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== References == <div id="h1-5-siblings" class="h1-siblings"></div> <div id="Abolafya--2013"></div> Abolafya, M., O. Onmuş, Ç. H. Şekercioğlu and R. Bilgin, 2013: Using Citizen Science Data to Model the Distributions of Common Songbirds of Turkey Under Different Global Climatic Change Scenarios. ''PLOS ONE'' , '''8''' (7), e68037, doi:10.1371/journal.pone.0068037. <div id="Ahmadi--2019"></div> Ahmadi, M. et al., 2019: Extinction risks of a Mediterranean neo-endemism complex of mountain vipers triggered by climate change. ''Scientific Reports'' , '''9''' (1), 6332, doi:10.1038/s41598-019-42792-9. <div id="Ali--2015"></div> Ali, K. and H. A. Begum, 2015: A comparative assessment of climate change effect on some of the important tree species of Hindu-Kush Himalayas, using predictive modelling techniques. ''International Journal of Advanced Research'' , '''3''' (5), 1230–1240, doi:10.15242/IICBE.C0415015. <div id="Alkama--2016"></div> Alkama, R. and A. Cescatti, 2016: Biophysical climate impacts of recent changes in global forest cover. ''Science'' , '''351''' (6273), 600–604, doi:10.1126/science.aac8083. <div id="Allen--2017"></div> Allen, T. et al., 2017: Global hotspots and correlates of emerging zoonotic diseases. ''Nature Communications'' , '''8''' (1), 1124, doi:10.1038/s41467-017-00923-8. <div id="Alongi--2020"></div> Alongi, D. M., 2020: Global Significance of Mangrove Blue Carbon in Climate Change Mitigation. ''Sci'' , '''2''' (3), 67, doi:10.3390/sci2030067. <div id="Arafeh-Dalmau--2021"></div> Arafeh-Dalmau, N. et al., 2021: Incorporating climate velocity into the design of climate-smart networks of marine protected areas. ''Methods in Ecology and Evolution'' , '''in press''' , doi:doi.org/10.1111/2041-210X.13675. <div id="Arafeh-Dalmau--2019"></div> Arafeh-Dalmau, N. et al., 2019: Extreme marine heatwaves alter kelp forest community near its equatorward distribution limit. ''Frontiers in Marine Science'' , '''6''' (499), doi:10.3389/fmars.2019.00499. <div id="Arrigo--2008"></div> Arrigo, K. R., G. van Dijken and S. Pabi, 2008: Impact of a shrinking Arctic ice cover on marine primary production. ''Geophysical Research Letters'' , '''35''' (19), doi:10.1029/2008gl035028. <div id="Aryal--2016"></div> Aryal, A. et al., 2016: Predicting the distributions of predator (snow leopard) and prey (blue sheep) under climate change in the Himalaya. ''Ecology and Evolution'' , '''6''' (12), 4065–4075, doi:10.1002/ece3.2196. <div id="Asaad--2017"></div> Asaad, I., C. J. Lundquist, M. V. Erdmann and M. J. Costello, 2017: Ecological criteria to identify areas for biodiversity conservation. ''Biological Conservation'' , '''213''' , 309–316, doi:10.1016/j.biocon.2016.10.007. <div id="Assis--2018"></div> 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 Biology'' , '''24''' (1), e55-e66, doi:10.1111/gcb.13818. <div id="Atkinson--2019"></div> Atkinson, A. et al., 2019: Krill (Euphausia superba) distribution contracts southward during rapid regional warming. ''Nature Climate Change'' , '''9''' (2), 142–147, doi:10.1038/s41558-018-0370-z. <div id="Ausseil--2013"></div> Ausseil, A.-G. E. et al., 2013: Climate regulation in New Zealand: contribution of natural and managed ecosystems. In: ''Ecosystem services in New Zealand–conditions and trends'' [Dymond, J. R. (ed.)]. Manaaki Whenua Press, Lincoln, pp. 386–399. <div id="Babcock--2019"></div> Babcock, R. C. et al., 2019: Severe continental-scale impacts of climate change are happening now: Extreme climate events impact marine habitat forming communities along 45% of Australia’s coast. ''Frontiers in Marine Science'' , '''6''' (411), doi:10.3389/fmars.2019.00411. <div id="Baker--2015"></div> Baker, D. J. et al., 2015: Assessing climate change impacts for vertebrate fauna across the West African protected area network using regionally appropriate climate projections. ''Diversity and Distributions'' , '''21''' (9), 991–1003, doi:10.1111/ddi.12337. <div id="Balzan--2018"></div> Balzan, M. V., M. Potschin-Young and R. Haines-Young, 2018: Island ecosystem services: insights from a literature review on case-study island ecosystem services and future prospects. ''International Journal of Biodiversity Science, Ecosystem Services & Management'' , '''14''' (1), 71–90, doi:10.1080/21513732.2018.1439103. <div id="Banag--2015"></div> Banag, C. et al., 2015: Bioclimatic niches of selected endemic Ixora species on the Philippines: predicting habitat suitability due to climate change. ''Plant Ecology'' , '''216''' (9), 1325–1340, doi:10.1007/s11258-015-0512-6. <div id="Barbero--2020"></div> Barbero, R. et al., 2020: Attributing Increases in Fire Weather to Anthropogenic Climate Change Over France. ''Frontiers in Earth Science'' , '''8''' (104), doi:10.3389/feart.2020.00104. <div id="Basher--2016"></div> Basher, Z. and M. J. Costello, 2016: The past, present and future distribution of a deep-sea shrimp in the Southern Ocean. ''PeerJ'' , '''4''' , e1713, doi:10.7717/peerj.1713. <div id="Bates--2019"></div> Bates, A. E. et al., 2019: Climate resilience in marine protected areas and the ‘Protection Paradox’. ''Biological Conservation'' , '''236''' , 305–314, doi:10.1016/j.biocon.2019.05.005. <div id="Batt--2017"></div> Batt, R. D. et al., 2017: Gradual changes in range size accompany long-term trends in species richness. ''Ecology Letters'' , '''20''' (9), 1148–1157, doi:10.1111/ele.12812. <div id="Bellard--2014a"></div> Bellard, C., C. Leclerc and F. Courchamp, 2014a: Impact of sea level rise on the 10 insular biodiversity hotspots. ''Global Ecology and Biogeography'' , '''23''' (2), 203–212, doi:10.1111/geb.12093. <div id="Bellard--2016"></div> Bellard, C., C. Leclerc, B. D. Hoffmann and F. Courchamp, 2016: Vulnerability to climate change and sea-level rise of the 35th biodiversity hotspot, the Forests of East Australia. ''Environmental Conservation'' , '''43''' (1), 79–89, doi:10.1017/S037689291500020X. <div id="Bellard--2014b"></div> Bellard, C. et al., 2014b: Vulnerability of biodiversity hotspots to global change. ''Global Ecology and Biogeography'' , '''23''' (12), 1376–1386, doi:10.1111/geb.12228. <div id="Beltrán--2014"></div> Beltrán, B. J. et al., 2014: Effects of climate change and urban development on the distribution and conservation of vegetation in a Mediterranean type ecosystem. ''International Journal of Geographical Information Science'' , '''28''' (8), 1561–1589, doi:10.1080/13658816.2013.846472. <div id="Betzold--2015"></div> Betzold, C., 2015: Adapting to climate change in small island developing states. ''Climatic Change'' , '''133''' (3), 481–489, doi:10.1007/s10584-015-1408-0. <div id="Beyer--2018"></div> Beyer, H. L. et al., 2018: Risk-sensitive planning for conserving coral reefs under rapid climate change. ''Conservation Letters'' , '''11''' (6), e12587, doi:10.1111/conl.12587. <div id="Bianchi--2019"></div> Bianchi, C. N. et al., 2019: Abrupt change in a subtidal rocky reef community coincided with a rapid acceleration of sea water warming. ''Diversity'' , '''11''' (11), 215, doi:10.3390/d11110215. <div id="Bindoff--2019"></div> Bindoff, N. L., W. L. Cheung and J. G. Kairo, 2019: Changing ocean, marine ecosystems, and dependent communities. In: ''IPCC Special Report on the Ocean and Cryosphere in a Changing Climate'' [Pörtner, H.-O., D. C. Roberts, V. Masson-Delmotte, P. Zhai, M. Tignor, E. S. Poloczanska, K. Mintenbeck, M. Nicolai, A. Okem, J. Petzold, B. Rama and N. Weyer (eds.)], pp. 65–72. ISBN 0906-7590. <div id="Blowes--2019"></div> Blowes, S. A. et al., 2019: The geography of biodiversity change in marine and terrestrial assemblages. ''Science'' , '''366''' (6463), 339–345, doi:10.1126/science.aaw1620. <div id="Bonan--2016"></div> Bonan, G. B., 2016: Forests, Climate, and Public Policy: A 500-Year Interdisciplinary Odyssey. ''Annual Review of Ecology, Evolution, and Systematics'' , '''47''' (1), 97–121, doi:10.1146/annurev-ecolsys-121415-032359. <div id="Bowler--2020"></div> Bowler, D. E. et al., 2020: Mapping human pressures on biodiversity across the planet uncovers anthropogenic threat complexes. ''People and Nature'' , '''2''' (2), 380–394, doi:10.1002/pan3.10071. <div id="Braby--2014"></div> Braby, M. F., C. Bertelsmeier, C. Sanderson and B. M. Thistleton, 2014: Spatial distribution and range expansion of the Tawny Coster butterfly, Acraea terpsicore (Linnaeus, 1758) (Lepidoptera: Nymphalidae), in South-East Asia and Australia. ''Insect Conservation and Diversity'' , '''7''' (2), 132–143, doi:10.1111/icad.12038. <div id="Brander--2007"></div> Brander, K. M., 2007: Global fish production and climate change. ''Proceedings of the National Academy of Sciences of the United States of America'' , '''104''' (50), 19709–19714, doi:10.1073/pnas.0702059104. <div id="Brito-Morales--2018"></div> Brito-Morales, I. et al., 2018: Climate velocity can inform conservation in a warming world. ''Trends Ecol. Evol.'' , '''33''' (6), 441–457, doi:10.1016/j.tree.2018.03.009. <div id="Brito-Morales--2020"></div> Brito-Morales, I. et al., 2020: Climate velocity reveals increasing exposure of deep-ocean biodiversity to future warming. ''Nature Climate Change'' , '''10''' (6), 576–581, doi:10.1038/s41558-020-0773-5. <div id="Brodie--2021"></div> Brodie, J. F. et al., 2021: Global policy for assisted colonization of species. ''Science'' , '''372''' (6541), 456–458. <div id="Brown--2015"></div> Brown, K. A. et al., 2015: Predicting plant diversity patterns in Madagascar: Understanding the effects of climate and land cover change in a biodiversity hotspot. ''PLOS ONE'' , '''10''' (4), e0122721, doi:10.1371/journal.pone.0122721. <div id="Brown--2020"></div> Brown, S. C. et al., 2020: Persistent Quaternary climate refugia are hospices for biodiversity in the Anthropocene. ''Nature Climate Change'' , '''10''' (3), 244–248, doi:10.1038/s41558-019-0682-7. <div id="Bruno--2018"></div> Bruno, J. F. et al., 2018: Climate change threatens the world’s marine protected areas. ''Nature Climate Change'' , '''8''' , 499–503. <div id="Burrows--2019"></div> Burrows, M. T. et al., 2019: Ocean community warming responses explained by thermal affinities and temperature gradients. ''Nature Climate Change'' , '''9''' (12), 959–963, doi:10.1038/s41558-019-0631-5. <div id="Burrows--2011"></div> Burrows, M. T. et al., 2011: The pace of shifting climate in marine and terrestrial ecosystems. ''Science'' , '''334''' (6056), 652–655, doi:10.1126/science.1210288. <div id="Burrows--2014"></div> Burrows, M. T. et al., 2014: Geographical limits to species-range shifts are suggested by climate velocity. ''Nature'' , '''507''' (7493), 492-+, doi:10.1038/nature12976. <div id="Cahill--2013"></div> Cahill, A. E. et al., 2013: How does climate change cause extinction? ''Proceedings of the Royal Society B: Biological Sciences'' , '''280''' (1750), doi:10.1098/rspb.2012.1890. <div id="Carter--2020"></div> Carter, A. L. et al., 2020: Assessing opportunities to support coral reef climate change refugia in MPAs: A case study at the Revillagigedo Archipelago. ''Marine Policy'' , '''112''' , 103769, doi:10.1016/j.marpol.2019.103769. <div id="Casazza--2014"></div> Casazza, G. et al., 2014: Climate change hastens the urgency of conservation for range-restricted plant species in the central-northern Mediterranean region. ''Biological Conservation'' , '''179''' , 129–138, doi:10.1016/j.biocon.2014.09.015. <div id="Certain--2015"></div> Certain, G. and B. Planque, 2015: Biodiversity baseline for large marine ecosystems: an example from the Barents Sea. ''ICES Journal of Marine Science'' , '''72''' (6), 1756–1768, doi:10.1093/icesjms/fsv040. <div id="Chaudhary--2021"></div> Chaudhary, C., A. J. Richardson, D. S. Schoeman and M. J. [[#Costello--2021|Costello, 2021]] : Global warming is causing a more pronounced dip in marine species richness around the equator. ''Proceedings of the National Academy of Sciences'' , '''118''' (15), e2015094118, doi:10.1073/pnas.2015094118. <div id="Chefaoui--2018"></div> 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 Biology'' , '''24''' (10), 4919–4928, doi:10.1111/gcb.14401. <div id="Cheung--2015"></div> 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. ''Progress in Oceanography'' , '''130''' , 19–31, doi:10.1016/j.pocean.2014.09.003. <div id="Cheung--2018"></div> Cheung, W. W. L., M. C. Jones, G. Reygondeau and T. L. Frölicher, 2018: Opportunities for climate-risk reduction through effective fisheries management. ''Global Change Biology'' , '''24''' (11), 5149–5163, doi:10.1111/gcb.14390. <div id="Cohen--2018"></div> Cohen, M. C. L. et al., 2018: Decadal-scale dynamics of an Amazonian mangrove caused by climate and sea level changes: Inferences from spatial–temporal analysis and digital elevation models. ''Earth Surf. Process. Landforms'' , '''43''' (14), 2876–2888, doi:10.1002/esp.4440. <div id="Collen--2014"></div> Collen, B. et al., 2014: Global patterns of freshwater species diversity, threat and endemism. ''Glob Ecol Biogeogr'' , '''23''' (1), 40–51, doi:10.1111/geb.12096. <div id="Comte--2013"></div> Comte, l., L. Buisson, M. Daufresne and G. Grenouillet, 2013: Climate-induced changes in the distribution of freshwater fish: observed and predicted trends. ''Freshwater Biology'' , '''58''' (4), 625–639, doi:10.1111/fwb.12081. <div id="Conti--2014"></div> Conti, L., A. Schmidt-Kloiber, G. Grenouillet and W. Graf, 2014: A trait-based approach to assess the vulnerability of European aquatic insects to climate change. ''Hydrobiologia'' , '''721''' (1), 297–315, doi:10.1007/s10750-013-1690-7. <div id="Corlett--2011"></div> Corlett, R. T., 2011: Impacts of warming on tropical lowland rainforests. ''Trends Ecol. Evol.'' , '''26''' (11), 606–613, doi:10.1016/j.tree.2011.06.015. <div id="Costello--2014"></div> Costello, M. J., 2014: Long live Marine Reserves: A review of experiences and benefits. ''Biological Conservation'' , '''176''' , 289–296, doi:10.1016/j.biocon.2014.04.023. <div id="Costello--2015"></div> Costello, M. J., 2015: Biodiversity: the known, unknown, and rates of extinction. ''Current biology : CB'' , '''25''' (9), R368–371, doi:10.1016/j.cub.2015.03.051. <div id="Costello--2019"></div> Costello, M. J., 2019: Unhelpful inflation of threatened species. ''Science'' , '''365''' (6451), 332–333, doi:10.1126/science.aay3467. <div id="Costello--2021"></div> Costello, M. J., 2021: Biodiversity conservation through protected areas supports healthy ecosystems and resilience to climate change and other disturbances. In: ''Imperiled: The Encyclopedia of Conservation. Reference Module in Earth Systems and Environmental Sciences'' [Goldstein, M. I. and D. A. DellaSala (eds.)]. Elsevier, Amsterdam. ISBN 9780124095489. <div id="Costello--2010"></div> Costello, M. J. et al., 2010: A census of marine biodiversity knowledge, resources, and future challenges. ''PLOS ONE'' , '''5''' (8), e12110, doi:10.1371/journal.pone.0012110. <div id="Costello--2017"></div> Costello, M. J. et al., 2017: Marine biogeographic realms and species endemicity. ''Nature Communications'' , '''8''' (1), 1057, doi:10.1038/s41467-017-01121-2. <div id="Cox--2018"></div> Cox, M. J. et al., 2018: No evidence for a decline in the density of Antarctic krill Euphausia superba Dana, 1850, in the Southwest Atlantic sector between 1976 and 2016. ''Journal of Crustacean Biology'' , '''38''' (6), 656–661, doi:10.1093/jcbiol/ruy072. <div id="Cristofari--2018"></div> Cristofari, R. et al., 2018: Climate-driven range shifts of the king penguin in a fragmented ecosystem. ''Nature Climate Change'' , '''8''' (3), 245–251, doi:10.1038/s41558-018-0084-2. <div id="Darwall--2018"></div> Darwall, W. et al., 2018: The Alliance for Freshwater Life: A global call to unite efforts for freshwater biodiversity science and conservation. ''Aquatic Conservation: Marine and Freshwater Ecosystems'' , '''28''' (4), 1015–1022, doi:10.1002/aqc.2958. <div id="DasGupta--2013"></div> DasGupta, R. and R. Shaw, 2013: Cumulative impacts of human interventions and climate change on mangrove ecosystems of south and southeast asia: An overview. ''Journal of Ecosystems'' , '''2013''' , 15, doi:10.1155/2013/379429. <div id="Davidson--2020"></div> Davidson, S. C. et al., 2020: Ecological insights from three decades of animal movement tracking across a changing Arctic. ''Science'' , '''370''' (6517), 712–715, doi:10.1126/science.abb7080. <div id="Dawson--2017"></div> Dawson, W. et al., 2017: Global hotspots and correlates of alien species richness across taxonomic groups. ''Nature Ecology & Evolution'' , '''1''' (7), 0186, doi:10.1038/s41559-017-0186. <div id="de Faria--2018"></div> de Faria, A., M. Marabesi, M. Gaspar and M. França, 2018: The increase of current atmospheric CO2 and temperature can benefit leaf gas exchanges, carbohydrate content and growth in C4 grass invaders of the Cerrado biome. ''Plant Physiology and Biochemistry'' , '''127''' , 608–616, doi:10.1016/j.plaphy.2018.04.042. <div id="de Oliveira--2015"></div> de Oliveira, G. et al., 2015: Conservation biogeography of the Cerrado’s wild edible plants under climate change: Linking biotic stability with agricultural expansion. ''American journal of botany'' , '''102''' (6), 870–877, doi:10.3732/ajb.1400352. <div id="DeCarlo--2019"></div> DeCarlo, T. M. et al., 2019: Acclimatization of massive reef-building corals to consecutive heatwaves. ''Proceedings. Biological sciences'' , '''286''' (1898), 20190235, doi:10.1098/rspb.2019.0235. <div id="Dobson--2020"></div> Dobson, A. P. et al., 2020: Ecology and economics for pandemic prevention. ''Science'' , '''369''' (6502), 379–381, doi:10.1126/science.abc3189. <div id="Doney--2012"></div> Doney, S. C. et al., 2012: Climate change impacts on marine ecosystems. ''Annual Review of Marine Science'' , '''4''' , 11–37, doi:10.1146/annurev-marine-041911-111611. <div id="Donovan--2021"></div> Donovan, M. K. et al., 2021: Local conditions magnify coral loss after marine heatwaves. ''Science'' , '''372''' (6545), 977–980, doi:10.1126/science.abd9464. <div id="Dudgeon--2006"></div> Dudgeon, D. et al., 2006: Freshwater biodiversity: importance, threats, status and conservation challenges. ''Biological Reviews'' , '''81''' (2), 163–182, doi:10.1017/s1464793105006950. <div id="Dueñas--2021"></div> Dueñas, M.-A., D. J. Hemming, A. Roberts and H. Diaz-Soltero, 2021: The threat of invasive species to IUCN-listed critically endangered species: A systematic review. ''Global Ecology and Conservation'' , '''26''' , e01476, doi:10.1016/j.gecco.2021.e01476. <div id="Duffy--2016"></div> Duffy, J. E. et al., 2016: Biodiversity enhances reef fish biomass and resistance to climate change. ''Proceedings of the National Academy of Science (USA)'' , '''113''' (22), 6230–6235, doi:10.1073/pnas.1524465113. <div id="Enquist--2019"></div> Enquist, B. J. et al., 2019: The commonness of rarity: Global and future distribution of rarity across land plants. ''Science Advances'' , '''5''' (11), eaaz0414, doi:10.1126/sciadv.aaz0414. <div id="Farashi--2018"></div> Farashi, A. and M. Erfani, 2018: Modeling of habitat suitability of Asiatic black bear (Ursus thibetanus gedrosianus) in Iran in future. ''Acta Ecologica Sinica'' , '''38''' (1), 9–14, doi:10.1016/j.chnaes.2017.07.003. <div id="Fernandes--2018"></div> Fernandes, G. W. et al., 2018: The deadly route to collapse and the uncertain fate of Brazilian rupestrian grasslands. ''Biodiversity and Conservation'' , '''27''' (10), 2587–2603, doi:10.1007/s10531-018-1556-4. <div id="Ferreira--2019"></div> Ferreira, M. T. et al., 2019: Implications of climate change to the design of protected areas: The case study of small islands (Azores). ''PLOS ONE'' , '''14''' (6), e0218168, doi:10.1371/journal.pone.0218168. <div id="Fick--2017"></div> Fick, S. E. and R. J. Hijmans, 2017: WorldClim 2: new 1-km spatial resolution climate surfaces for global land areas. ''International Journal of Climatology'' , '''37''' (12), 4302–4315, doi:10.1002/joc.5086. <div id="Fischlin--2007"></div> Fischlin, A. et al., 2007: Ecosystems their properties goods and services. In: ''Climate Change 2007: Impacts, Adaptation and Vulnerability. Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change'' [Parry, M. L., O. F. Canziani, J. P. Palutikof, P. J. v. d. Linden and C. E. Hanson (eds.)]. Cambridge University Press, Cambridge, pp. 211–272. <div id="Flousek--2015"></div> Flousek, J., T. Telenský, J. Hanzelka and J. Reif, 2015: Population Trends of Central European Montane Birds Provide Evidence for Adverse Impacts of Climate Change on High-Altitude Species. ''PLOS ONE'' , '''10''' (10), e0139465, doi:10.1371/journal.pone.0139465. <div id="Foden--2013"></div> Foden, W. B. et al., 2013: Identifying the world’s most climate change vulnerable species: A systematic trait-based assessment of all birds, amphibians and corals. ''PLOS ONE'' , '''8''' (6), e65427, doi:10.1371/journal.pone.0065427. <div id="Fontúrbel--2018"></div> Fontúrbel, F. E., A. Lara, D. Lobos and C. Little, 2018: The cascade impacts of climate change could threaten key ecological interactions. ''Ecosphere'' , '''9''' (12), e02485, doi:10.1002/ecs2.2485. <div id="Fortini--2015"></div> Fortini, L. B. et al., 2015: Large-Scale Range Collapse of Hawaiian Forest Birds under Climate Change and the Need 21st Century Conservation Options. ''PLOS ONE'' , '''10''' (10), e0140389, doi:10.1371/journal.pone.0140389. <div id="Fossheim--2015"></div> Fossheim, M. et al., 2015: Recent warming leads to a rapid borealization of fish communities in the Arctic. ''Nature Climate Change'' , '''5''' , 673, doi:10.1038/nclimate2647. <div id="Foster--2018"></div> Foster, G. L., P. Hull, D. J. Lunt and J. C. Zachos, 2018: Placing our current ‘hyperthermal’ in the context of rapid climate change in our geological past. ''Philosophical Transactions of the Royal Society A'' , '''376''' (2130), 20170086, doi:10.1098/rsta.2017.0086. <div id="Frederico--2016"></div> Frederico, R. G., J. D. Olden and J. Zuanon, 2016: Climate change sensitivity of threatened, and largely unprotected, Amazonian fishes. ''Aquatic Conservation: Marine and Freshwater Ecosystems'' , '''26''' (S1), 91–102, doi:10.1002/aqc.2658. <div id="Freeman--2018"></div> Freeman, B. G., M. N. Scholer, V. Ruiz-Gutierrez and J. W. Fitzpatrick, 2018: Climate change causes upslope shifts and mountaintop extirpations in a tropical bird community. ''Proceedings of the National Academy of Sciences'' , '''115''' (47), 11982–11987, doi:10.1073/pnas.1804224115. <div id="Fuchs--2020"></div> Fuchs, H. L. et al., 2020: Wrong-way migrations of benthic species driven by ocean warming and larval transport. ''Nature Climate Change'' , '''10''' , 1052–1056, doi:10.1038/s41558-020-0894-x. <div id="Fulton--2017"></div> Fulton, G. R., 2017: The Bramble Cay melomys: the first mammalian extinction due to human-induced climate change. ''Pacific Conservation Biology'' , '''23''' (1), 1–3, doi:10.1071/PCV23N1_ED. <div id="Gallagher--2009"></div> Gallagher, R. V., L. Hughes and M. R. Leishman, 2009: Phenological trends among Australian alpine species: using herbarium records to identify climate-change indicators. ''Australian Journal of Botany'' , '''57''' (1), 1–9, doi:10.1071/BT08051. <div id="Gann--2019"></div> Gann, G. D. et al., 2019: International principles and standards for the practice of ecological restoration. Second edition. ''Restoration Ecology'' , '''27''' (S1), S1-S46, doi:10.1111/rec.13035. <div id="Garcia--2014"></div> Garcia, J. et al., 2014: Intake, grazing time and performance of steers supplemented in Brachiaria decumbens pastures during the dry season. ''Semina: Ciências Agrárias'' , '''35''' (4), 2095–2106, doi:10.5433/1679-0359.2014v35n4p2095. <div id="García Molinos--2016"></div> García Molinos, J. et al., 2016: Climate velocity and the future global redistribution of marine biodiversity. ''Nature Climate Change'' , '''6''' (1), 83–88, doi:10.1038/nclimate2769. <div id="García Molinos--2019"></div> García Molinos, J., D. S. Schoeman, C. J. Brown and M. T. Burrows, 2019: VoCC: An r package for calculating the velocity of climate change and related climatic metrics. ''Methods in Ecology and Evolution'' , '''10''' (12), 2195–2202, doi:10.1111/2041-210X.13295. <div id="Gattuso--2015"></div> Gattuso, J.-P. et al., 2015: Contrasting futures for ocean and society from different anthropogenic CO 2 emissions scenarios. ''Science'' , '''349''' (6243), doi:10.1126/science.aac4722. <div id="Ghulam--2014"></div> Ghulam, A., 2014: Monitoring tropical forest degradation in Betampona Nature Reserve, Madagascar using multisource remote sensing data fusion. ''IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing'' , '''7''' (12), 4960–4971, doi:10.1109/JSTARS.2014.2319314. <div id="Givan--2018"></div> Givan, O., D. Edelist, O. Sonin and J. Belmaker, 2018: Thermal affinity as the dominant factor changing Mediterranean fish abundances. ''Global Change Biology'' , '''24''' (1), e80-e89, doi:10.1111/gcb.13835. <div id="Goldstein--2020"></div> Goldstein, A. et al., 2020: Protecting irrecoverable carbon in Earth’s ecosystems. ''Nature Climate Change'' , '''10''' (4), 287–295, doi:10.1038/s41558-020-0738-8. <div id="González-Orozco--2016"></div> González-Orozco, C. E. et al., 2016: Phylogenetic approaches reveal biodiversity threats under climate change. ''Nature Climate Change'' , '''6''' , 1110, doi:10.1038/nclimate3126. <div id="Goulding--2016"></div> Goulding, W., P. T. Moss and C. A. McAlpine, 2016: Cascading effects of cyclones on the biodiversity of Southwest Pacific islands. ''Biological Conservation'' , '''193''' , 143–152, doi:10.1016/j.biocon.2015.11.022. <div id="Grabowski--2013"></div> Grabowski, M. M. et al., 2013: Do Arctic-nesting birds respond to earlier snowmelt? A multi-species study in north Yukon, Canada. ''Polar Biology'' , '''36''' (8), 1097–1105, doi:10.1007/s00300-013-1332-6. <div id="Grafton--2013"></div> Grafton, R. Q. et al., 2013: Global insights into water resources, climate change and governance. ''Nature Climate Change'' , '''3''' , 315–321, doi:10.1038/nclimate1746. <div id="Grebmeier--2018"></div> Grebmeier, J. M., K. E. Frey, L. W. Cooper and M. Kędra, 2018: Trends in benthic macrofaunal populations, seasonal sea ice persistence, and bottom water temperatures in the Bering Strait region. ''Oceanography'' , '''31''' (2), 136–151, doi:10.5670/oceanog.2018.224. <div id="Grenyer--2006"></div> Grenyer, R. et al., 2006: Global distribution and conservation of rare and threatened vertebrates. ''Nature'' , '''444''' (7115), 93–96, doi:10.1038/nature05237. <div id="Griffiths--2017"></div> Griffiths, H. J., A. J. S. Meijers and T. J. Bracegirdle, 2017: More losers than winners in a century of future Southern Ocean seafloor warming. ''Nature Climate Change'' , '''7''' , 749, doi:10.1038/nclimate3377. <div id="Gruber--2012"></div> Gruber, N. et al., 2012: Rapid Progression of Ocean Acidification in the California Current System. ''Science'' , '''337''' (6091), 220–223, doi:10.1126/science.1216773. <div id="Gudmundsson--2017"></div> Gudmundsson, L., S. I. Seneviratne and X. Zhang, 2017: Anthropogenic climate change detected in European renewable freshwater resources. ''Nature Climate Change'' , '''7''' (11), 813–816, doi:10.1038/nclimate3416. <div id="Halpern--2015"></div> Halpern, B. S. et al., 2015: Spatial and temporal changes in cumulative human impacts on the world’s ocean. ''Nature Communications'' , '''6''' , 7615, doi:10.1038/ncomms8615. <div id="Halpern--2008"></div> Halpern, B. S. et al., 2008: A global map of human impact on marine ecosystems. ''Science'' , '''319''' (5865), 948–952, doi:10.1126/science.1149345. <div id="Hannah--2020"></div> Hannah, L. et al., 2020: 30% land conservation and climate action reduces tropical extinction risk by more than 50%. ''Ecography'' , '''43''' (7), 943–953, doi:10.1111/ecog.05166. <div id="Harris--2020"></div> Harris, I., T. J. Osborn, P. Jones and D. Lister, 2020: Version 4 of the CRU TS monthly high-resolution gridded multivariate climate dataset. ''Scientific Data'' , '''7''' (1), 109, doi:10.1038/s41597-020-0453-3. <div id="Harrison--2018"></div> Harrison, I. et al., 2018: The freshwater biodiversity crisis. ''Science'' , '''362''' (6421), 1369–1369, doi:10.1126/science.aav9242. <div id="Harter--2015"></div> Harter, D. E. V. et al., 2015: Impacts of global climate change on the floras of oceanic islands – Projections, implications and current knowledge. ''Perspectives in Plant Ecology, Evolution and Systematics'' , '''17''' (2), 160–183, doi:10.1016/j.ppees.2015.01.003. <div id="Heikkinen--2020"></div> Heikkinen, R. K. et al., 2020: Fine-grained climate velocities reveal vulnerability of protected areas to climate change. ''Scientific Reports'' , '''10''' (1), 1678, doi:10.1038/s41598-020-58638-8. <div id="Hermes--2018"></div> Hermes, C., G. Segelbacher and H. M. Schaefer, 2018: A framework for prioritizing areas for conservation in tropical montane cloud forests. ''Écoscience'' , '''25''' (1), 97–108, doi:10.1080/11956860.2017.1419787. <div id="Herrera--2015"></div> Herrera, J., A. Solari and L. O. Lucifora, 2015: Unanticipated effect of climate change on an aquatic top predator of the Atlantic rainforest. ''Aquatic Conservation: Marine and Freshwater Ecosystems'' , '''25''' (6), 817–828, doi:10.1002/aqc.2536. <div id="Hidasi-Neto--2019"></div> Hidasi-Neto, J. et al., 2019: Climate change will drive mammal species loss and biotic homogenization in the Cerrado Biodiversity Hotspot. ''Perspectives in Ecology and Conservation'' , '''17''' (2), 57–63, doi:10.1016/j.pecon.2019.02.001. <div id="Hobday--2018"></div> Hobday, A. J. et al., 2018: Categorizing and naming marine heatwaves. ''Oceanography'' , '''31''' (2), 162–173, doi:10.5670/oceanog.2018.205. <div id="Hoffmann--2019"></div> Hoffmann, A. A. et al., 2019: Impacts of recent climate change on terrestrial flora and fauna: Some emerging Australian examples. ''Austral Ecol.'' , '''44''' (1), 3–27, doi:10.1111/aec.12674. <div id="Holmes--2015"></div> Holmes, I., K. McLaren and B. Wilson, 2015: Niche modeling for management-ready information in little-studied, threatened frog species assemblages. ''Journal for Nature Conservation'' , '''28''' , 26–34, doi:10.1016/j.jnc.2015.08.005. <div id="Hughes--2019a"></div> Hughes, L., A. Dean, W. Steffen and M. Rice, 2019a: ''This is what climate change looks like'' . Climate Council of Australia. Available at: https://www.climatecouncil.org.au/wp-content/uploads/2019/09/This-is-What-Climate-Change-Looks-Like.pdf . <div id="Hughes--2018a"></div> Hughes, T. P. et al., 2018a: Spatial and temporal patterns of mass bleaching of corals in the Anthropocene. ''Science'' , '''359''' (6371), 80–83, doi:10.1126/science.aan8048. <div id="Hughes--2019b"></div> Hughes, T. P. et al., 2019b: Global warming impairs stock–recruitment dynamics of corals. ''Nature'' , '''568''' (7752), 387–390, doi:10.1038/s41586-019-1081-y. <div id="Hughes--2018b"></div> Hughes, T. P. et al., 2018b: Global warming transforms coral reef assemblages. ''Nature'' , '''556''' (7702), 492–496, doi:10.1038/s41586-018-0041-2. <div id="Huntley--2012"></div> Huntley, B. and P. Barnard, 2012: Potential impacts of climatic change on southern African birds of fynbos and grassland biodiversity hotspots. ''Diversity and Distributions'' , '''18''' (8), 769–781, doi:10.1111/j.1472-4642.2012.00890.x. <div id="Ibisch--2016"></div> Ibisch, P. L. et al., 2016: A global map of roadless areas and their conservation status. ''Science'' , '''354''' (6318), 1423–1427, doi:doi:10.1126/science.aaf7166. <div id="IPCC--2007"></div> [[#IPCC--2007|IPCC, 2007]] : ''Climate Change 2007: Impacts, Adaptation and Vulnerability. Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change'' . Cambridge University Press, Cambridge, 1000 pp. <div id="IPCC--2014"></div> [[#IPCC--2014|IPCC, 2014]] : ''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'' . Cambridge University Press, Cambridge, UK, 1132 pp. <div id="IPCC--2018"></div> [[#IPCC--2018|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.)]. IPCC Special Report. <div id="IPCC--2019a"></div> [[#IPCC--2019a|IPCC, 2019a]] : Climate Change and Land: An IPCC special report on climate change, desertification, land degradation, sustainable land management, food security, and greenhouse gas fluxes in terrestrial ecosystems (SRCCL). In: ''Climate Change and Land: an IPCC special report on climate change, desertification, land degradation, sustainable land management, food security, and greenhouse gas fluxes in terrestrial ecosystems (SRCCL)'' [Shukla, P. R., J. Skea, E. Calvo Buendia, V. Masson-Delmotte, H.-O. Pörtner, D. C. Roberts, P. Zhai, R. Slade, S. Connors, R. van Diemen, M. Ferrat, E. Haughey, S. Luz, S. Neogi, M. Pathak, J. Petzold, J. Portugal Pereira, P. Vyas, E. Huntley, K. Kissick, M. Belkacemi and J. Malley (eds.)]. IPCC with World Meteorological Organisation (WMO), and United Nations Environmental Program (UNEP), Geneva, Switzerland, pp. 1542, In press. <div id="IPCC--2019b"></div> [[#IPCC--2019b|IPCC, 2019b]] : Summary for Policymakers. In: ''IPCC Special Report on the Ocean and Cryosphere in a Changing Climate'' [H.-O. Pörtner, D. C. R., V. Masson-Delmotte, P. Zhai, M. Tignor, E. Poloczanska, K. Mintenbeck, M. Nicolai, A. Okem, J. Petzold, B. Rama, N. Weyer (ed.)], pp. in press. ISBN 1354-1013. <div id="Isbell--2015"></div> Isbell, F. et al., 2015: Biodiversity increases the resistance of ecosystem productivity to climate extremes. ''Nature'' , '''526''' , 574, doi:10.1038/nature15374. <div id="James--2017"></div> James, C. S. et al., 2017: Sink or swim? Potential for high faunal turnover in Australian rivers under climate change. ''Journal of Biogeography'' , '''44''' (3), 489–501, doi:10.1111/jbi.12926. <div id="Janse--2015"></div> Janse, J. H. et al., 2015: GLOBIO-Aquatic, a global model of human impact on the biodiversity of inland aquatic ecosystems. ''Environmental Science & Policy'' , '''48''' , 99–114, doi:10.1016/j.envsci.2014.12.007. <div id="Jarić--2019"></div> Jarić, I. et al., 2019: Susceptibility of European freshwater fish to climate change: Species profiling based on life-history and environmental characteristics. ''Global Change Biology'' , '''25''' (2), 448–458, doi:10.1111/gcb.14518. <div id="Jefferson--2019"></div> Jefferson, T. and M. J. [[#Costello--2019|Costello, 2019]] : Hotspots of marine biodiversity. In: ''Reference Module in Earth Systems and Environmental Sciences'' . Elsevier. ISBN 978-0-12-409548-9. <div id="Jenouvrier--2014"></div> Jenouvrier, S. et al., 2014: Projected continent-wide declines of the emperor penguin under climate change. ''Nature Climate Change'' , '''4''' (8), 715–718, doi:10.1038/nclimate2280. <div id="Jézéquel--2020"></div> Jézéquel, C. et al., 2020: Freshwater fish diversity hotspots for conservation priorities in the Amazon Basin. ''Conservation Biology'' , '''34''' (4), 956–965, doi:10.1111/cobi.13466. <div id="Jones--2015"></div> Jones, M. C. and W. W. L. Cheung, 2015: Multi-model ensemble projections of climate change effects on global marine biodiversity. ''ICES Journal of Marine Science'' , '''72''' (3), 741–752, doi:10.1093/icesjms/fsu172. <div id="Jonsson--2018"></div> Jonsson, P. R. et al., 2018: High climate velocity and population fragmentation may constrain climate-driven range shift of the key habitat former ''Fucus vesiculosus'' . ''Diversity and Distributions'' , '''24''' (7), 892–905, doi:10.1111/ddi.12733. <div id="Jorda--2020"></div> Jorda, G. et al., 2020: Ocean warming compresses the three-dimensional habitat of marine life. ''Nature Ecology & Evolution'' , '''4''' (1), 109–114, doi:10.1038/s41559-019-1058-0. <div id="Jung--2021"></div> Jung, M. et al., 2021: Areas of global importance for conserving terrestrial biodiversity, carbon and water. ''Nature Ecology & Evolution'' , '''4''' , 1499–1509, doi:10.1038/s41559-021-01528-7. <div id="Keppel--2014"></div> Keppel, G., C. Morrison, J.-Y. Meyer and H. J. Boehmer, 2014: Isolated and vulnerable: the history and future of Pacific Island terrestrial biodiversity. ''Pacific Conservation Biology'' , '''20''' (2), 136–145, doi:10.1071/PC140136. <div id="Khormi--2014"></div> Khormi, H. M. and L. Kumar, 2014: Climate change and the potential global distribution of Aedes aegypti: spatial modelling using GIS and CLIMEX. ''Geospat Health'' , '''8''' (2), 405–415, doi:10.4081/gh.2014.29. <div id="Kidane--2019"></div> Kidane, Y. O., M. J. Steinbauer and C. Beierkuhnlein, 2019: Dead end for endemic plant species? A biodiversity hotspot under pressure. ''Global Ecology and Conservation'' , '''19''' , e00670, doi:10.1016/j.gecco.2019.e00670. <div id="Kiessling--2012"></div> Kiessling, W. et al., 2012: Equatorial decline of reef corals during the last Pleistocene interglacial. ''Proceedings of the National Academy of Sciences of the United States of America'' , '''109''' (52), 21378–21383, doi:10.1073/pnas.1214037110. <div id="King--2017"></div> King, A. D., D. J. Karoly and B. J. Henley, 2017: Australian climate extremes at 1.5°C and 2°C of global warming. ''Nature Climate Change'' , '''7''' (6), 412–416, doi:10.1038/nclimate3296. <div id="Kjesbu--2014"></div> Kjesbu, O. S. et al., 2014: Synergies between climate and management for Atlantic cod fisheries at high latitudes. ''Proceedings of the National Academy of Sciences'' , '''111''' (9), 3478–3483, doi:10.1073/pnas.1316342111. <div id="Kleypas--2021"></div> Kleypas, J. et al., 2021: Designing a blueprint for coral reef survival. ''Biological Conservation'' , '''257''' , 109107, doi:10.1016/j.biocon.2021.109107. <div id="Knouft--2017"></div> Knouft, J. H. and D. L. Ficklin, 2017: The Potential Impacts of Climate Change on Biodiversity in Flowing Freshwater Systems. ''Annual Review of Ecology, Evolution, and Systematics'' , '''48''' (1), 111–133, doi:10.1146/annurev-ecolsys-110316-022803. <div id="Kocsis--2021"></div> Kocsis, Á. T., Q. Zhao, M. J. Costello and W. Kiessling, 2021: Not all biodiversity richspots are climate refugia. ''Biogeosciences Discussions'' , '''2021''' , 1–18, doi:10.5194/bg-2021-179. <div id="Koenigstein--2018"></div> Koenigstein, S. et al., 2018: Forecasting future recruitment success for Atlantic cod in the warming and acidifying Barents Sea. ''Global Change Biology'' , '''24''' (1), 526–535, doi:10.1111/gcb.13848. <div id="Koide--2017"></div> Koide, D., K. Yoshida, C. C. Daehler and D. Mueller-Dombois, 2017: An upward elevation shift of native and non-native vascular plants over 40 years on the island of Hawai’i. ''Journal of Vegetation Science'' , '''28''' (5), 939–950, doi:10.1111/jvs.12549. <div id="Kortsch--2012"></div> Kortsch, S. et al., 2012: Climate-driven regime shifts in Arctic marine benthos. ''Proceedings of the National Academy of Sciences'' , '''109''' (35), 14052–14057, doi:10.1073/pnas.1207509109. <div id="Kuhlmann--2012"></div> Kuhlmann, M., D. Guo, R. Veldtman and J. Donaldson, 2012: Consequences of warming up a hotspot: species range shifts within a centre of bee diversity. ''Diversity and Distributions'' , '''18''' (9), 885–897, doi:10.1111/j.1472-4642.2011.00877.x. <div id="Kumagai--2018"></div> Kumagai, N. H. et al., 2018: Ocean currents and herbivory drive macroalgae-to-coral community shift under climate warming. ''Proceedings of the National Academy of Sciences'' , '''115''' , 8990–8995, doi:10.1073/pnas.1716826115. <div id="Laffoley--2016"></div> Laffoley, D. D. A. and J. Baxter, 2016: ''Explaining ocean warming: Causes, scale, effects and consequences'' . IUCN Gland, Switzerland. ISBN 2831718066. <div id="Lamsal--2017"></div> Lamsal, P., L. Kumar and K. Atreya, 2017: Historical evidence of climatic variability and changes, and its effect on high-altitude regions: insights from Rara and Langtang, Nepal. ''International Journal of Sustainable Development & World Ecology'' , '''24''' (6), 471–484, doi:10.1080/13504509.2016.1198939. <div id="Lanzante--2018"></div> Lanzante, J. R. et al., 2018: Some Pitfalls in Statistical Downscaling of Future Climate. ''Bulletin of the American Meteorological Society'' , '''99''' (4), 791–803, doi:10.1175/BAMS-D-17-0046.1. <div id="Larsen--2014"></div> 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'' [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 UK and New York, NY, USA. <div id="Laverick--2019"></div> Laverick, J. H. and A. D. Rogers, 2019: Mesophotic Coral Ecosystems. In: ''Reference Module in Earth Systems and Environmental Sciences'' . Elsevier. ISBN 978-0-12-409548-9. <div id="Le Roux--2019"></div> Le Roux, J. J. et al., 2019: Recent Anthropogenic Plant Extinctions Differ in Biodiversity Hotspots and Coldspots. ''Current Biology'' , '''29''' (17), 2912–2918.e2912, doi:10.1016/j.cub.2019.07.063. <div id="Lee--2016"></div> Lee, A. T. K. and P. Barnard, 2016: Endemic birds of the Fynbos biome: a conservation assessment and impacts of climate change. ''Bird Conservation International'' , '''26''' (1), 52–68, doi:10.1017/S0959270914000537. <div id="Lenoir--2020"></div> Lenoir, J. et al., 2020: Species better track climate warming in the oceans than on land. ''Nature Ecology & Evolution'' , '''4''' (1044–1059), doi:10.1038/s41559-020-1198-2. <div id="Lenoir--2015"></div> Lenoir, J. and J. C. Svenning, 2015: Climate-related range shifts – a global multidimensional synthesis and new research directions. ''Ecography'' , '''38''' (1), 15–28, doi:10.1111/ecog.00967. <div id="Leroy--2019"></div> Leroy, B. et al., 2019: Global biogeographical regions of freshwater fish species. ''Journal of Biogeography'' , '''NA''' (0), doi:10.1111/jbi.13674. <div id="Lima--2019"></div> Lima, A. A. d., M. C. Ribeiro, C. E. d. V. Grelle and M. P. Pinto, 2019: Impacts of climate changes on spatio-temporal diversity patterns of Atlantic Forest primates. ''Perspectives in Ecology and Conservation'' , '''17''' (2), 50–56, doi:10.1016/j.pecon.2019.04.004. <div id="Loarie--2009"></div> Loarie, S. R. et al., 2009: The velocity of climate change. ''Nature'' , '''462''' (7276), 1052–1055. <div id="Lourenço-de-Moraes--2019"></div> Lourenço-de-Moraes, R. et al., 2019: Climate change will decrease the range size of snake species under negligible protection in the Brazilian Atlantic Forest hotspot. ''Scientific Reports'' , '''9''' (1), 8523, doi:10.1038/s41598-019-44732-z. <div id="Lovelock--2020"></div> Lovelock, C. E. and R. Reef, 2020: Variable Impacts of Climate Change on Blue Carbon. ''One Earth'' , '''3''' (2), 195–211, doi:10.1016/j.oneear.2020.07.010. <div id="Loyola--2014"></div> Loyola, R. D. et al., 2014: Clade-specific consequences of climate change to amphibians in Atlantic Forest protected areas. ''Ecography'' , '''37''' (1), 65–72, doi:10.1111/j.1600-0587.2013.00396.x. <div id="Lozano--2017"></div> Lozano, O. M. et al., 2017: Assessing climate change impacts on wildfire exposure in Mediterranean areas. ''Risk Analysis'' , '''37''' (10), 1898–1916, doi:10.1111/risa.12739. <div id="Luke--2016"></div> Luke, D., K. McLaren and B. Wilson, 2016: Short-term Dynamics and the Effects of Biotic and Abiotic Factors on Plant Physiognomic Groups in a Hurricane-impacted Lower Montane Tropical Forest. ''Biotropica'' , '''48''' (3), 332–341, doi:10.1111/btp.12288. <div id="Ma--2016"></div> Ma, W. et al., 2016: Fundamental shifts of central hardwood forests under climate change. ''Ecological Modelling'' , '''332''' , 28–41, doi:10.1016/j.ecolmodel.2016.03.021. <div id="Mackey--2020"></div> Mackey, B. et al., 2020: Understanding the importance of primary tropical forest protection as a mitigation strategy. ''Mitig Adapt Strateg Glob Change'' , '''25''' (5), 763–787, doi:10.1007/s11027-019-09891-4. <div id="Maharaj--2018"></div> Maharaj, S. et al., 2018: Assessing protected area effectiveness within the Caribbean under changing climate conditions: A case study of the small island, Trinidad. ''Land Use Policy'' , '''81''' , 185–193. <div id="Maharaj--2013"></div> Maharaj, S. S. and M. New, 2013: Modelling individual and collective species responses to climate change within Small Island States. ''Biological Conservation'' , '''167''' , 283–291, doi:10.1016/j.biocon.2013.08.027. <div id="Manes--2021"></div> Manes, S. et al., 2021: Endemism increases species’ climate change risk in areas of global biodiversity importance. ''Biological Conservation'' , '''257''' , 109070, doi:10.1016/j.biocon.2021.109070. <div id="Mantyka-Pringle--2015"></div> Mantyka-Pringle, C. S. et al., 2015: Climate change modifies risk of global biodiversity loss due to land-cover change. ''Biological Conservation'' , '''187''' , 103–111, doi:10.1016/j.biocon.2015.04.016. <div id="Mariani--2020"></div> Mariani, G. et al., 2020: Let more big fish sink: Fisheries prevent blue carbon sequestration—half in unprofitable areas. ''Science Advances'' , '''6''' (44), eabb4848, doi:10.1126/sciadv.abb4848. <div id="Markovic--2014"></div> Markovic, D. et al., 2014: Europe’s freshwater biodiversity under climate change: distribution shifts and conservation needs. ''Diversity and Distributions'' , '''20''' (9), 1097–1107, doi:10.1111/ddi.12232. <div id="Marler--2014"></div> Marler, T. E., 2014: Pacific island tropical cyclones are more frequent and globally relevant, yet less studied. ''Frontiers in Environmental Science'' , '''2''' (42), doi:10.3389/fenvs.2014.00042. <div id="McGuire--2016"></div> McGuire, J. L. et al., 2016: Achieving climate connectivity in a fragmented landscape. ''Proceedings of the National Academy of Sciences'' , '''113''' (26), 7195–7200, doi:10.1073/pnas.1602817113. <div id="McKelvy--2017"></div> McKelvy, A. and F. Burbrink, 2017: Ecological divergence in the yellow-bellied kingsnake (Lampropeltis calligaster) at two North American biodiversity hotspots. ''Molecular Phylogenetics and Evolution'' , '''106''' , 61–72, doi:10.1016/j.ympev.2016.09.006. <div id="McManus--2020"></div> McManus, L. C. et al., 2020: Extreme temperature events will drive coral decline in the Coral Triangle. ''Global Change Biology'' , '''26''' (4), 2120–2133, doi:10.1111/gcb.14972. <div id="McPherson--2021"></div> McPherson, M. L. et al., 2021: Large-scale shift in the structure of a kelp forest ecosystem co-occurs with an epizootic and marine heatwave. ''Communications Biology'' , '''4''' (1), 298, doi:10.1038/s42003-021-01827-6. <div id="Mechler--2020"></div> Mechler, R. et al., 2020: Loss and Damage and limits to adaptation: recent IPCC insights and implications for climate science and policy. ''Sustainability Science'' , '''15''' (4), 1245–1251, doi:10.1007/s11625-020-00807-9. <div id="Médail--2017"></div> Médail, F., 2017: The specific vulnerability of plant biodiversity and vegetation on Mediterranean islands in the face of global change. ''Regional Environmental Change'' , '''17''' (6), 1775–1790, doi:10.1007/s10113-017-1123-7. <div id="Mendoza-Ponce--2018"></div> Mendoza-Ponce, A. et al., 2018: Identifying effects of land use cover changes and climate change on terrestrial ecosystems and carbon stocks in Mexico. ''Global Environmental Change'' , '''53''' , 12–23, doi:10.1016/j.gloenvcha.2018.08.004. <div id="Mendoza-Ponce--2019"></div> Mendoza-Ponce, A., R. O. Corona-Núñez, L. Galicia and F. Kraxner, 2019: Identifying hotspots of land use cover change under socioeconomic and climate change scenarios in Mexico. ''Ambio'' , '''48''' (4), 336–349, doi:10.1007/s13280-018-1085-0. <div id="Mittermeier--2004"></div> Mittermeier, R. A. et al., 2004: ''Hotspots revisited'' . Cemex, Mexico City, 392 pp. ISBN 9686397779. <div id="Mittermeier--2011"></div> Mittermeier, R. A. et al., 2011: Global biodiversity conservation: The critical role of hotspots. In: ''Biodiversity Hotspots: Distribution and Protection of Conservation Priority Areas'' [Zachos, F. E. and J. C. Habel (eds.)]. Springer Berlin Heidelberg, Berlin, Heidelberg, pp. 3–22. ISBN 978-3-642-20992-5. <div id="Molina-Martínez--2016"></div> Molina-Martínez, A. et al., 2016: Changes in butterfly distributions and species assemblages on a Neotropical mountain range in response to global warming and anthropogenic land use. ''Diversity and Distributions'' , '''22''' (11), 1085–1098, doi:10.1111/ddi.12473. <div id="Moret--2016"></div> Moret, P., M. d. l. Á. Aráuz, M. Gobbi and Á. Barragán, 2016: Climate warming effects in the tropical Andes: first evidence for upslope shifts of Carabidae (Coleoptera) in Ecuador. ''Insect Conservation and Diversity'' , '''9''' (4), 342–350, doi:10.1111/icad.12173. <div id="Moss--2009"></div> Moss, B. et al., 2009: Climate change and the future of freshwater biodiversity in Europe: a primer for policy-makers. ''Freshwater Reviews'' , '''2''' (2), 103–131, doi:10.1608/FRJ-2.2.1. <div id="Mueter--2008"></div> Mueter, F. J. and M. A. Litzow, 2008: Sea ice retreat alters the biogeography of the Bering Sea continental shelf. ''Ecological Applications'' , '''18''' (2), 309–320, doi:10.1890/07-0564.1. <div id="Muir--2015"></div> Muir, P. R., C. C. Wallace, T. Done and J. D. Aguirre, 2015: Limited scope for latitudinal extension of reef corals. ''Science'' , '''348''' (6239), 1135–1138, doi:10.1126/science.1259911. <div id="Myers--2000"></div> Myers, N. et al., 2000: Biodiversity hotspots for conservation priorities. ''Nature'' , '''403''' (6772), 853–858, doi:10.1038/35002501. <div id="Narins--2014"></div> Narins, P. M. and S. W. F. Meenderink, 2014: Climate change and frog calls: long-term correlations along a tropical altitudinal gradient. ''Proceedings of the Royal Society B: Biological Sciences'' , '''281''' (1783), 20140401, doi:doi:10.1098/rspb.2014.0401. <div id="Nghikembua--2016"></div> Nghikembua, M., J. Harris, T. Tregenza and L. Marker, 2016: Spatial and Temporal Habitat Use by GPS Collared Male Cheetahs in Modified Bushland Habitat. ''Open Journal of Forestry'' , '''6 (4)''' , 12, doi:10.4236/ojf.2016.64022. <div id="Noss--2015"></div> Noss, R. F. et al., 2015: How global biodiversity hotspots may go unrecognized: lessons from the North American Coastal Plain. ''Diversity and Distributions'' , '''21''' (2), 236–244, doi:10.1111/ddi.12278. <div id="Oliver--2018"></div> Oliver, E. C. J. et al., 2018: Longer and more frequent marine heatwaves over the past century. ''Nature Communications'' , '''9''' (1), 1324, doi:10.1038/s41467-018-03732-9. <div id="Olson--2002"></div> Olson, D. M. and E. Dinerstein, 2002: The Global 200: Priority ecoregions for global conservation. ''Annals of the Missouri Botanical garden'' , '''89''' (2), 199–224, doi:10.2307/3298564. <div id="Padalia--2015"></div> Padalia, H., V. Srivastava and S. P. S. Kushwaha, 2015: How climate change might influence the potential distribution of weed, bushmint (Hyptis suaveolens)? ''Environmental Monitoring and Assessment'' , '''187''' (4), 210, doi:10.1007/s10661-015-4415-8. <div id="Pecl--2017"></div> Pecl, G. T. et al., 2017: Biodiversity redistribution under climate change: Impacts on ecosystems and human well-being. ''Science'' , '''355''' (6332), doi:10.1126/science.aai9214. <div id="Pérez-García--2013"></div> Pérez-García, N., X. Font, A. Ferré and J. Carreras, 2013: Drastic reduction in the potential habitats for alpine and subalpine vegetation in the Pyrenees due to twenty-first-century climate change. ''Regional Environmental Change'' , '''13''' (6), 1157–1169, doi:10.1007/s10113-013-0427-5. <div id="Perry--2018"></div> 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. <div id="Perry--2014"></div> Perry, G. L., J. M. Wilmshurst and M. S. McGlone, 2014: Ecology and long-term history of fire in New Zealand. ''New Zealand Journal of Ecology'' , '''38''' (2), 1. <div id="Pershing--2015"></div> Pershing, A. J. et al., 2015: Slow adaptation in the face of rapid warming leads to collapse of the Gulf of Maine cod fishery. ''Science'' , '''350''' (6262), 809–812, doi:10.1126/science.aac9819. <div id="Petzold--2019"></div> Petzold, J. and A. K. Magnan, 2019: Climate change: thinking small islands beyond Small Island Developing States (SIDS). ''Climatic Change'' , '''152''' (1), 145–165, doi:10.1007/s10584-018-2363-3. <div id="Pinsky--2019"></div> 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. <div id="Pinsky--2013"></div> Pinsky, M. L. et al., 2013: Marine taxa track local climate velocities. ''Science'' , '''341''' (6151), 1239–1242, doi:10.1126/science.1239352. <div id="Poloczanska--2013"></div> Poloczanska, E. S. et al., 2013: Global imprint of climate change on marine life. ''Nature Climate Change'' , '''3''' , 919–925, doi:10.1038/nclimate1958. <div id="Poloczanska--2016"></div> Poloczanska, E. S. et al., 2016: Responses of marine organisms to climate change across oceans. ''Frontiers in Marine Science'' , '''3''' (62), doi:10.3389/fmars.2016.00062. <div id="Pörtner--2021"></div> Pörtner, H.-O. et al., 2021: ''IPBES-IPCC co-sponsored workshop report on biodiversity and climate change'' . IPBES secretariat, Bonn, Germany,. Available at: https://zenodo.org/record/4923212/export/hx (accessed 2021/06/10/16:24:01). <div id="Poulsen--2015"></div> Poulsen, Z. C. and M. T. Hoffman, 2015: Changes in the distribution of indigenous forest in Table Mountain National Park during the 20th Century. ''South African Journal of Botany'' , '''101''' , 49–56, doi:10.1016/j.sajb.2015.05.002. <div id="Pounds--1999"></div> Pounds, J. A., M. P. L. Fogden and J. H. Campbell, 1999: Biological response to climate change on a tropical mountain. ''Nature'' , '''398''' (6728), 611–615, doi:10.1038/19297. <div id="Pouteau--2016"></div> Pouteau, R. and P. Birnbaum, 2016: Island biodiversity hotspots are getting hotter: vulnerability of tree species to climate change in New Caledonia. ''Biological Conservation'' , '''201''' , 111–119, doi:10.1016/j.biocon.2016.06.031. <div id="Pritchard--2019"></div> Pritchard, H. D., 2019: Asia’s shrinking glaciers protect large populations from drought stress. ''Nature'' , '''569''' (7758), 649–654, doi:10.1038/s41586-019-1240-1. <div id="Priti--2016"></div> Priti, H., N. A. Aravind, R. Uma Shaanker and G. Ravikanth, 2016: Modeling impacts of future climate on the distribution of Myristicaceae species in the Western Ghats, India. ''Ecological Engineering'' , '''89''' , 14–23, doi:10.1016/j.ecoleng.2016.01.006. <div id="Ramírez-Amezcua--2016"></div> Ramírez-Amezcua, Y., V. W. Steinmann, E. Ruiz-Sanchez and O. R. Rojas-Soto, 2016: Mexican alpine plants in the face of global warming: potential extinction within a specialized assemblage of narrow endemics. ''Biodiversity and conservation'' , '''25''' (5), 865–885, doi:10.1007/s10531-016-1094-x. <div id="Ramírez--2017"></div> Ramírez, F., I. Afán, L. S. Davis and A. Chiaradia, 2017: Climate impacts on global hot spots of marine biodiversity. ''Science Advances'' , '''3''' (2), e1601198, doi:10.1126/sciadv.1601198. <div id="Ramírez--2018"></div> Ramírez, F. et al., 2018: Spatial congruence between multiple stressors in the Mediterranean Sea may reduce its resilience to climate impacts. ''Scientific Reports'' , '''8''' (1), 14871, doi:10.1038/s41598-018-33237-w. <div id="Rathore--2019"></div> Rathore, P., A. Roy and H. Karnatak, 2019: Modelling the vulnerability of Taxus wallichiana to climate change scenarios in South East Asia. ''Ecological Indicators'' , '''102''' , 199–207, doi:10.1016/j.ecolind.2019.02.020. <div id="Rayner--2003"></div> Rayner, N. A. et al., 2003: Global analyses of sea surface temperature, sea ice, and night marine air temperature since the late nineteenth century. ''Journal of Geophysical Research: Atmospheres'' , '''108''' (D14), doi:10.1029/2002JD002670. <div id="Richardson--2018"></div> Richardson, B., M. Richardson and G. González, 2018: Responses of two litter-based invertebrate communities to changes in canopy cover in a forest subject to hurricanes. ''Forests'' , '''9''' (6), 309, doi:10.3390/f9060309. <div id="Rilov--2016"></div> Rilov, G., 2016: Multi-species collapses at the warm edge of a warming sea. ''Scientific Reports'' , '''6''' , 36897, doi:10.1038/srep36897. <div id="Riordan--2014"></div> Riordan, E. C. and P. W. Rundel, 2014: Land Use Compounds Habitat Losses under Projected Climate Change in a Threatened California Ecosystem. ''PLOS ONE'' , '''9''' (1), e86487, doi:10.1371/journal.pone.0086487. <div id="Roberts--2017"></div> Roberts, C. M. et al., 2017: Marine reserves can mitigate and promote adaptation to climate change. ''Proceedings of the National Academy of Sciences'' , '''114''' (24), 6167–6175, doi:10.1073/pnas.1701262114. <div id="Robinson--2020a"></div> Robinson, S.-a., 2020a: Climate change adaptation in SIDS: A systematic review of the literature pre and post the IPCC Fifth Assessment Report. ''WIREs Climate Change'' , '''11''' (4), e653, doi:10.1002/wcc.653. <div id="Robinson--2020b"></div> Robinson, S.-a., 2020b: A richness index for baselining climate change adaptations in small island developing states. ''Environmental and Sustainability Indicators'' , '''8''' , 100065, doi:10.1016/j.indic.2020.100065. <div id="Roehrdanz--2016"></div> Roehrdanz, P. R. and L. Hannah, 2016: Climate change, California wine, and wildlife habitat. ''Journal of Wine Economics'' , '''11''' (1), 69–87, doi:10.1017/jwe.2014.31. <div id="Roycroft--2021"></div> Roycroft, E. et al., 2021: Museum genomics reveals the rapid decline and extinction of Australian rodents since European settlement. ''Proceedings of the National Academy of Sciences'' , '''118''' (27), e2021390118, doi:10.1073/pnas.2021390118. <div id="Saintilan--2020"></div> Saintilan, N. et al., 2020: Thresholds of mangrove survival under rapid sea level rise. ''Science'' , '''368''' (6495), 1118–1121, doi:10.1126/science.aba2656. <div id="Sala--2021"></div> Sala, E. et al., 2021: Protecting the global ocean for biodiversity, food and climate. ''Nature'' , '''592''' (7854), 397–402, doi:10.1038/s41586-021-03371-z. <div id="Sánchez-Guillén--2013"></div> Sánchez-Guillén, R. A. et al., 2013: Climate-induced range shifts and possible hybridisation consequences in insects. ''PLOS ONE'' , '''8''' (11), e80531, doi:10.1371/journal.pone.0080531. <div id="Sandel--2011"></div> Sandel, B. et al., 2011: The influence of late Quaternary climate-change velocity on species endemism. ''Science'' , '''334''' (6056), 660–664, doi:10.1126/science.1210173. <div id="Sanford--2019"></div> Sanford, E. et al., 2019: Widespread shifts in the coastal biota of northern California during the 2014–2016 marine heatwaves. ''Scientific Reports'' , '''9''' (1), 4216, doi:10.1038/s41598-019-40784-3. <div id="Santangeli--2018"></div> Santangeli, A., O. Spiegel, P. Bridgeford and M. Girardello, 2018: Synergistic effect of land-use and vegetation greenness on vulture nestling body condition in arid ecosystems. ''Scientific Reports'' , '''8''' (1), 13027, doi:10.1038/s41598-018-31344-2. <div id="Saunders--2002"></div> Saunders, D. L., J. J. Meeuwig and A. C. J. Vincent, 2002: Freshwater protected areas: Strategies for conservation. ''Conservation Biology'' , '''16''' (1), 30–41, doi:10.1046/j.1523-1739.2002.99562.x. <div id="Scheffers--2017"></div> Scheffers, B. R. et al., 2017: Vertical (arboreality) and horizontal (dispersal) movement increase the resilience of vertebrates to climatic instability. ''Global Ecology and Biogeography'' , '''26''' (7), 787–798, doi:10.1111/geb.12585. <div id="Scheiter--2015"></div> Scheiter, S., S. I. Higgins, J. Beringer and L. B. Hutley, 2015: Climate change and long-term fire management impacts on Australian savannas. ''New Phytologist'' , '''205''' (3), 1211–1226, doi:10.1111/nph.13130. <div id="Scobie--2016"></div> Scobie, M., 2016: Policy coherence in climate governance in Caribbean Small Island Developing States. ''Environmental Science & Policy'' , '''58''' , 16–28, doi:10.1016/j.envsci.2015.12.008. <div id="Seim--2016"></div> Seim, A. et al., 2016: Climate change increases drought stress of juniper trees in the mountains of Central Asia. ''PLOS ONE'' , '''11''' (4), e0153888, doi:10.1371/journal.pone.0153888. <div id="Shelton--2018"></div> Shelton, J. M. et al., 2018: Vulnerability of Cape Fold Ecoregion freshwater fishes to climate change and other human impacts. ''Aquatic Conservation: Marine and Freshwater Ecosystems'' , '''28''' (1), 68–77, doi:10.1002/aqc.2849. <div id="Shiels--2014"></div> Shiels, A. B., G. González and M. R. Willig, 2014: Responses to canopy loss and debris deposition in a tropical forest ecosystem: Synthesis from an experimental manipulation simulating effects of hurricane disturbance. ''Forest Ecology and Management'' , '''332''' , 124–133. <div id="Shrestha--2018"></div> Shrestha, U. B. et al., 2018: Potential impact of climate change on the distribution of six invasive alien plants in Nepal. ''Ecological Indicators'' , '''95''' , 99–107, doi:10.1016/j.ecolind.2018.07.009. <div id="Silva-Rocha--2015"></div> Silva-Rocha, I. et al., 2015: Snakes on the Balearic Islands: An Invasion Tale with Implications for Native Biodiversity Conservation. ''PLOS ONE'' , '''10''' (4), e0121026, doi:10.1371/journal.pone.0121026. <div id="Sintayehu--2018"></div> Sintayehu, D. W., 2018: Impact of climate change on biodiversity and associated key ecosystem services in Africa: a systematic review. ''Ecosystem Health and Sustainability'' , '''4''' (9), 225–239, doi:10.1080/20964129.2018.1530054. <div id="Slatyer--2010"></div> Slatyer, R., 2010: Climate change impacts on Australia’s alpine ecosystems. ''The ANU Undergraduate Research Journal'' , '''2''' , 1–17, doi:10.22459/aurj.02.2010.05. <div id="Slingsby--2017"></div> Slingsby, J. A. et al., 2017: Intensifying postfire weather and biological invasion drive species loss in a Mediterranean-type biodiversity hotspot. ''Proc Natl Acad Sci U S A'' , '''114''' (18), 4697–4702, doi:10.1073/pnas.1619014114. <div id="Song--2019"></div> Song, J. and L. Duan, 2019: Chapter 18—The Yellow Sea. In: ''World Seas: an Environmental Evaluation (Second Edition)'' [Sheppard, C. (ed.)]. Academic Press, pp. 395–413. ISBN 978-0-08-100853-9. <div id="Spatz--2017"></div> Spatz, D. R. et al., 2017: Globally threatened vertebrates on islands with invasive species. ''Science Advances'' , '''3''' (10), e1603080, doi:10.1126/sciadv.1603080. <div id="Sridhar--2014"></div> Sridhar, V. et al., 2014: CLIMEX simulated predictions of Oriental fruit fly, ''Bactrocera dorsalis'' (Hendel) (Diptera: Tephritidae) geographical distribution under climate change situations in India. ''Current Science'' , '''106''' , 1702–1710. <div id="Steinbauer--2018"></div> Steinbauer, M. J. et al., 2018: Accelerated increase in plant species richness on mountain summits is linked to warming. ''Nature'' , '''556''' , 231–234, doi:10.1038/s41586-018-0005-6. <div id="Steneck--2002"></div> Steneck, R. S. et al., 2002: Kelp forest ecosystems: biodiversity, stability, resilience and future. ''Environmental Conservation'' , '''29''' (4), 436–459. <div id="Stevens--2017"></div> Stevens, N., C. E. R. Lehmann, B. P. Murphy and G. Durigan, 2017: Savanna woody encroachment is widespread across three continents. ''Global Change Biology'' , '''23''' (1), 235–244, doi:10.1111/gcb.13409. <div id="Stralberg--2015"></div> Stralberg, D. et al., 2015: Conservation of future boreal forest bird communities considering lags in vegetation response to climate change: a modified refugia approach. ''Diversity and Distributions'' , '''21''' (9), 1112–1128, doi:10.1111/ddi.12356. <div id="Struebig--2015"></div> Struebig, M. et al., 2015: Targeted conservation to safeguard a biodiversity hotspot from climate and land-cover change. ''Current Biology'' , '''25''' (3), 372–378, doi:10.1016/j.cub.2014.11.067. <div id="Stuart-Smith--2018"></div> Stuart-Smith, R. D., C. J. Brown, D. M. Ceccarelli and G. J. Edgar, 2018: Ecosystem restructuring along the Great Barrier Reef following mass coral bleaching. ''Nature'' , '''560''' (7716), 92–96, doi:10.1038/s41586-018-0359-9. <div id="Stuart-Smith--2015"></div> 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. <div id="Stuart-Smith--2017"></div> Stuart-Smith, R. D., G. J. Edgar and A. E. Bates, 2017: Thermal limits to the geographic distributions of shallow-water marine species. ''Nature Ecology & Evolution'' , '''1''' (12), 1846–1852, doi:10.1038/s41559-017-0353-x. <div id="Su--2021"></div> Su, G. et al., 2021: Human impacts on global freshwater fish biodiversity. ''Science'' , '''371''' (6531), 835–838, doi:10.1126/science.abd3369. <div id="Sunday--2012"></div> Sunday, J. M., A. E. Bates and N. K. Dulvy, 2012: Thermal tolerance and the global redistribution of animals. ''Nature Climate Change'' , '''2''' (9), 686–690. <div id="Tang--2017"></div> Tang, C. Q. et al., 2017: Potential effects of climate change on geographic distribution of the Tertiary relict tree species Davidia involucrata in China. ''Scientific Reports'' , '''7''' , 43822, doi:10.1038/srep43822. <div id="Taylor--2016"></div> Taylor, S. and L. Kumar, 2016: Global Climate Change Impacts on Pacific Islands Terrestrial Biodiversity: A Review. ''Tropical Conservation Science'' , '''9''' (1), 203–223, doi:10.1177/194008291600900111. <div id="Teagle--2018"></div> Teagle, H. and D. A. Smale, 2018: Climate-driven substitution of habitat-forming species leads to reduced biodiversity within a temperate marine community. ''Diversity and Distributions'' , '''24''' (10), 1367–1380, doi:10.1111/ddi.12775. <div id="Tedesco--2013"></div> Tedesco, P. A. et al., 2013: A scenario for impacts of water availability loss due to climate change on riverine fish extinction rates. ''Journal of Applied Ecology'' , '''50''' (5), 1105–1115, doi:doi:10.1111/1365-2664.12125. <div id="Tellería--2020"></div> Tellería, J. L., 2020: Long-term altitudinal change in bird richness in a Mediterranean mountain range: habitat shifts explain the trends. ''Regional Environmental Change'' , '''20''' (2), 69, doi:10.1007/s10113-020-01657-y. <div id="Telwala--2013"></div> Telwala, Y., B. W. Brook, K. Manish and M. K. Pandit, 2013: Climate-induced elevational range shifts and increase in plant species richness in a himalayan biodiversity epicentre. ''PLOS ONE'' , '''8''' (2), e57103, doi:10.1371/journal.pone.0057103. <div id="Terhaar--2020"></div> Terhaar, J., L. Kwiatkowski and L. Bopp, 2020: Emergent constraint on Arctic Ocean acidification in the twenty-first century. ''Nature'' , '''582''' (7812), 379–383, doi:10.1038/s41586-020-2360-3. <div id="Thieme--2010"></div> Thieme, M. L., B. Lehner, R. Abell and J. Matthews, 2010: Exposure of Africa’s freshwater biodiversity to a changing climate. ''Conservation Letters'' , '''3''' (5), 324–331, doi:10.1111/j.1755-263X.2010.00120.x. <div id="Thomsen--2019"></div> Thomsen, M. S. et al., 2019: Local extinction of bull kelp (Durvillaea spp.) due to a marine heatwave. ''Frontiers in Marine Science'' , '''6''' (84), doi:10.3389/fmars.2019.00084. <div id="Thomsen--2019"></div> Thomsen, M. S. and P. M. South, 2019: Communities and attachment networks associated with primary, secondary and alternative foundation species; a case study of stressed and disturbed stands of southern bull kelp. ''Diversity'' , '''11''' (4), 56, doi:10.3390/d11040056. <div id="Titeux--2016"></div> Titeux, N. et al., 2016: Biodiversity scenarios neglect future land-use changes. ''Global Change Biology'' , '''22''' (7), 2505–2515, doi:10.1111/gcb.13272. <div id="Tompkins--2013"></div> Tompkins, D. M., A. E. Byrom and R. P. Pech, 2013: Predicted responses of invasive mammal communities to climate-related changes in mast frequency in forest ecosystems. ''Ecological Applications'' , '''23''' (5), 1075–1085, doi:10.1890/12-0915.1. <div id="Trew--2021"></div> Trew, B. T. and I. M. D. Maclean, 2021: Vulnerability of global biodiversity hotspots to climate change. ''Global Ecology and Biogeography'' , '''30''' (4), 768–783, doi:10.1111/geb.13272. <div id="Trisos--2020"></div> Trisos, C. H., C. Merow and A. L. Pigot, 2020: The projected timing of abrupt ecological disruption from climate change. ''Nature'' , '''580''' (7804), 496–501, doi:10.1038/s41586-020-2189-9. <div id="Tulloch--2019"></div> Tulloch, V. J. D. et al., 2019: Future recovery of baleen whales is imperiled by climate change. ''Global Change Biology'' , '''25''' (4), 1263–1281, doi:10.1111/gcb.14573. <div id="Ukkola--2016"></div> Ukkola, A. M. et al., 2016: Reduced streamflow in water-stressed climates consistent with CO2 effects on vegetation. ''Nature Climate Change'' , '''6''' , 75–78, doi:10.1038/nclimate2831. <div id="Vale--2018"></div> Vale, M. M., T. V. Souza, M. A. S. Alves and R. Crouzeilles, 2018: Planning protected areas network that are relevant today and under future climate change is possible: the case of Atlantic Forest endemic birds. ''PeerJ'' , '''6''' , e4689, doi:10.7717/peerj.4689. <div id="Vasconcelos--2014"></div> Vasconcelos, T. d. S., 2014: Tracking climatically suitable areas for an endemic Cerrado snake under climate change. ''Natureza & Conservação'' , '''12''' (1), 47–52, doi:10.4322/natcon.2014.009. <div id="Vasconcelos--2018"></div> Vasconcelos, T. S., B. T. M. do Nascimento and V. H. M. Prado, 2018: Expected impacts of climate change threaten the anuran diversity in the Brazilian hotspots. ''Ecology and Evolution'' , '''8''' (16), 7894–7906, doi:10.1002/ece3.4357. <div id="Vasconcelos--2019"></div> Vasconcelos, T. S. and V. H. M. Prado, 2019: Climate change and opposing spatial conservation priorities for anuran protection in the Brazilian hotspots. ''Journal for Nature Conservation'' , '''49''' , 118–124, doi:10.1016/j.jnc.2019.04.003. <div id="Vasilakopoulos--2017"></div> Vasilakopoulos, P., D. E. Raitsos, E. Tzanatos and C. D. Maravelias, 2017: Resilience and regime shifts in a marine biodiversity hotspot. ''Scientific Reports'' , '''7''' (1), 13647, doi:10.1038/s41598-017-13852-9. <div id="Velazco--2019"></div> Velazco, S. J. E., F. Villalobos, F. Galvão and P. De Marco Júnior, 2019: A dark scenario for Cerrado plant species: Effects of future climate, land use and protected areas ineffectiveness. ''Diversity and Distributions'' , '''25''' (4), 660–673, doi:10.1111/ddi.12886. <div id="Vergés--2016"></div> Vergés, A. et al., 2016: Long-term empirical evidence of ocean warming leading to tropicalization of fish communities, increased herbivory, and loss of kelp. ''Proceedings of the National Academy of Sciences'' , '''113''' (48), 13791–13796, doi:10.1073/pnas.1610725113. <div id="Vergés--2019"></div> Vergés, A. et al., 2019: Tropicalisation of temperate reefs: Implications for ecosystem functions and management actions. ''Functional Ecology'' , '''33''' (6), 1000–1013, doi:10.1111/1365-2435.13310. <div id="Vogiatzakis--2016"></div> Vogiatzakis, I. N., A. M. Mannion and D. Sarris, 2016: Mediterranean island biodiversity and climate change: the last 10,000 years and the future. ''Biodiversity and Conservation'' , '''25''' (13), 2597–2627, doi:10.1007/s10531-016-1204-9. <div id="Wabnitz--2018"></div> 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. <div id="Waldock--2019"></div> Waldock, C. et al., 2019: The shape of abundance distributions across temperature gradients in reef fishes. ''Ecology Letters'' , '''22''' (4), 685–696, doi:10.1111/ele.13222. <div id="Wang--2017"></div> Wang, C.-J., J.-Z. Wan and Z.-X. Zhang, 2017: Expansion potential of invasive tree plants in ecoregions under climate change scenarios: an assessment of 54 species at a global scale. ''Scandinavian Journal of Forest Research'' , '''32''' (8), 663–670, doi:10.1080/02827581.2017.1283049. <div id="Wang--2016"></div> Wang, Q. et al., 2016: Temporal evolution of the Yellow Sea ecosystem services (1980–2010). ''Heliyon'' , '''2''' (3), e00084, doi:10.1016/j.heliyon.2016.e00084. <div id="Ward--2016"></div> 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. ''Ecosystem Health and Sustainability'' , '''2''' (4), e01211, doi:10.1002/ehs2.1211. <div id="Warren--2014"></div> Warren, D. L., A. N. Wright, S. N. Seifert and H. B. Shaffer, 2014: Incorporating model complexity and spatial sampling bias into ecological niche models of climate change risks faced by 90 California vertebrate species of concern. ''Diversity and Distributions'' , '''20''' (3), 334–343, doi:10.1111/ddi.12160. <div id="Warren--2018a"></div> Warren, R. et al., 2018a: The projected effect on insects, vertebrates, and plants of limiting global warming to 1.5 degrees C rather than 2 degrees C. ''Science'' , '''360''' (6390), 791-+, doi:10.1126/science.aar3646. <div id="Warren--2018b"></div> Warren, R. et al., 2018b: The implications of the United Nations Paris Agreement on climate change for globally significant biodiversity areas. ''Climatic Change'' , '''147''' (3–4), 395–409, doi:10.1007/s10584-018-2158-6. <div id="Wernberg--2016"></div> Wernberg, T. et al., 2016: Climate-driven regime shift of a temperate marine ecosystem. ''Science'' , '''353''' (6295), 169–172, doi:10.1126/science.aad8745. <div id="Wernberg--2011"></div> Wernberg, T. et al., 2011: Impacts of climate change in a global hotspot for temperate marine biodiversity and ocean warming. ''Journal of Experimental Marine Biology and Ecology'' , '''400''' (1), 7–16, doi:10.1016/j.jembe.2011.02.021. <div id="Wernberg--2013"></div> Wernberg, T. et al., 2013: An extreme climatic event alters marine ecosystem structure in a global biodiversity hotspot. ''Nature Climate Change'' , '''3''' (1), 78–82, doi:10.1038/nclimate1627. <div id="Węsławski--2018"></div> Węsławski, J. M., K. Dragańska-Deja, J. Legeżyńska and W. Walczowski, 2018: Range extension of a boreal amphipod Gammarus oceanicus in the warming Arctic. ''Ecology and Evolution'' , '''8''' (15), 7624–7632, doi:10.1002/ece3.4281. <div id="Węsławski--2011"></div> Węsławski, J. M. et al., 2011: Climate change effects on Arctic fjord and coastal macrobenthic diversity—observations and predictions. ''Marine Biodiversity'' , '''41''' (1), 71–85, doi:10.1007/s12526-010-0073-9. <div id="Wetzel--2013"></div> Wetzel, F. T., H. Beissmann, D. J. Penn and W. Jetz, 2013: Vulnerability of terrestrial island vertebrates to projected sea-level rise. ''Global Change Biology'' , '''19''' (7), 2058-2070, doi:10.1111/gcb.12185. <div id="Wiens--2016"></div> Wiens, J. J., 2016: Climate-related local extinctions are already widespread among plant and animal species. ''PLOS Biology'' , '''14''' (12), e2001104, doi:10.1371/journal.pbio.2001104. <div id="Williams--2007"></div> Williams, J. W., S. T. Jackson and J. E. Kutzbach, 2007: Projected distributions of novel and disappearing climates by 2100 AD. ''Proceedings of the National Academy of Sciences'' , '''104''' (14), 5738–5742, doi:10.1073/pnas.0606292104. <div id="Williams--2011"></div> Williams, K. J. et al., 2011: Forests of East Australia: The 35th Biodiversity Hotspot. In: ''Biodiversity Hotspots: Distribution and Protection of Conservation Priority Areas'' [Zachos, F. E. and J. C. Habel (eds.)]. Springer Berlin Heidelberg, Berlin, Heidelberg, pp. 295–310. ISBN 978-3-642-20992-5. <div id="Wilson--2019"></div> 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. ''Diversity and Distributions'' , '''25''' (4), 582–602, doi:10.1111/ddi.12897. <div id="WMO--2021"></div> [[#WMO--2021|WMO, 2021]] : ''State of the Climate in Latin America and the Caribbean 2020'' . World Meteorological Organization (WMO), 32 pp. ISBN 978-92-63-11272-9. <div id="Wolter--2016"></div> Wolter, K., W. Neser, M. T. Hirschauer and A. Camiña, 2016: Cape Vulture Gyps coprotheres breeding status in southern Africa: monitoring results from 2010–2014. ''Ostrich'' , '''87''' (2), 119–123. <div id="Xiu--2018"></div> 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. ''Scientific Reports'' , '''8''' (1), 2866, doi:10.1038/s41598-018-21247-7. <div id="Yamano--2011"></div> Yamano, H., K. Sugihara and K. Nomura, 2011: Rapid poleward range expansion of tropical reef corals in response to rising sea surface temperatures. ''Geophysical Research Letters'' , '''38''' (4), doi:10.1029/2010GL046474. <div id="Yasuhara--2020"></div> Yasuhara, M. et al., 2020: Past and future decline of tropical pelagic biodiversity. ''Proceedings of the National Academy of Sciences'' , '''117''' (23), 12891–12896, doi:10.1073/pnas.1916923117. <div id="Yeruham--2015"></div> 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? ''Scientific Reports'' , '''5''' , 13479, doi:10.1038/srep13479. <div id="Young--2016"></div> Young, A. J., D. Guo, P. G. Desmet and G. F. Midgley, 2016: Biodiversity and climate change: Risks to dwarf succulents in Southern Africa. ''Journal of Arid Environments'' , '''129''' , 16–24, doi:10.1016/j.jaridenv.2016.02.005. <div id="Zomer--2014"></div> Zomer, R. J. et al., 2014: Projected climate change impacts on spatial distribution of bioclimatic zones and ecoregions within the Kailash Sacred Landscape of China, India, Nepal. ''Climatic Change'' , '''125''' (3), 445–460, doi:10.1007/s10584-014-1176-2. <div id="Zunino--2017"></div> Zunino, S., D. M. Canu, V. Bandelj and C. Solidoro, 2017: Effects of ocean acidification on benthic organisms in the Mediterranean Sea under realistic climatic scenarios: A meta-analysis. ''Regional Studies in Marine Science'' , '''10''' , 86–96, doi:10.1016/j.rsma.2016.12.011. <div id="Zylstra--2018"></div> Zylstra, P. J., 2018: Flammability dynamics in the Australian Alps. ''Austral Ecol.'' , '''43''' (5), 578–591, doi:10.1111/aec.12594. ----- <div id="footnote-000" class="_idFootnote"></div> [[#footnote-000-backlink|1]] In this report, the following summary terms are used to describe the available evidence: limited, medium or robust; and for the degree of agreement: low, medium, or high. A level of confidence is expressed using five qualifiers: very low, low, medium, high, and very high, and typeset in italics, for example, ''medium confidence'' . For a given evidence and agreement statement, different confidence levels can be assigned, but increasing levels of evidence and degrees of agreement are correlated with increasing confidence.
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