wilderness. Curr. Biol., 28(15), 2506–2512.e3, doi:10.1016/j.cub.2018.06.010.</span></li> <li><span id="fn:r2180">Bennett, N.J., A. Kadfak and P. Dearden, 2016: Community-based scenario planning: a process for vulnerability analysis and adaptation planning to social–ecological change in coastal communities. Environ. Dev. Sustain., 18(6), 1771–1799, doi:10.1007/s10668-015-9707-1.</span></li> <li><span id="fn:r2181">Faraco, L.F.D. et al., 2016: Vulnerability Among Fishers in Southern Brazil and its Relation to Marine Protected Areas in a Scenario of Declining Fisheries. Desenvolvimento e Meio Ambiente, 38(1), 51–76, doi:10.5380/dma.v38i0.45850.</span></li> <li><span id="fn:r2182">Edgar, G.J. et al., 2014: Global conservation outcomes depend on marine protected areas with five key features. Nature, 506, 216, doi:10.1038/nature13022.</span></li> <li><span id="fn:r2183">Sala, E. et al., 2018: Assessing real progress towards effective ocean protection. Mar. Policy, 91, 11–13, doi:10.1016/j.marpol.2018.02.004.</span></li> <li><span id="fn:r2184">Himes-Cornell, A. and S. Kasperski, 2015b: Assessing climate change vulnerability in Alaska’s fishing communities. Fish. Res., 162, 1–11, doi:10.1016/j.fishres.2014.09.010.</span></li> <li><span id="fn:r2185">Busch, D.S. et al., 2016: Climate science strategy of the US National Marine Fisheries Service. Mar. Policy, 74, 58–67, doi:10.1016/j.marpol.2016.09.001.</span></li> <li><span id="fn:r2186">Arroyo Mina, J.S., D.A. Revollo Fernandez, A. Aguilar Ibarra and N. Georgantzis, 2016: Economic behavior of fishers under climate-related uncertainty: Results from field experiments in Mexico and Colombia. Fish. Res., 183, 304–317, doi:10.1016/j.fishres.2016.05.020.</span></li> <li><span id="fn:r2187">Belhabib, D., V.W.Y. Lam and W.W.L. Cheung, 2016: Overview of West African fisheries under climate change: Impacts, vulnerabilities and adaptive responses of the artisanal and industrial sectors. Mar. Policy, 71(Supplement C), 15–28, doi:10.1016/j.marpol.2016.05.009.</span></li> <li><span id="fn:r2188">Kais, S.M. and M.S. Islam, 2017: Impacts of and resilience to climate change at the bottom of the shrimp commodity chain in Bangladesh: A preliminary investigation. Aquaculture, doi:10.1016/j.aquaculture.2017.05.024.</span></li> <li><span id="fn:r2189">Béné, C. et al., 2015: Feeding 9 billion by 2050 – Putting fish back on the menu. Food Secur., 7(2), 261–274, doi:10.1007/s12571-015-0427-z.</span></li> <li><span id="fn:r2190">Zougmoré, R. et al., 2016: Toward climate-smart agriculture in West Africa: a review of climate change impacts, adaptation strategies and policy developments for the livestock, fishery and crop production sectors. Agriculture & Food Security, 5(1), 26, doi:10.1186/s40066-016-0075-3.</span></li> <li><span id="fn:r2191">Dunstan, P.K. et al., 2018: How can climate predictions improve sustainability of coastal fisheries in Pacific Small-Island Developing States? Mar. Policy, 88, 295-302. doi:10.1016/j.marpol.2017.09.033.</span></li> <li><span id="fn:r2192">Gourlie, D. et al., 2018: Performing “A New Song”: Suggested Considerations for Drafting Effective Coastal Fisheries Legislation Under Climate Change. Mar. Policy, 88, 342–349, doi:10.1016/j.marpol.2017.06.012.</span></li> <li><span id="fn:r2193">Mace, 2001: A new role for MSY in single-species and ecosystem approaches to fisheries stock assessment and management. Fish Fish., 2(1), 2–32, doi:10.1046/j.1467-2979.2001.00033.x.</span></li> <li><span id="fn:r2194">Hobday, A.J., C.M. Spillman, J. Paige Eveson and J.R. Hartog, 2016b: Seasonal forecasting for decision support in marine fisheries and aquaculture. Fish. Oceanogr., 25(S1), 45–56, doi:doi:10.1111/fog.12083.</span></li> <li><span id="fn:r2195">Payne, M.R. et al., 2017: Lessons from the First Generation of Marine Ecological Forecast Products. Front. Mar. Sci., 4(289), doi:10.3389/fmars.2017.00289.</span></li> <li><span id="fn:r2196">Heenan, A. et al., 2015: A climate-informed, ecosystem approach to fisheries management. Mar. Policy, 57, 182–192, doi:10.1016/j.marpol.2015.03.018.</span></li> <li><span id="fn:r2197">Dubey, S.K. et al., 2017: Farmers’ perceptions of climate change, impacts on freshwater aquaculture and adaptation strategies in climatic change hotspots: A case of the Indian Sundarban delta. Environ. Dev., 21, 38–51, doi:10.1016/j.envdev.2016.12.002.</span></li> <li><span id="fn:r2198">Shaffiril, H.A.M., A.A. Samah and J. Lawrence, 2017: Adapting towards climate change impacts: Strategies for small-scale fishermen in Malaysia. Mar. Policy, 81, 196–201.</span></li> <li><span id="fn:r2199">Finkbeiner, E.M. et al., 2018: Exploring trade-offs in climate change response in the context of Pacific Island fisheries. Mar. Policy, 88, 359–364, doi:10.1016/j.marpol.2017.09.032.</span></li> <li><span id="fn:r2200">Ahmed, N. and J.S. Diana, 2015b: Threatening “white gold”: Impacts of climate change on shrimp farming in coastal Bangladesh. Ocean Coast. Manage., 114, 42–52, doi:10.1016/j.ocecoaman.2015.06.008.</span></li> <li><span id="fn:r2201">Ahmed, N. and J.S. Diana, 2015a: Coastal to inland: Expansion of prawn farming for adaptation to climate change in Bangladesh. Aquacult. Rep., 2, 67–76, doi:10.1016/j.aqrep.2015.08.001.</span></li> <li><span id="fn:r2202">Bunting, S.W., N. Kundu and N. Ahmed, 2017: Evaluating the contribution of diversified shrimp-rice agroecosystems in Bangladesh and West Bengal, India to social-ecological resilience. Ocean Coast. Manage., 148, 63–74, doi:10.1016/j.ocecoaman.2017.07.010.</span></li> <li><span id="fn:r2203">Harkes, I.H.T. et al., 2015: Shrimp aquaculture as a vehicle for Climate Compatible Development in Sri Lanka. The case of Puttalam Lagoon. Mar. Policy, 61, 273–283, doi:10.1016/j.marpol.2015.08.003.</span></li> <li><span id="fn:r2204">Bunting, S.W., N. Kundu and N. Ahmed, 2017: Evaluating the contribution of diversified shrimp-rice agroecosystems in Bangladesh and West Bengal, India to social-ecological resilience. Ocean Coast. Manage., 148, 63–74, doi:10.1016/j.ocecoaman.2017.07.010.</span></li> <li><span id="fn:r2205">Rodríguez, F. et al., 2017: Canary Islands (NE Atlantic) as a biodiversity ‘hotspot’of Gambierdiscus: Implications for future trends of ciguatera in the area. Harmful Algae, 67, 131–143.</span></li> <li><span id="fn:r2206">Galappaththi, I.M., E.K. Galappaththi and S.S. Kodithuwakku, 2017: Can start-up motives influence social-ecological resilience in community-based entrepreneurship setting? Case of coastal shrimp farmers in Sri Lanka. Mar. Policy, 86, 156–163, doi:10.1016/j.marpol.2017.09.024.</span></li> <li><span id="fn:r2207">Harkes, I.H.T. et al., 2015: Shrimp aquaculture as a vehicle for Climate Compatible Development in Sri Lanka. The case of Puttalam Lagoon. Mar. Policy, 61, 273–283, doi:10.1016/j.marpol.2015.08.003.</span></li> <li><span id="fn:r2208">Barton, A. et al., 2015: Impacts of coastal acidification on the Pacific Northwest shellfish industry and adaptation strategies implemented in response. Oceanography, 28(2), 146–159.</span></li> <li><span id="fn:r2209">Cooley, S.R., C.R. Ono, S. Melcer and J. Roberson, 2016: Community-Level Actions that Can Address Ocean Acidification. . Front. Mar. Sci.,, 2(128), 1–12.</span></li> <li><span id="fn:r2210">Jiao, N. et al., 2014b: Mechanisms of microbial carbon sequestration in the ocean – future research directions. Biogeosciences, 11(19), 5285–5306, doi:10.5194/bg-11-5285-2014.</span></li> <li><span id="fn:r2211">Zhang, D. et al., 2016: Reviews of power supply and environmental energy conversions for artificial upwelling. Renew. Sustain. Energy Rev., 56, 659–668, doi:10.1016/j.rser.2015.11.041.</span></li> <li><span id="fn:r2212">Pan, Y. and D. Schimel, 2016: Synergy of a warm spring and dry summer. Nature, 534, 483, doi:10.1038/nature18450.</span></li> <li><span id="fn:r2213">Jiao, N. et al., 2018a: Unveiling the enigma of refractory carbon in the ocean. Natl. Sci. Rev., 5(4), 459-463. , doi:10.1093/nsr/nwy020.</span></li> <li><span id="fn:r2214">Jiao, N., H. Wang, G. Xu and S. Aricò, 2018b: Blue Carbon on the Rise:Challenges and Opportunities. Natl. Sci. Rev., 5(4), 464-468 doi:10.1093/nsr/nwy030.</span></li> <li><span id="fn:r2215">Daneri, G. et al., 2012: Wind forcing and short-term variability of phytoplankton and heterotrophic bacterioplankton in the coastal zone of the Concepción upwelling system (Central Chile). Progr. Oceanogr., 92–95(Supplement C), 92–96.</span></li> <li><span id="fn:r2216">Rangel-Buitrago, N.G., G. Anfuso and A.T. Williams, 2015: Coastal erosion along the Caribbean coast of Colombia: Magnitudes, causes and management. Ocean Coast. Manage., 114, 129–144, doi:10.1016/j.ocecoaman.2015.06.024.</span></li> <li><span id="fn:r2217">Biggs, D., C.C. Hicks, J.E. Cinner and C.M. Hall, 2015: Marine tourism in the face of global change: The resilience of enterprises to crises in Thailand and Australia. Ocean Coast. Manage., 105, 65–74, doi:10.1016/j.ocecoaman.2014.12.019.</span></li> <li><span id="fn:r2218">Papageorgiou, M., 2016: Coastal and marine tourism: A challenging factor in Marine Spatial Planning. Ocean Coast. Manage., 129, 44–48, doi:10.1016/j.ocecoaman.2016.05.006.</span></li> <li><span id="fn:r2219">Michailidou, A.V., C. Vlachokostas and Ν. Moussiopoulos, 2016b: Interactions between climate change and the tourism sector: Multiple-criteria decision analysis to assess mitigation and adaptation options in tourism areas. Tourism Manage., 55(Supplement C), 1–12.</span></li> <li><span id="fn:r2220">Tapsuwan, S. and W. Rongrongmuang, 2015: Climate change perception of the dive tourism industry in Koh Tao island, Thailand. J. Outdoor Recreat. Tour., 11, 58–63, doi:10.1016/j.jort.2015.06.005.</span></li> <li><span id="fn:r2221">Tapsuwan, S. and W. Rongrongmuang, 2015: Climate change perception of the dive tourism industry in Koh Tao island, Thailand. J. Outdoor Recreat. Tour., 11, 58–63, doi:10.1016/j.jort.2015.06.005.</span></li> <li><span id="fn:r2222">Bujosa, A., A. Riera and C.M. Torres, 2015: Valuing tourism demand attributes to guide climate change adaptation measures efficiently: The case of the Spanish domestic travel market. Tourism Manage., 47, 233–239, doi:10.1016/j.tourman.2014.09.023.</span></li> <li><span id="fn:r2223">Aylett, A., 2015: Institutionalizing the urban governance of climate change adaptation: Results of an international survey. Urban Clim., 14, 4–16, doi:10.1016/j.uclim.2015.06.005.</span></li> <li><span id="fn:r2224">Buurman, J. and V. Babovic, 2016: Adaptation Pathways and Real Options Analysis: An approach to deep uncertainty in climate change adaptation policies. Policy Soc., 35(2), 137–150, doi:10.1016/j.polsoc.2016.05.002.</span></li> <li><span id="fn:r2225">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r2226">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r2227">Gallo, N.D., D.G. Victor and L.A. Levin, 2017: Ocean commitments under the Paris Agreement. Nat. Clim. Change, 7(11), 833-838, doi:10.1038/NCLIMATE3422.</span></li> <li><span id="fn:r2228">Paterson, S.K. et al., 2017: Size does matter: City scale and the asymmetries of climate change adaptation in three coastal towns. Geoforum, 81, 109–119, doi:10.1016/j.geoforum.2017.02.014.</span></li> <li><span id="fn:r2229">Nunn, P.D., W. Aalbersberg, S. Lata and M. Gwilliam, 2014: Beyond the core: community governance for climate-change adaptation in peripheral parts of Pacific Island Countries. Reg. Environ. Change, 14(1), 221–235, doi:10.1007/s10113-013-0486-7.</span></li> <li><span id="fn:r2230">Gormley, K.S.G. et al., 2015: Adaptive management, international co-operation and planning for marine conservation hotspots in a changing climate. Mar. Policy, 53, 54–66, doi:10.1016/j.marpol.2014.11.017.</span></li> <li><span id="fn:r2231">Porter, J.J., D. Demeritt and S. Dessai, 2015: The right stuff? informing adaptation to climate change in British Local Government. Global Environ. Change, 35, 411–422, doi:10.1016/j.gloenvcha.2015.10.004.</span></li> <li><span id="fn:r2232">Gallo, N.D., D.G. Victor and L.A. Levin, 2017: Ocean commitments under the Paris Agreement. Nat. Clim. Change, 7(11), 833-838, doi:10.1038/NCLIMATE3422.</span></li> <li><span id="fn:r2233">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r2234">Sano, M. et al., 2015: Coastal vulnerability and progress in climate change adaptation: An Australian case study. Reg. Stud. Mar. Sci., 2, 113–123, doi:10.1016/j.rsma.2015.08.015.</span></li> <li><span id="fn:r2235">Elsharouny, M.R.M.M., 2016: Planning Coastal Areas and Waterfronts for Adaptation to Climate Change in Developing Countries. Procedia Environ. Sci., 34, 348–359, doi:10.1016/j.proenv.2016.04.031.</span></li> <li><span id="fn:r2236">Abelshausen, B., T. Vanwing and W. Jacquet, 2015: Participatory integrated coastal zone management in Vietnam: Theory versus practice case study: Thua Thien Hue province. Journal of Marine and Island Cultures, 4(1), 42–53, doi:10.1016/j.imic.2015.06.004.</span></li> <li><span id="fn:r2237">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r2238">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r2239">Hopkins, C.R., D.M. Bailey and T. Potts, 2016: Perceptions of practitioners: Managing marine protected areas for climate change resilience. Ocean Coast. Manage., 128, 18–28, doi:10.1016/j.ocecoaman.2016.04.014.</span></li> <li><span id="fn:r2240">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r2241">Gormley, K.S.G. et al., 2015: Adaptive management, international co-operation and planning for marine conservation hotspots in a changing climate. Mar. Policy, 53, 54–66, doi:10.1016/j.marpol.2014.11.017.</span></li> <li><span id="fn:r2242">Jones, K.R. et al., 2018: The Location and Protection Status of Earth’s Diminishing Marine Wilderness. Curr. Biol., 28(15), 2506–2512.e3, doi:10.1016/j.cub.2018.06.010.</span></li> <li><span id="fn:r2243">Serrao-Neumann, S. et al., 2013: Improving cross-sectoral climate change adaptation for coastal settlements: insights from South East Queensland, Australia. Reg. Environ. Change, 14(2), 489–500, doi:10.1007/s10113-013-0442-6.</span></li> <li><span id="fn:r2244">Gerkensmeier, B. and B.M.W. Ratter, 2018: Governing coastal risks as a social process—Facilitating integrative risk management by enhanced multi-stakeholder collaboration. Environ. Sci. Policy, 80, 144–151, doi:10.1016/j.envsci.2017.11.011.</span></li> <li><span id="fn:r2245">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r2246">Abelshausen, B., T. Vanwing and W. Jacquet, 2015: Participatory integrated coastal zone management in Vietnam: Theory versus practice case study: Thua Thien Hue province. Journal of Marine and Island Cultures, 4(1), 42–53, doi:10.1016/j.imic.2015.06.004.</span></li> <li><span id="fn:r2247">Clark, A., 2017: Small unmanned aerial systems comparative analysis for the application to coastal erosion monitoring. Geo. Res. J., 13, 175–185, doi:10.1016/j.grj.2017.05.001.</span></li> <li><span id="fn:r2248">Mayerle, R. et al., 2016: Development of a coastal information system for the management of Jeddah coastal waters in Saudi Arabia. Comput. Geosci-UK, 89, 71–78, doi:10.1016/j.cageo.2015.12.006.</span></li> <li><span id="fn:r2249">Newell, R. and R. Canessa, 2017: Picturing a place by the sea: Geovisualizations as place-based tools for collaborative coastal management. Ocean Coast. Manage., 141, 29–42, doi:10.1016/j.ocecoaman.2017.03.002.</span></li> <li><span id="fn:r2250">Conde, D. et al., 2015: Solutions for Sustainable Coastal Lagoon Management. In: Coastal Zones – Solutions for the 21st Century. [Baztan, J., Chouinard, O., Jorgensen, B., Tett, P., Vanderlinden, J-P., Vasseur, L. (eds)]. Elsevier, New York. pp. 217–250. ISBN: 978-0-12-802748-6</span></li> <li><span id="fn:r2251">Sheaves, M. et al., 2016: Principles for operationalizing climate change adaptation strategies to support the resilience of estuarine and coastal ecosystems: An Australian perspective. Mar. Policy, 68, 229–240, doi:10.1016/j.marpol.2016.03.014.</span></li> <li><span id="fn:r2252">Thorne, K.M. et al., 2017: Are coastal managers ready for climate change? A case study from estuaries along the Pacific coast of the United States. Ocean Coast. Manage., 143, 38–50, doi:10.1016/j.ocecoaman.2017.02.010.</span></li> <li><span id="fn:r2253">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r2254">Gormley, K.S.G. et al., 2015: Adaptive management, international co-operation and planning for marine conservation hotspots in a changing climate. Mar. Policy, 53, 54–66, doi:10.1016/j.marpol.2014.11.017.</span></li> <li><span id="fn:r2255">Gerkensmeier, B. and B.M.W. Ratter, 2018: Governing coastal risks as a social process—Facilitating integrative risk management by enhanced multi-stakeholder collaboration. Environ. Sci. Policy, 80, 144–151, doi:10.1016/j.envsci.2017.11.011.</span></li> <li><span id="fn:r2256">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r2257">Johnson, D., M. Adelaide Ferreira and E. Kenchington, 2018: Climate change is likely to severely limit the effectiveness of deep sea ABMTs in the North Atlantic. Mar. Policy, 87, 111–122, doi:10.1016/j.marpol.2017.09.034.</span></li> <li><span id="fn:r2258">Aylett, A., 2015: Institutionalizing the urban governance of climate change adaptation: Results of an international survey. Urban Clim., 14, 4–16, doi:10.1016/j.uclim.2015.06.005.</span></li> <li><span id="fn:r2259">Serrao-Neumann, S. et al., 2013: Improving cross-sectoral climate change adaptation for coastal settlements: insights from South East Queensland, Australia. Reg. Environ. Change, 14(2), 489–500, doi:10.1007/s10113-013-0442-6.</span></li> <li><span id="fn:r2260">Rosendo, S., L. Celliers and M. Mechisso, 2018: Doing more with the same: A reality-check on the ability of local government to implement Integrated Coastal Management for climate change adaptation. Mar. Policy, 87, 29–39, doi:10.1016/j.marpol.2017.10.001.</span></li> <li><span id="fn:r2261">Kuhfuss, L. et al., 2016: Evaluating the impacts of sea level rise on coastal wetlands in Languedoc-Roussillon, France. Environ. Sci. Policy, 59, 26–34, doi:10.1016/j.envsci.2016.02.002.</span></li> <li><span id="fn:r2262">Cheung, W.W.L., R.D. Brodeur, T.A. Okey and D. Pauly, 2015: Projecting future changes in distributions of pelagic fish species of Northeast Pacific shelf seas. Progr. Oceanogr., 130, 19–31, doi:10.1016/j.pocean.2014.09.003.</span></li> <li><span id="fn:r2263">Cushing, D. A., D. D. Roby and D. B. Irons, 2018: Patterns of distribution, abundance, and change over time in a subarctic marine bird community. Deep Sea Res. Pt. II, 147, 148–163, doi:10.1016/j.dsr2.2017.07.012.</span></li> <li><span id="fn:r2264">Islam, M.M., S. Sallu, K. Hubacek and J. Paavola, 2013: Vulnerability of fishery-based livelihoods to the impacts of climate variability and change: insights from coastal Bangladesh. Reg. Environ. Change, 14(1), 281–294, doi:10.1007/s10113-013-0487-6.</span></li> <li><span id="fn:r2265">Himes-Cornell, A. and S. Kasperski, 2015b: Assessing climate change vulnerability in Alaska’s fishing communities. Fish. Res., 162, 1–11, doi:10.1016/j.fishres.2014.09.010.</span></li> <li><span id="fn:r2266">Peirson, W. et al., 2015: Opportunistic management of estuaries under climate change: A new adaptive decision-making framework and its practical application. J. Environ. Manage., 163, 214–223, doi:10.1016/j.jenvman.2015.08.021.</span></li> <li><span id="fn:r2267">Kaplan-Hallam, M., N.J. Bennett and T. Satterfield, 2017: Catching sea cucumber fever in coastal communities: Conceptualizing the impacts of shocks versus trends on social-ecological systems. Global Environ. Change, 45, 89–98, doi:10.1016/j.gloenvcha.2017.05.003.</span></li> <li><span id="fn:r2268">McNeeley, S.M. et al., 2017: Expanding vulnerability assessment for public lands: The social complement to ecological approaches. Clim. Risk Manage., 16, 106–119, doi:10.1016/j.crm.2017.01.005.</span></li> <li><span id="fn:r2269">Ramm, T.D., C.J. White, A.H.C. Chan and C.S. Watson, 2017: A review of methodologies applied in Australian practice to evaluate long-term coastal adaptation options. Clim. Risk Manage., 17, 35–51, doi:10.1016/j.crm.2017.06.005.</span></li> <li><span id="fn:r2270">Mavromatidi, A., E. Briche and C. Claeys, 2018: Mapping and analyzing socioenvironmental vulnerability to coastal hazards induced by climate change: An application to coastal Mediterranean cities in France. Cities, 72, Part A, 189–200, doi:10.1016/j.cities.2017.08.007.</span></li> <li><span id="fn:r2271">Payne, M.R. et al., 2017: Lessons from the First Generation of Marine Ecological Forecast Products. Front. Mar. Sci., 4(289), doi:10.3389/fmars.2017.00289.</span></li> <li><span id="fn:r2272">Čerkasova, N. et al., 2016: Curonian Lagoon drainage basin modelling and assessment of climate change impact. Oceanologia, 58(2), 90–102, doi:10.1016/j.oceano.2016.01.003.</span></li> <li><span id="fn:r2273">Chapman, A. and S. Darby, 2016: Evaluating sustainable adaptation strategies for vulnerable mega-deltas using system dynamics modelling: Rice agriculture in the Mekong Delta’s An Giang Province, Vietnam. Sci. Total Environ., 559, 326–338, doi:10.1016/j.scitotenv.2016.02.162.</span></li> <li><span id="fn:r2274">Jiang, J. et al., 2016: Defining the next generation modeling of coastal ecotone dynamics in response to global change. Ecol. Model., 326, 168–176, doi:10.1016/j.ecolmodel.2015.04.013.</span></li> <li><span id="fn:r2275">Justic, D. et al., 2016: Chapter 11 – Coastal Ecosystem Modeling in the Context of Climate Change: An Overview With Case Studies. In: Developments in Environmental Modelling, Volume 28 [Sven Erik, J. (ed.)]. Elsevier, Netherlands, pp. 227–260. ISSN: 0167-8892.</span></li> <li><span id="fn:r2276">Joyce, J. et al., 2017: Developing a multi-scale modeling system for resilience assessment of green-grey drainage infrastructures under climate change and sea level rise impact. Environ. Modell. Softw., 90, 1–26, doi:10.1016/j.envsoft.2016.11.026.</span></li> <li><span id="fn:r2277">Mitchell, S., I. Boateng and F. Couceiro, 2017: Influence of flushing and other characteristics of coastal lagoons using data from Ghana. Ocean Coast. Manage., 143, 26–37, doi:10.1016/j.ocecoaman.2016.10.002.</span></li> <li><span id="fn:r2278">Bujosa, A., A. Riera and C.M. Torres, 2015: Valuing tourism demand attributes to guide climate change adaptation measures efficiently: The case of the Spanish domestic travel market. Tourism Manage., 47, 233–239, doi:10.1016/j.tourman.2014.09.023.</span></li> <li><span id="fn:r2279">Jones, M.C. and W.W.L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ICES J. Mar. Sci., 72(3), 741–752, doi:10.1093/icesjms/fsu172.</span></li> <li><span id="fn:r2280">MacDonald, M.A. et al., 2017: Benefits of coastal managed realignment for society: Evidence from ecosystem service assessments in two UK regions. Estuar. Coast. Shelf Sci., doi:10.1016/j.ecss.2017.09.007.</span></li> <li><span id="fn:r2281">Micallef, S., A. Micallef and C. Galdies, 2018: Application of the Coastal Hazard Wheel to assess erosion on the Maltese coast. Ocean Coast. Manage., 156, 209–222, doi:10.1016/j.ocecoaman.2017.06.005.</span></li> <li><span id="fn:r2282">Byrne, J.A., A.Y. Lo and Y. Jianjun, 2015: Residents’ understanding of the role of green infrastructure for climate change adaptation in Hangzhou, China. Landscape Urban Plan., 138, 132–143, doi:10.1016/j.landurbplan.2015.02.013.</span></li> <li><span id="fn:r2283">Buurman, J. and V. Babovic, 2016: Adaptation Pathways and Real Options Analysis: An approach to deep uncertainty in climate change adaptation policies. Policy Soc., 35(2), 137–150, doi:10.1016/j.polsoc.2016.05.002.</span></li> <li><span id="fn:r2284">Dittrich, R., A. Wreford and D. Moran, 2016: A survey of decision-making approaches for climate change adaptation: Are robust methods the way forward? Ecol. Econ., 122, 79–89, doi:10.1016/j.ecolecon.2015.12.006.</span></li> <li><span id="fn:r2285">Michailidou, A.V., C. Vlachokostas and N. Moussiopoulos, 2016a: Interactions between climate change and the tourism sector: Multiple-criteria decision analysis to assess mitigation and adaptation options in tourism areas. Tourism Manage., 55, 1–12, doi:10.1016/j.tourman.2016.01.010.</span></li> <li><span id="fn:r2286">Osorio-Cano, J.D., A.F. Osorio and D.S. Peláez-Zapata, 2017: Ecosystem management tools to study natural habitats as wave damping structures and coastal protection mechanisms. Ecol. Eng., 130, 282–295, doi:10.1016/j.ecoleng.2017.07.015.</span></li> <li><span id="fn:r2287">Cumiskey, L. et al., 2018: A framework to include the (inter)dependencies of Disaster Risk Reduction measures in coastal risk assessment. Coast. Eng., 134, 81–92, doi:10.1016/j.coastaleng.2017.08.009.</span></li> <li><span id="fn:r2288">Carapuço, M.M. et al., 2016: Coastal geoindicators: Towards the establishment of a common framework for sandy coastal environments. Earth-Sci. Rev., 154, 183–190, doi:10.1016/j.earscirev.2016.01.002.</span></li> <li><span id="fn:r2289">Nguyen, T.T.X., J. Bonetti, K. Rogers and C.D. Woodroffe, 2016: Indicator-based assessment of climate-change impacts on coasts: A review of concepts, methodological approaches and vulnerability indices. Ocean Coast. Manage., 123, 18–43, doi:10.1016/j.ocecoaman.2015.11.022.</span></li> <li><span id="fn:r2290">Huxham, M. et al., 2015: Applying Climate Compatible Development and economic valuation to coastal management: A case study of Kenya’s mangrove forests. J. Environ. Manage., 157, 168–181, doi:10.1016/j.jenvman.2015.04.018.</span></li> <li><span id="fn:r2291">Endo, H., K. Suehiro, X. Gao and Y. Agatsuma, 2017: Interactive effects of elevated summer temperature, nutrient availability, and irradiance on growth and chemical compositions of juvenile kelp, Eisenia bicyclis. Phycol. Res., 65(2), 118–126, doi:10.1111/pre.12170.</span></li> <li><span id="fn:r2292">Thorne, K.M. et al., 2017: Are coastal managers ready for climate change? A case study from estuaries along the Pacific coast of the United States. Ocean Coast. Manage., 143, 38–50, doi:10.1016/j.ocecoaman.2017.02.010.</span></li> <li><span id="fn:r2293">Dutra, L.X.C. et al., 2015: Organizational drivers that strengthen adaptive capacity in the coastal zone of Australia. Ocean Coast. Manage., 109, 64–76, doi:10.1016/j.landusepol.2015.09.003.</span></li> <li><span id="fn:r2294">Cvitanovic, C. et al., 2016: Linking adaptation science to action to build food secure Pacific Island communities. Clim. Risk Manage., 11, 53–62, doi:10.1016/j.crm.2016.01.003.</span></li> <li><span id="fn:r2295">Archer, D. et al., 2014: Moving towards inclusive urban adaptation: approaches to integrating community-based adaptation to climate change at city and national scale. Clim. Dev., 6(4), 345–356, doi:10.1080/17565529.2014.918868.</span></li> <li><span id="fn:r2296">Abedin, M.A. and R. Shaw, 2015: The role of university networks in disaster risk reduction: Perspective from coastal Bangladesh. Int. J. Disast. Risk Reduc., 13, 381–389, doi:10.1016/j.ijdrr.2015.08.001.</span></li> <li><span id="fn:r2297">Gormley, K.S.G. et al., 2015: Adaptive management, international co-operation and planning for marine conservation hotspots in a changing climate. Mar. Policy, 53, 54–66, doi:10.1016/j.marpol.2014.11.017.</span></li> <li><span id="fn:r2298">Williams, G.A. et al., 2016: Meeting the climate change challenge: Pressing issues in southern China and SE Asian coastal ecosystems. Reg. Stud. Mar. Sci., 8, 373–381, doi:10.1016/j.rsma.2016.07.002.</span></li> <li><span id="fn:r2299">Hobday, A.J. et al., 2015: Reconciling conflicts in pelagic fisheries under climate change. Deep Sea Res. Pt. II, 113, 291–300, doi:10.1016/j.dsr2.2014.10.024.</span></li> <li><span id="fn:r2300">Dalyander, P.S. et al., 2016: Use of structured decision-making to explicitly incorporate environmental process understanding in management of coastal restoration projects: Case study on barrier islands of the northern Gulf of Mexico. J. Environ. Manage., 183(3), 497–509, doi:10.1016/j.jenvman.2016.08.078.</span></li> <li><span id="fn:r2301">McNeeley, S.M. et al., 2017: Expanding vulnerability assessment for public lands: The social complement to ecological approaches. Clim. Risk Manage., 16, 106–119, doi:10.1016/j.crm.2017.01.005.</span></li> <li><span id="fn:r2302">Osorio-Cano, J.D., A.F. Osorio and D.S. Peláez-Zapata, 2017: Ecosystem management tools to study natural habitats as wave damping structures and coastal protection mechanisms. Ecol. Eng., 130, 282–295, doi:10.1016/j.ecoleng.2017.07.015.</span></li> <li><span id="fn:r2303">Merkens, J.-L., L. Reimann, J. Hinkel and A.T. Vafeidis, 2016: Gridded population projections for the coastal zone under the Shared Socioeconomic Pathways. Global Planet. Change, 145, 57–66, doi:10.1016/j.gloplacha.2016.08.009.</span></li> <li><span id="fn:r2304">Rumson, A.G., S.H. Hallett and T.R. Brewer, 2017: Coastal risk adaptation: the potential role of accessible geospatial Big Data. Mar. Policy, 83, 100–110, doi:10.1016/j.marpol.2017.05.032.</span></li> <li><span id="fn:r2305">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r2306">Araos, M. et al., 2016: Climate change adaptation planning in large cities: A systematic global assessment. Environ. Sci. Policy, 66, 375–382, doi:10.1016/j.envsci.2016.06.009.</span></li> <li><span id="fn:r2307">Finkbeiner, E.M. et al., 2018: Exploring trade-offs in climate change response in the context of Pacific Island fisheries. Mar. Policy, 88, 359–364, doi:10.1016/j.marpol.2017.09.032.</span></li> <li><span id="fn:r2308">Elias, P. and A. Omojola, 2015: Case study: The challenges of climate change for Lagos, Nigeria. Curr. Opin. Environ. Sustain., 13, 74–78, doi:10.1016/j.cosust.2015.02.008.</span></li> <li><span id="fn:r2309">Porter, J.J., D. Demeritt and S. Dessai, 2015: The right stuff? informing adaptation to climate change in British Local Government. Global Environ. Change, 35, 411–422, doi:10.1016/j.gloenvcha.2015.10.004.</span></li> <li><span id="fn:r2310">Thorne, K.M. et al., 2017: Are coastal managers ready for climate change? A case study from estuaries along the Pacific coast of the United States. Ocean Coast. Manage., 143, 38–50, doi:10.1016/j.ocecoaman.2017.02.010.</span></li> <li><span id="fn:r2311">Dutra, L.X.C. et al., 2015: Organizational drivers that strengthen adaptive capacity in the coastal zone of Australia. Ocean Coast. Manage., 109, 64–76, doi:10.1016/j.landusepol.2015.09.003.</span></li> <li><span id="fn:r2312">Jiao, N.-Z. et al., 2015: Climate change and anthropogenic impacts on marine ecosystems and countermeasures in China. Advances in Climate Change Research, 6(2), 118–125, doi:10.1016/j.accre.2015.09.010.</span></li> <li><span id="fn:r2313">Buurman, J. and V. Babovic, 2016: Adaptation Pathways and Real Options Analysis: An approach to deep uncertainty in climate change adaptation policies. Policy Soc., 35(2), 137–150, doi:10.1016/j.polsoc.2016.05.002.</span></li> <li><span id="fn:r2314">Dittrich, R., A. Wreford and D. Moran, 2016: A survey of decision-making approaches for climate change adaptation: Are robust methods the way forward? Ecol. Econ., 122, 79–89, doi:10.1016/j.ecolecon.2015.12.006.</span></li> <li><span id="fn:r2315">Barragán, J.M. and M. de Andrés, 2015: Analysis and trends of the world’s coastal cities and agglomerations. Ocean Coast. Manage., 114, 11–20, doi:10.1016/j.ocecoaman.2015.06.004.</span></li> <li><span id="fn:r2316">Bell, J.D. et al., 2018b: Adaptations to maintain the contributions of small-scale fisheries to food security in the Pacific Islands. Mar. Policy, 88, 303–314, doi:10.1016/j.marpol.2017.05.019.</span></li> <li><span id="fn:r2317">Sheaves, M. et al., 2016: Principles for operationalizing climate change adaptation strategies to support the resilience of estuarine and coastal ecosystems: An Australian perspective. Mar. Policy, 68, 229–240, doi:10.1016/j.marpol.2016.03.014.</span></li> <li><span id="fn:r2318">Wise, R.M. et al., 2016: How climate compatible are livelihood adaptation strategies and development programs in rural Indonesia? Clim. Risk Manage., 12, 100–114, doi:10.1016/j.crm.2015.11.001.</span></li> <li><span id="fn:r2319">Kuruppu, N. and R. Willie, 2015: Barriers to reducing climate enhanced disaster risks in Least Developed Country-Small Islands through anticipatory adaptation. Weather and Climate Extremes, 7, 72–83, doi:10.1016/j.wace.2014.06.001.</span></li> <li><span id="fn:r2320">Torresan, S. et al., 2016: DESYCO: A decision support system for the regional risk assessment of climate change impacts in coastal zones. Ocean Coast. Manage., 120, 49–63, doi:10.1016/j.ocecoaman.2015.11.003.</span></li> <li><span id="fn:r2321">Sánchez-Arcilla, A. et al., 2016: Managing coastal environments under climate change: Pathways to adaptation. Sci. Total Environ., 572, 1336–1352, doi:10.1016/j.scitotenv.2016.01.124.</span></li> <li><span id="fn:r2322">Pentz, B. and N. Klenk, 2017: The ‘responsiveness gap’ in RFMOs: The critical role of decision-making policies in the fisheries management response to climate change. Ocean Coast. Manage., 145, 44–51, doi:10.1016/j.ocecoaman.2017.05.007.</span></li> <li><span id="fn:r2323">Zandvoort, M. et al., 2017: Adaptation pathways in planning for uncertain climate change: Applications in Portugal, the Czech Republic and the Netherlands. Environ. Sci. Policy, 78, 18–26, doi:10.1016/j.envsci.2017.08.017.</span></li> <li><span id="fn:r2324">Dutra, L.X.C. et al., 2015: Organizational drivers that strengthen adaptive capacity in the coastal zone of Australia. Ocean Coast. Manage., 109, 64–76, doi:10.1016/j.landusepol.2015.09.003.</span></li> <li><span id="fn:r2325">Doherty, M., K. Klima and J.J. Hellmann, 2016: Climate change in the urban environment: Advancing, measuring and achieving resiliency. Environ. Sci. Policy, 66, 310–313, doi:10.1016/j.envsci.2016.09.001.</span></li> <li><span id="fn:r2326">Wise, R.M. et al., 2016: How climate compatible are livelihood adaptation strategies and development programs in rural Indonesia? Clim. Risk Manage., 12, 100–114, doi:10.1016/j.crm.2015.11.001.</span></li> <li><span id="fn:r2327">Fauville, G. et al., 2011: Virtual Ocean Acidification Laboratory as an Efficient Educational Tool to Address Climate Change Issues in The Economic, Social and Political Elements of Climate Change [W. Filho Leal ed.]. Springer Berlin Heidelberg, pp. 825–836. ISBN: 978-3-642-14776-0</span></li> <li><span id="fn:r2328">Marshall, N.A. et al., 2013: Social Vulnerability of Marine Resource Users to Extreme Weather Events. Ecosystems, 16(5), 797–809, doi:10.1007/s10021-013-9651-6.</span></li> <li><span id="fn:r2329">Pescaroli, G. and M. Magni, 2015: Flood warnings in coastal areas: how do experience and information influence responses to alert services? Nat. Hazards Earth Syst. Sci., 15(4), 703–714, doi:10.5194/nhess-15-703-2015.</span></li> <li><span id="fn:r2330">Tapsuwan, S. and W. Rongrongmuang, 2015: Climate change perception of the dive tourism industry in Koh Tao island, Thailand. J. Outdoor Recreat. Tour., 11, 58–63, doi:10.1016/j.jort.2015.06.005.</span></li> <li><span id="fn:r2331">Wynveen, C.J. and S.G. Sutton, 2015: Engaging the public in climate change-related pro-environmental behaviors to protect coral reefs: The role of public trust in the management agency. Mar. Policy, 53, 131–140, doi:10.1016/j.marpol.2014.10.030.</span></li> <li><span id="fn:r2332">Wynveen, C.J. and S.G. Sutton, 2015: Engaging the public in climate change-related pro-environmental behaviors to protect coral reefs: The role of public trust in the management agency. Mar. Policy, 53, 131–140, doi:10.1016/j.marpol.2014.10.030.</span></li> <li><span id="fn:r2333">Andrachuk, M. and D. Armitage, 2015: Understanding social-ecological change and transformation through community perceptions of system identity. Ecol. Soc., 20(4). 26. [https://dx.doi.org/10.5751/ES-07759-200426 http://dx.doi.org/10.5751/ES-07759-200426]</span></li> <li><span id="fn:r2334">Audefroy, J.F. and B.N.C. Sánchez, 2017: Integrating local knowledge for climate change adaptation in Yucatán, Mexico. Int. J. Sustain. Built Environ., 6(1), 228–237, doi:10.1016/j.ijsbe.2017.03.007.</span></li> <li><span id="fn:r2335">Leon, J.X. et al., 2015: Supporting Local and Traditional Knowledge with Science for Adaptation to Climate Change: Lessons Learned from Participatory Three-Dimensional Modeling in BoeBoe, Solomon Islands. Coast. Manage., 43(4), 424–438, doi:10.1080/08920753.2015.1046808.</span></li> <li><span id="fn:r2336">Sakakibara, C., 2017: People of the Whales: Climate Change and Cultural Resilience Among Iñupiat of Arctic Alaska. Geogr. Rev., 107(1), 159–184.</span></li> <li><span id="fn:r2337">Cinner, J.E. et al., 2018: Building adaptive capacity to climate change in tropical coastal communities. Nat. Clim. Change, 8(2), 117–123, doi:10.1038/s41558-017-0065-x.</span></li> <li><span id="fn:r2338">Panikkar, B., B. Lemmond, B. Else and M. Murray, 2018: Ice over troubled waters: navigating the Northwest Passage using Inuit knowledge and scientific information. Clim. Res., 75(1), 81–94.</span></li> <li><span id="fn:r2339">Alam, G.M.M., K. Alam and S. Mushtaq, 2016: Influence of institutional access and social capital on adaptation decision: Empirical evidence from hazard-prone rural households in Bangladesh. Ecol. Econ., 130, 243–251, doi:10.1016/j.ecolecon.2016.07.012.</span></li> <li><span id="fn:r2340">Novak Colwell, J.M., M. Axelrod, S.S. Salim and S. Velvizhi, 2017: A Gendered Analysis of Fisherfolk’s Livelihood Adaptation and Coping Responses in the Face of a Seasonal Fishing Ban in Tamil Nadu & Puducherry, India. World Dev., 98, 325–337, doi:10.1016/j.worlddev.2017.04.033.</span></li> <li><span id="fn:r2341">Audefroy, J.F. and B.N.C. Sánchez, 2017: Integrating local knowledge for climate change adaptation in Yucatán, Mexico. Int. J. Sustain. Built Environ., 6(1), 228–237, doi:10.1016/j.ijsbe.2017.03.007.</span></li> <li><span id="fn:r2342">Fatorić, S. and E. Seekamp, 2017: Securing the Future of Cultural Heritage by Identifying Barriers to and Strategizing Solutions for Preservation under Changing Climate Conditions. Sustainability, 9(11), 1-20, doi:10.3390/su9112143.</span></li> <li><span id="fn:r2343">Kuruppu, N. and R. Willie, 2015: Barriers to reducing climate enhanced disaster risks in Least Developed Country-Small Islands through anticipatory adaptation. Weather and Climate Extremes, 7, 72–83, doi:10.1016/j.wace.2014.06.001.</span></li> <li><span id="fn:r2344">Marshall, N.A. et al., 2013: Social Vulnerability of Marine Resource Users to Extreme Weather Events. Ecosystems, 16(5), 797–809, doi:10.1007/s10021-013-9651-6.</span></li> <li><span id="fn:r2345">Metcalf, S.J. et al., 2015: Measuring the vulnerability of marine social-ecological systems: a prerequisite for the identification of climate change adaptations. Ecol. Soc., 20(2): 35, doi:10.5751/ES-07509-200235.</span></li> <li><span id="fn:r2346">Marshall, N.A. et al., 2013: Social Vulnerability of Marine Resource Users to Extreme Weather Events. Ecosystems, 16(5), 797–809, doi:10.1007/s10021-013-9651-6.</span></li> <li><span id="fn:r2347">Kittinger, J.N., E.M. Finkbeiner, E.W. Glazier and L.B. Crowder, 2012: Human dimensions of coral reef social-ecological systems. Ecol. Soc., 17(4).</span></li> <li><span id="fn:r2348">Hinkel, J. et al., 2014: Coastal flood damage and adaptation costs under 21st century sea level rise. PNAS, (9) 3292-3297, doi:10.1073/pnas.1222469111</span></li> <li><span id="fn:r2349">Zougmoré, R. et al., 2016: Toward climate-smart agriculture in West Africa: a review of climate change impacts, adaptation strategies and policy developments for the livestock, fishery and crop production sectors. Agriculture & Food Security, 5(1), 26, doi:10.1186/s40066-016-0075-3.</span></li> <li><span id="fn:r2350">Rosegrant, M.W., M.M. Dey, R. Valmonte-Santos and O.L. Chen, 2016: Economic impacts of climate change and climate change adaptation strategies in Vanuatu and Timor-Leste. Mar. Policy, 67, 179–188, doi:10.1016/j.marpol.2015.12.010.</span></li> <li><span id="fn:r2351">Campbell, J.R., 2017: Climate Change Impacts on Atolls and Island Nations in the South Pacific. Encyclopedia of the Anthropocene: Volume 2. [Dellasala, D.A., Goldstein, M.I. (eds.)] Elsevier, New York. p. 227-232. ISBN: 978-0-12-813576-1.</span></li> <li><span id="fn:r2352">Hess, J. and I. Kelman, 2017: Tourism Industry Financing of Climate Change Adaptation: Exploring the Potential in Small Island Developing States. Clim. Disast. Dev. J., 2(2), 33–45.</span></li> <li><span id="fn:r2353">Byrne, J.A., A.Y. Lo and Y. Jianjun, 2015: Residents’ understanding of the role of green infrastructure for climate change adaptation in Hangzhou, China. Landscape Urban Plan., 138, 132–143, doi:10.1016/j.landurbplan.2015.02.013.</span></li> <li><span id="fn:r2354">Balmford, A. et al., 2004: The worldwide costs of marine protected areas. PNAS, 101(26), 9694–9697, doi:10.1073/pnas.0403239101.</span></li> <li><span id="fn:r2355">Dittrich, R., A. Wreford and D. Moran, 2016: A survey of decision-making approaches for climate change adaptation: Are robust methods the way forward? Ecol. Econ., 122, 79–89, doi:10.1016/j.ecolecon.2015.12.006.</span></li> <li><span id="fn:r2356">Beck, M.W. et al., 2018: The global flood protection savings provided by coral reefs. Nat. Commun., 9(1), 2186, doi:10.1038/s41467-018-04568-z.</span></li> <li><span id="fn:r2357">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r2358">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2359">Robins, P.E. et al., 2016: Impact of climate change on UK estuaries: A review of past trends and potential projections. Estuar. Coast. Shelf Sci., 169, 119–135, doi:10.1016/j.ecss.2015.12.016.</span></li> <li><span id="fn:r2360">Sánchez-Arcilla, A. et al., 2016: Managing coastal environments under climate change: Pathways to adaptation. Sci. Total Environ., 572, 1336–1352, doi:10.1016/j.scitotenv.2016.01.124.</span></li> <li><span id="fn:r2361">Ahmed, N., W.W.L. Cheung, S. Thompson and M. Glaser, 2017: Solutions to blue carbon emissions: Shrimp cultivation, mangrove deforestation and climate change in coastal Bangladesh. Mar. Policy, 82, 68–75, doi:10.1016/j.marpol.2017.05.007.</span></li> <li><span id="fn:r2362">Peña-Alonso, C., L. Hernández-Calvento, E. Pérez-Chacón and E. Ariza-Solé, 2017: The relationship between heritage, recreational quality and geomorphological vulnerability in the coastal zone: A case study of beach systems in the Canary Islands. Ecol. Indic., 82, 420–432, doi:10.1016/j.ecolind.2017.07.014.</span></li> <li><span id="fn:r2363">Salgado, K. and M.L. Martinez, 2017: Is ecosystem-based coastal defense a realistic alternative? Exploring the evidence. J. Coast. Conserv., 21(6), 837–848, doi:10.1007/s11852-017-0545-1.</span></li> <li><span id="fn:r2364">Triyanti, A., M. Bavinck, J. Gupta and M.A. Marfai, 2017: Social capital, interactive governance and coastal protection: The effectiveness of mangrove ecosystem-based strategies in promoting inclusive development in Demak, Indonesia. Ocean Coast. Manage., 150, 3–11, doi:10.1016/j.ocecoaman.2017.10.017.</span></li> <li><span id="fn:r2365">Schuerch, M. et al., 2018: Future response of global coastal wetlands to sea level rise. Nature, 561(7722), 231–234, doi:10.1038/s41586-018-0476-5.</span></li> <li><span id="fn:r2366">Beetham, E., P.S. Kench and S. Popinet, 2017: Future Reef Growth Can Mitigate Physical Impacts of Sea level Rise on Atoll Islands. Earth’s Future, 5(10), 1002–1014, doi:10.1002/2017ef000589.</span></li> <li><span id="fn:r2367">Elliff, C.I. and I.R. Silva, 2017: Coral reefs as the first line of defense: Shoreline protection in face of climate change. Mar. Environ. Res., 127, 148–154, doi:10.1016/j.marenvres.2017.03.007.</span></li> <li><span id="fn:r2368">Joyce, J. et al., 2017: Developing a multi-scale modeling system for resilience assessment of green-grey drainage infrastructures under climate change and sea level rise impact. Environ. Modell. Softw., 90, 1–26, doi:10.1016/j.envsoft.2016.11.026.</span></li> <li><span id="fn:r2369">van Oppen, M.J.H. et al., 2017a: Shifting paradigms in restoration of the world’s coral reefs. Global Change Biol., 23(9), 3437–3448, doi:10.1111/gcb.13647.</span></li> <li><span id="fn:r2370">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r2371">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r2372">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2373">Salgado, K. and M.L. Martinez, 2017: Is ecosystem-based coastal defense a realistic alternative? Exploring the evidence. J. Coast. Conserv., 21(6), 837–848, doi:10.1007/s11852-017-0545-1.</span></li> <li><span id="fn:r2374">Nehren, U. et al., 2017: Sand Dunes and Mangroves for Disaster Risk Reduction and Climate Change Adaptation in the Coastal Zone of Quang Nam Province, Vietnam. In: Land Use and Climate Change Interactions in Central Vietnam: LUCCi [Nauditt, A. and L. Ribbe (eds.)]. Springer Singapore, Singapore, pp. 201–222. ISBN: 978-981-10-2624-9.</span></li> <li><span id="fn:r2375">Salgado, K. and M.L. Martinez, 2017: Is ecosystem-based coastal defense a realistic alternative? Exploring the evidence. J. Coast. Conserv., 21(6), 837–848, doi:10.1007/s11852-017-0545-1.</span></li> <li><span id="fn:r2376">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r2377">Wynveen, C.J. and S.G. Sutton, 2015: Engaging the public in climate change-related pro-environmental behaviors to protect coral reefs: The role of public trust in the management agency. Mar. Policy, 53, 131–140, doi:10.1016/j.marpol.2014.10.030.</span></li> <li><span id="fn:r2378">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r2379">Sánchez-Arcilla, A. et al., 2016: Managing coastal environments under climate change: Pathways to adaptation. Sci. Total Environ., 572, 1336–1352, doi:10.1016/j.scitotenv.2016.01.124.</span></li> <li><span id="fn:r2380">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r2381">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r2382">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2383">Thorne, K.M. et al., 2017: Are coastal managers ready for climate change? A case study from estuaries along the Pacific coast of the United States. Ocean Coast. Manage., 143, 38–50, doi:10.1016/j.ocecoaman.2017.02.010.</span></li> <li><span id="fn:r2384">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r2385">Comte, A. and L.H. Pendleton, 2018: Management strategies for coral reefs and people under Global Environ. Change: 25 years of scientific research. J. Environ. Manage., 209, 462–474, doi:10.1016/j.jenvman.2017.12.051.</span></li> <li><span id="fn:r2386">Nguyen, T.P., T.T. Luom and K.E. Parnell, 2017: Mangrove allocation for coastal protection and livelihood improvement in Kien Giang province, Vietnam: Constraints and recommendations. Land Use Policy, 63, 401–407, doi:10.1016/j.landusepol.2017.01.048.</span></li> <li><span id="fn:r2387">Miller, D.D. et al., 2017: Adaptation strategies to climate change in marine systems. Global Change Biol., 24, e1–e14.</span></li> <li><span id="fn:r2388">Gallagher, R.V., R.O. Makinson, P.M. Hogbin and N. Hancock, 2015: Assisted colonization as a climate change adaptation tool. Austral Ecol.., 40(1), 12–20, doi:10.1111/aec.12163.</span></li> <li><span id="fn:r2389">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2390">Nehren, U. et al., 2017: Sand Dunes and Mangroves for Disaster Risk Reduction and Climate Change Adaptation in the Coastal Zone of Quang Nam Province, Vietnam. In: Land Use and Climate Change Interactions in Central Vietnam: LUCCi [Nauditt, A. and L. Ribbe (eds.)]. Springer Singapore, Singapore, pp. 201–222. ISBN: 978-981-10-2624-9.</span></li> <li><span id="fn:r2391">Salgado, K. and M.L. Martinez, 2017: Is ecosystem-based coastal defense a realistic alternative? Exploring the evidence. J. Coast. Conserv., 21(6), 837–848, doi:10.1007/s11852-017-0545-1.</span></li> <li><span id="fn:r2392">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2393">Gracia, A., N. Rangel-Buitrago, J.A. Oakley and A.T. Williams, 2018: Use of ecosystems in coastal erosion management. Ocean Coast. Manage., 156, 277–289, doi:10.1016/j.ocecoaman.2017.07.009.</span></li> <li><span id="fn:r2394">Sutton-Grier, A.E., K. Wowk and H. Bamford, 2015: Future of our coasts: The potential for natural and hybrid infrastructure to enhance the resilience of our coastal communities, economies and ecosystems. Environ. Sci. Policy, 51, 137–148, doi:10.1016/j.envsci.2015.04.006.</span></li> <li><span id="fn:r2395">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r2396">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r2397">Perkins, M.J. et al., 2015: Conserving intertidal habitats: What is the potential of ecological engineering to mitigate impacts of coastal structures? Estuar. Coast. Shelf Sci., 167, 504–515, doi:10.1016/j.ecss.2015.10.033.</span></li> <li><span id="fn:r2398">Robins, P.E. et al., 2016: Impact of climate change on UK estuaries: A review of past trends and potential projections. Estuar. Coast. Shelf Sci., 169, 119–135, doi:10.1016/j.ecss.2015.12.016.</span></li> <li><span id="fn:r2399">Thorne, K.M. et al., 2017: Are coastal managers ready for climate change? A case study from estuaries along the Pacific coast of the United States. Ocean Coast. Manage., 143, 38–50, doi:10.1016/j.ocecoaman.2017.02.010.</span></li> <li><span id="fn:r2400">Vikolainen, V., J. Flikweert, H. Bressers and K. Lulofs, 2017: Governance context for coastal innovations in England: The case of Sandscaping in North Norfolk. Ocean Coast. Manage., 145, 82–93, doi:10.1016/j.ocecoaman.2017.05.012.</span></li> <li><span id="fn:r2401">Schaeffer-Novelli, Y. et al., 2016: Climate changes in mangrove forests and salt marshes. Brazilian J. Oceanogr., 64((spe2)), 37–52.</span></li> <li><span id="fn:r2402">Wigand, C. et al., 2017: A climate change adaptation strategy for management of coastal marsh systems. Estuar. Coast., 40(3), 682–693.</span></li> <li><span id="fn:r2403">Romañach, S.S. et al., 2018: Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean Coast. Manage., 154, 72–82.</span></li> <li><span id="fn:r2404">Comte, A. and L.H. Pendleton, 2018: Management strategies for coral reefs and people under Global Environ. Change: 25 years of scientific research. J. Environ. Manage., 209, 462–474, doi:10.1016/j.jenvman.2017.12.051.</span></li> <li><span id="fn:r2405">Ward, R.D., D.A. Friess, R.H. Day and R.A. MacKenzie, 2016: Impacts of climate change on mangrove ecosystems: a region by region overview. Ecosyst. Health Sustain., 2(4), e01211, doi:10.1002/ehs2.1211.</span></li> <li><span id="fn:r2406">Roberts, C.M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. PNAS, 114(24), 6167–6175.</span></li> <li><span id="fn:r2407">Narayan, S. et al., 2016: The Effectiveness, Costs and Coastal Protection Benefits of Natural and Nature-Based Defences. PLoS One, 11(5), e0154735, doi:10.1371/journal.pone.0154735.</span></li> <li><span id="fn:r2408">Mackey, B. and D. Ware, 2018: Limits to Capital Works Adaptation in the Coastal Zones and Islands: Lessons for the Pacific. In: Limits to Climate Change Adaptation [Leal Filho, W. and J. Nalau (eds.)]. Springer International Publishing, Cham, pp. 301–323.ISBN: 978-3-319-64599-5</span></li> <li><span id="fn:r2409">Islam, M.M., S. Sallu, K. Hubacek and J. Paavola, 2013: Vulnerability of fishery-based livelihoods to the impacts of climate variability and change: insights from coastal Bangladesh. Reg. Environ. Change, 14(1), 281–294, doi:10.1007/s10113-013-0487-6.</span></li> <li><span id="fn:r2410">Evans, L.S. et al., 2016: Structural and Psycho-Social Limits to Climate Change Adaptation in the Great Barrier Reef Region. PLoS One, 11(3), e0150575.</span></li> <li><span id="fn:r2411">Evans, L.S. et al., 2016: Structural and Psycho-Social Limits to Climate Change Adaptation in the Great Barrier Reef Region. PLoS One, 11(3), e0150575.</span></li> <li><span id="fn:r2412">Oulahen, G. et al., 2018: Barriers and Drivers of Planning for Climate Change Adaptation across Three Levels of Government in Canada. Planning Theory & Practice, 19(3), 405–421, doi:10.1080/14649357.2018.1481993.</span></li> <li><span id="fn:r2413">Esteban, M. et al., 2017: Awareness of coastal floods in impoverished subsiding coastal communities in Jakarta: Tsunamis, typhoon storm surges and dyke-induced tsunamis. Int. J. Disast. Risk Reduc., 23, 70–79, doi:10.1016/j.ijdrr.2017.04.007.</span></li> <li><span id="fn:r2414">Fischer, A.P., 2018: Pathways of adaptation to external stressors in coastal natural-resource-dependent communities: Implications for climate change. World Dev., 108, 235–248, doi:10.1016/j.worlddev.2017.12.007.</span></li> <li><span id="fn:r2415">Esteban, M. et al., 2017: Awareness of coastal floods in impoverished subsiding coastal communities in Jakarta: Tsunamis, typhoon storm surges and dyke-induced tsunamis. Int. J. Disast. Risk Reduc., 23, 70–79, doi:10.1016/j.ijdrr.2017.04.007.</span></li> <li><span id="fn:r2416">Islam, M.M., S. Sallu, K. Hubacek and J. Paavola, 2013: Vulnerability of fishery-based livelihoods to the impacts of climate variability and change: insights from coastal Bangladesh. Reg. Environ. Change, 14(1), 281–294, doi:10.1007/s10113-013-0487-6.</span></li> <li><span id="fn:r2417">Nanlohy, H., A.N. Bambang, Ambariyanto and S. Hutabarat, 2015: Coastal Communities Knowledge Level on Climate Change as a Consideration in Mangrove Ecosystems Management in the Kotania Bay, West Seram Regency. Procedia Environ. Sci., 23, 157–163, doi:10.1016/j.proenv.2015.01.024.</span></li> <li><span id="fn:r2418">Lohmann, H., 2016: Comparing vulnerability and adaptive capacity to climate change in individuals of coastal Dominican Republic. Ocean Coast. Manage., 132, 111–119, doi:10.1016/j.ocecoaman.2016.08.009.</span></li> <li><span id="fn:r2419">Koya, M. et al., 2017: Vulnerability of coastal fisher households to climate change: a case study fom Gujarat, India. Turkish Journal of Fisheries and Aquatic Sciences, 17, 193–203, doi:10.4194/1303-2712-v17_1_21.</span></li> <li><span id="fn:r2420">Senapati, S. and V. Gupta, 2017: Socioeconomic vulnerability due to climate change: Deriving indicators for fishing communities in Mumbai. Mar. Policy, 76, 90–97, doi:10.1016/j.marpol.2016.11.023.</span></li> <li><span id="fn:r2421">Cumiskey, L. et al., 2018: A framework to include the (inter)dependencies of Disaster Risk Reduction measures in coastal risk assessment. Coast. Eng., 134, 81–92, doi:10.1016/j.coastaleng.2017.08.009.</span></li> <li><span id="fn:r2422">Nicholls, R. et al., 2015: Chapter 2 – Developing a Holistic Approach to Assessing and Managing Coastal Flood Risk. In: Coastal Risk Management in a Changing Climate. [Zanuttigh, B., Nicholls, R.J., Vanderlinden, J-P, Burcharth, H.F. and Thompson, R.C. (eds.)]. Butterworth-Heinemann, Boston, pp. 9–53. ISBN: 978-0-12-397310-8.</span></li> <li><span id="fn:r2423">Peirson, W. et al., 2015: Opportunistic management of estuaries under climate change: A new adaptive decision-making framework and its practical application. J. Environ. Manage., 163, 214–223, doi:10.1016/j.jenvman.2015.08.021.</span></li> <li><span id="fn:r2424">Sánchez-Arcilla, A. et al., 2016: Managing coastal environments under climate change: Pathways to adaptation. Sci. Total Environ., 572, 1336–1352, doi:10.1016/j.scitotenv.2016.01.124.</span></li> <li><span id="fn:r2425">van der Nat, A., P. Vellinga, R. Leemans and E. van Slobbe, 2016: Ranking coastal flood protection designs from engineered to nature-based. Ecol. Eng., 87, 80–90, doi:10.1016/j.ecoleng.2015.11.007.</span></li> <li><span id="fn:r2426">Francesch-Huidobro, M. et al., 2017: Governance challenges of flood-prone delta cities: Integrating flood risk management and climate change in spatial planning. Progr. Plan., 114, 1–27, doi:10.1016/j.progress.2015.11.001.</span></li> <li><span id="fn:r2427">Khamis, Z.A., R. Kalliola and N. Käyhkö, 2017: Geographical characterization of the Zanzibar coastal zone and its management perspectives. Ocean Coast. Manage., 149, 116–134, doi:10.1016/j.ocecoaman.2017.10.003.</span></li> <li><span id="fn:r2428">Galland, G., E. Harrould-Kolieb and D. Herr, 2012: The ocean and climate change policy. Clim. Policy, 12(6), 764–771, doi:10.1080/14693062.2012.692207.</span></li> <li><span id="fn:r2429">Stephens, T., 2015: Ocean acidification.[Rayfuse, R. (ed.)]. Edward Elgar Publishing, 106, 406.</span></li> <li><span id="fn:r2430">Fennel, K. and D.L. VanderZwaag, 2016: Ocean acidification: Scientific surges, lagging law and policy responses in Routledge handbook of maritime regulation and enforcement [R. Warner and S. Kaye eds]. Routledge 1st eddition, pp. 342-362. London, UK.</span></li> <li><span id="fn:r2431">Diamond, S.E., 2018: Contemporary climate-driven range shifts: Putting evolution back on the table. Funct. Ecol., 32(7), 1652–1665, doi:10.1111/1365-2435.13095.</span></li> <li><span id="fn:r2432">Galaz, V. et al., 2012: Polycentric systems and interacting planetary boundaries – Emerging governance of climate change-ocean acidification-marine biodiversity. Ecol. Econ., 81, 21–32, doi:10.1016/j.ecolecon.2011.11.012.</span></li> <li><span id="fn:r2433">Oral, N., 2018: Ocean Acidification: Falling Between the Legal Cracks of UNCLOS and the UNFCCC. Ecology Law Quarterly, 45(1), 9.</span></li> <li><span id="fn:r2434">Levin, L.A. and N. Le Bris, 2015: The deep ocean under climate change. Science, 350(6262), 766–768, doi:10.1126/science.aad0126.</span></li> <li><span id="fn:r2435">Warner, R.M., 2018: Oceans in Transition: Incorporating Climate-Change Impacts into Environmental Impact Assessment for Marine Areas Beyond National Jurisdiction. Ecology Law Quarterly, 45(1), https://doi.org/10.15779/Z38M61BQ0J</span></li> <li><span id="fn:r2436">UNEP, 2016: Regional Seas Programmes and other UNEP Activities Relevant toMarine Biodiversity in Areas beyond National Jurisdiction. Development of an international legally-binding instrument on the conservation and sustainable use of marine biodiversity of areas beyond national jurisdiction under the United Nations Convention on Law of the Sea, 8 pp, https://www.un.org/depts/los/biodiversity/prepcom_files/UNEP_and_BBNJ_PrepCom2.pdf .</span></li> <li><span id="fn:r2437">Bennett, N.J., P. Dearden, G. Murray and A. Kadfak, 2014: The capacity to adapt?: communities in a changing climate, environment, and economy on the northern Andaman coast of Thailand. Ecol. Soc., 19(2), doi:10.5751/ES-06315-190205.</span></li> <li><span id="fn:r2438">Salik, K.M., S. Jahangir, W.u.Z. Zahdi and S.u. Hasson, 2015: Climate change vulnerability and adaptation options for the coastal communities of Pakistan. Ocean Coast. Manage., 112, 61–73, doi:10.1016/j.ocecoaman.2015.05.006.</span></li> <li><span id="fn:r2439">Weng, K.C., E. Glazier, S.J. Nicol and A.J. Hobday, 2015: Fishery management, development and food security in the Western and Central Pacific in the context of climate change. Deep Sea Res. Pt. II, 113, 301–311, doi:10.1016/j.dsr2.2014.10.025.</span></li> <li><span id="fn:r2440">Karim, M.S. and M.M. Uddin, 2019: Swatch-of-no-ground marine protected area for sharks, dolphins, porpoises and whales: Legal and institutional challenges. Mar. Pollut. Bull., 139, 275–281, doi:10.1016/j.marpolbul.2018.12.037.</span></li> <li><span id="fn:r2441">Sarkodie, S.A. and V. Strezov, 2019: Economic, social and governance adaptation readiness for mitigation of climate change vulnerability: Evidence from 192 countries. Sci. Total Environ., 656, 150–164, doi:10.1016/j.scitotenv.2018.11.349.</span></li> <li><span id="fn:r2442">Redgwell, C., 2012: UNCLOS and Climate Change. Proceedings of the Annual Meeting (American Society of International Law), 106, 406, doi:10.5305/procannmeetasil.106.0406.</span></li> <li><span id="fn:r2443">Karim, M.S., 2015: Prevention of Pollution of the Marine Environment from Vessels. Springer International Publishing, Cham.ISBN 978-3-319-10608-3</span></li> <li><span id="fn:r2444">Dixon, T., J. Garrett and E. Kleverlaan, 2014: Update on the London Protocol – Developments on Transboundary CCS and on Geoengineering. 12th International Conference on Greenhouse Gas Control Technologies, GHGT-12, 63(Supplement C), 6623–6628, doi:10.1016/j.egypro.2014.11.698.</span></li> <li><span id="fn:r2445">Herr, D., K. Isensee, E. Harrould-Kolieb and C. Turley, 2014: Ocean Acidification, iv. IUCN, Gland, Switzerland, 52 pp.</span></li> <li><span id="fn:r2446">Williams, G.A. et al., 2016: Meeting the climate change challenge: Pressing issues in southern China and SE Asian coastal ecosystems. Reg. Stud. Mar. Sci., 8, 373–381, doi:10.1016/j.rsma.2016.07.002.</span></li> <li><span id="fn:r2447">Heron, S.F., 2017: Impacts of Climate Change on World Heritage Coral Reefs : A First Global Scientic Assessment. UNESCO World Heritage Centre, Paris, 16 pp.</span></li> <li><span id="fn:r2448">Galland, G., E. Harrould-Kolieb and D. Herr, 2012: The ocean and climate change policy. Clim. Policy, 12(6), 764–771, doi:10.1080/14693062.2012.692207.</span></li> <li><span id="fn:r2449">Redgwell, C., 2012: UNCLOS and Climate Change. Proceedings of the Annual Meeting (American Society of International Law), 106, 406, doi:10.5305/procannmeetasil.106.0406.</span></li> <li><span id="fn:r2450">Herr, D., K. Isensee, E. Harrould-Kolieb and C. Turley, 2014: Ocean Acidification, iv. IUCN, Gland, Switzerland, 52 pp.</span></li> <li><span id="fn:r2451">Magnan, A.K. et al., 2016: Implications of the Paris Agreement for the ocean. Nat. Clim. Change, 6(8), 732–735.</span></li> <li><span id="fn:r2452">Gallo, N.D., D.G. Victor and L.A. Levin, 2017: Ocean commitments under the Paris Agreement. Nat. Clim. Change, 7(11), 833-838, doi:10.1038/NCLIMATE3422.</span></li> <li><span id="fn:r2453">Heron, S.F., 2017: Impacts of Climate Change on World Heritage Coral Reefs : A First Global Scientic Assessment. UNESCO World Heritage Centre, Paris, 16 pp.</span></li> <li><span id="fn:r2454">Gallo, N.D., D.G. Victor and L.A. Levin, 2017: Ocean commitments under the Paris Agreement. Nat. Clim. Change, 7(11), 833-838, doi:10.1038/NCLIMATE3422.</span></li> <li><span id="fn:r2455">Karim, M.S., 2015: Prevention of Pollution of the Marine Environment from Vessels. Springer International Publishing, Cham.ISBN 978-3-319-10608-3</span></li> <li><span id="fn:r2456">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r2457">Brooke, S. et al., 2013: Temperature tolerance of the deep sea coral Lophelia pertusa from the southeastern United States. Deep sea Res. Pt. II, 92, 240–248.</span></li> <li><span id="fn:r2458">Ojea, E., I. Pearlman, S.D. Gaines and S.E. Lester, 2017: Fisheries regulatory regimes and resilience to climate change. Ambio, 46(4), 399–412.</span></li> <li><span id="fn:r2459">Pentz, B. and N. Klenk, 2017: The ‘responsiveness gap’ in RFMOs: The critical role of decision-making policies in the fisheries management response to climate change. Ocean Coast. Manage., 145, 44–51, doi:10.1016/j.ocecoaman.2017.05.007.</span></li> <li><span id="fn:r2460">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r2461">Aqorau, T., J. Bell and J.N. Kittinger, 2018: Good governance for migratory species. Science, 361(6408), 1208, doi:10.1126/science.aav2051.</span></li> <li><span id="fn:r2462">Heenan, A. et al., 2015: A climate-informed, ecosystem approach to fisheries management. Mar. Policy, 57, 182–192, doi:10.1016/j.marpol.2015.03.018.</span></li> <li><span id="fn:r2463">Gourlie, D. et al., 2017: Performing “A New Song”: Suggested Considerations for Drafting Effective Coastal Fisheries Legislation Under Climate Change. Mar. Policy, 88; 342-349, doi:10.1016/j.marpol.2017.06.012.</span></li> <li><span id="fn:r2464">Gaines, S.D. et al., 2018: Improved fisheries management could offset many negative effects of climate change. Sci. Adv., 4(8), eaao1378, doi:10.1126/sciadv.aao1378.</span></li> <li><span id="fn:r2465">Blasiak, R. et al., 2017: Climate change and marine fisheries: Least developed countries top global index of vulnerability. PLoS One, 12(6), e0179632, doi:10.1371/journal.pone.0179632.</span></li> <li><span id="fn:r2466">Ojea, E., I. Pearlman, S.D. Gaines and S.E. Lester, 2017: Fisheries regulatory regimes and resilience to climate change. Ambio, 46(4), 399–412.</span></li> <li><span id="fn:r2467">Pentz, B. and N. Klenk, 2017: The ‘responsiveness gap’ in RFMOs: The critical role of decision-making policies in the fisheries management response to climate change. Ocean Coast. Manage., 145, 44–51, doi:10.1016/j.ocecoaman.2017.05.007.</span></li> <li><span id="fn:r2468">Aqorau, T., J. Bell and J.N. Kittinger, 2018: Good governance for migratory species. Science, 361(6408), 1208, doi:10.1126/science.aav2051.</span></li> <li><span id="fn:r2469">Pinsky, M.L. et al., 2018: Preparing ocean governance for species on the move. Science, 360(6394), 1189.</span></li> <li><span id="fn:r2470">Hiwasaki, L., E. Luna, Syamsidik and R. Shaw, 2014: Process for integrating local and indigenous knowledge with science for hydro-meteorological disaster risk reduction and climate change adaptation in coastal and small island communities. Int. J. Disast. Risk Reduc., 10, 15–27, doi:10.1016/j.ijdrr.2014.07.007.</span></li> <li><span id="fn:r2471">Kettle, N.P. et al., 2014: Integrating scientific and local knowledge to inform risk-based management approaches for climate adaptation. Clim. Risk Manage., 4–5, 17–31, doi:10.1016/j.crm.2014.07.001.</span></li> <li><span id="fn:r2472">Hernández-Delgado, E.A., 2015: The emerging threats of climate change on tropical coastal ecosystem services, public health, local economies and livelihood sustainability of small islands: Cumulative impacts and synergies. Mar. Pollut. Bull., 101(1), 5–28, doi:10.1016/j.marpolbul.2015.09.018.</span></li> <li><span id="fn:r2473">Himes-Cornell, A. and S. Kasperski, 2015a: Assessing climate change vulnerability in Alaska’s fishing communities. Fish. Res., 162, 1–11, doi:10.1016/j.fishres.2014.09.010.</span></li> <li><span id="fn:r2474">Pittman, J. et al., 2015: Governance fit for climate change in a Caribbean coastal-marine context. Mar. Policy, 51, 486–498, doi:10.1016/j.marpol.2014.08.009.</span></li> <li><span id="fn:r2475">Colburn, L.L. et al., 2016: Indicators of climate change and social vulnerability in fishing dependent communities along the Eastern and Gulf Coasts of the United States. Mar. Policy, 74, 323–333, doi:10.1016/j.marpol.2016.04.030.</span></li> <li><span id="fn:r2476">Creighton, C., A.J. Hobday, M. Lockwood and G.T. Pecl, 2016: Adapting Management of Marine Environments to a Changing Climate: A Checklist to Guide Reform and Assess Progress. Ecosystems, 19(2), 187–219, doi:10.1007/s10021-015-9925-2.</span></li> <li><span id="fn:r2477">Hobday, A.J. et al., 2016a: Planning adaptation to climate change in fast-warming marine regions with seafood-dependent coastal communities. Rev. Fish Biol. Fisher., 26(2), 249–264, doi:10.1007/s11160-016-9419-0.</span></li> <li><span id="fn:r2478">Audefroy, J.F. and B.N.C. Sánchez, 2017: Integrating local knowledge for climate change adaptation in Yucatán, Mexico. Int. J. Sustain. Built Environ., 6(1), 228–237, doi:10.1016/j.ijsbe.2017.03.007.</span></li> <li><span id="fn:r2479">Gissi, E., S. Fraschetti and F. Micheli, 2019: Incorporating change in marine spatial planning: A review. Environ. Sci. Policy, 92, 191–200, doi:10.1016/j.envsci.2018.12.002.</span></li> <li><span id="fn:r2480">Tuda, A.O., S. Kark and A. Newton, 2019: Exploring the prospects for adaptive governance in marine transboundary conservation in East Africa. Mar. Policy, 104, 75–84, doi:10.1016/j.marpol.2019.02.051.</span></li> <li><span id="fn:r2481">UNFCCC, 2015: Adoption of the Paris Agreement. United Nations Framework Convention on Climate Change, Twenty-first Session of Conference of the Parties, https://unfccc.int/resource/docs/2015/cop21/eng/l09r01.pdf</span></li> <li><span id="fn:r2482">Herr, D., K. Isensee, E. Harrould-Kolieb and C. Turley, 2014: Ocean Acidification, iv. IUCN, Gland, Switzerland, 52 pp.</span></li> <li><span id="fn:r2483">Harrould-Kolieb, E.R. and O. Hoegh-Guldberg, 2019: A governing framework for international ocean acidification policy. Mar. Policy, 102, 10–20, doi:10.1016/j.marpol.2019.02.004.</span></li> <li><span id="fn:r2484">Fennel, K. and D.L. VanderZwaag, 2016: Ocean acidification: Scientific surges, lagging law and policy responses in Routledge handbook of maritime regulation and enforcement [R. Warner and S. Kaye eds]. Routledge 1st eddition, pp. 342-362. London, UK.</span></li> <li><span id="fn:r2485">Jagers, S.C. et al., 2018: Societal causes of, and responses to, ocean acidification. Ambio, (48)8, 816–830, doi:10.1007/s13280-018-1103-2</span></li> <li><span id="fn:r2486">Newton, J. et al., 2015: Global ocean acidification observing network: requirements and governance plan. Global Ocean Acidification Observing Network: Requirements and Governance Plan, 57 p.</span></li> <li><span id="fn:r2487">Osborn, D., S. Dupont, L. Hansson and M. Metian, 2017: Ocean acidification: Impacts and governance. In: Handbook on the Economics and Management of Sustainable Oceans [Nunes, P.A.L.D., L.E. Svensson and A. Marikandya (eds.)], Cheltenham, UK,pp. 396–415. ISBN: 978-1-78643-071-7</span></li> <li><span id="fn:r2488">Watson-Wright, W. and J.L. Valdés, 2018: Fragmented governance of our one global ocean. In: The Future of Ocean Governance and Capacity Development [Institute, I.O. (ed.)]. Brill, Leiden, Netherland. 562 pp. ISBN: 978-90-04-38027-1</span></li> <li><span id="fn:r2489">Harrould-Kolieb, E.R. and D. Herr, 2012: Ocean acidification and climate change: synergies and challenges of addressing both under the UNFCCC. Clim. Policy, 12(3), 378–389, doi:10.1080/14693062.2012.620788.</span></li> <li><span id="fn:r2490">Herr, D., K. Isensee, E. Harrould-Kolieb and C. Turley, 2014: Ocean Acidification, iv. IUCN, Gland, Switzerland, 52 pp.</span></li> <li><span id="fn:r2491">Harrould-Kolieb, E.R. and D. Herr, 2012: Ocean acidification and climate change: synergies and challenges of addressing both under the UNFCCC. Clim. Policy, 12(3), 378–389, doi:10.1080/14693062.2012.620788.</span></li> <li><span id="fn:r2492">Hughes, T.P. et al., 2013: Living dangerously on borrowed time during slow, unrecognized regime shifts. Trends Ecol. Evol., 28(3), 149–155, doi:10.1016/j.tree.2012.08.022.</span></li> <li><span id="fn:r2493">Good, P. et al., 2018: Recent progress in understanding climate thresholds: Ice sheets, the Atlantic meridional overturning circulation, tropical forests and responses to ocean acidification. Prog. Phys. Geog., 42(1), 24–60, doi:10.1177/0309133317751843.</span></li> <li><span id="fn:r2494">Steinacher, M., F. Joos and T.F. Stocker, 2013: Allowable carbon emissions lowered by multiple climate targets. Nature, 499, 197, doi:10.1038/nature12269.</span></li> <li><span id="fn:r2495">Black, B.A. et al., 2014: Six centuries of variability and extremes in a coupled marine-terrestrial ecosystem. Science, 345(6203), 1498.</span></li> <li><span id="fn:r2496">Williamson, P. and C. Turley, 2012: Ocean acidification in a geoengineering context. Philos. Trans. Roy. Soc. A., 370(1974), 4317.</span></li> <li><span id="fn:r2497">Keller, D.P., E.Y. Feng and A. Oschlies, 2014a: Potential climate engineering effectiveness and side effects during a high carbon dioxide-emission scenario. Nat. Commun., 5, 3304, doi:10.1038/ncomms4304.</span></li> <li><span id="fn:r2498">Kelly, R.P. et al., 2011: Mitigating Local Causes of Ocean Acidification with Existing Laws. Science, 332(6033), 1036.</span></li> <li><span id="fn:r2499">Billé, R. et al., 2013: Taking Action Against Ocean Acidification: A Review of Management and Policy Options. Environ. Manage., 52(4), 761–779, doi:10.1007/s00267-013-0132-7.</span></li> <li><span id="fn:r2500">Strong, A.L. et al., 2014: Ocean Acidification 2.0: Managing our Changing Coastal Ocean Chemistry. BioScience, 64(7), 581–592, doi:10.1093/biosci/biu072.</span></li> <li><span id="fn:r2501">Albright, R. et al., 2016a: Ocean acidification: Linking science to management solutions using the Great Barrier Reef as a case study. J. Environ. Manage., 182, 641–650, doi:10.1016/j.jenvman.2016.07.038.</span></li> <li><span id="fn:r2502">Sabine, C.L., 2018: Good news and bad news of blue carbon. PNAS, 115(15), 3745–3746.</span></li></ol> <span id="section-5"></span>
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