{"refrec":{"BRefID":73485,"RR":"Global Change Biology. Blackwell Publishers: Oxford.  ISSN 1354-1013; e-ISSN 1365-2486","BEntID":69392,"PublicFlag":1,"CheckedFlag":0,"wosflag":1,"vabbflag":1,"RefStringPartII":". Blackwell Publishers: Oxford.  ISSN 1354-1013; e-ISSN 1365-2486","DocTypID":16,"DocType":"Journal","MarineFlag":0,"FreshFlag":0,"BrackishFlag":0,"TerrestrialFlag":0,"Authorstring":null,"OrigTitleTranslFlag":0,"Authorstringtrunc":null,"Englishabstract":null,"AbstractOtherLang":null,"BibLvlCode":"S","StandardTitle":"Global Change Biology","OrigTitleLangCode":"en","OrigTitleLangCodeExtended":"eng","OrigTitleLangID":15,"DateLastModified":{"date":"2024-12-10 01:33:17.368041","timezone_type":1,"timezone":"+01:00"},"UserAccessRight":null,"UserAccID":null,"AuthorKeywords":null,"OtherDescriptors":null,"Notes":null,"AnaPub":null,"MonPub":null,"DateUpdate":"2014-01-20","DateCreate":"2005-06-28","SecASFANote":null,"ConfID":null,"PeerRev":1,"VlizCoreFlag":1,"WoScode":null,"VABBcode":null,"OpenAcc":0},"refs":null,"anarec":null,"monrec":null,"serrec":{"SerID":73485,"ISSN":"1354-1013","Abbreviation":"Glob. Chang. Biol.","PublID":166,"City":"Oxford","InpCentreCode":null,"ASFACode":null,"AntilopeFlag":0,"PerioID":null,"CurrentFlag":1,"PeerRevFlag":1,"DigISSN":"1365-2486","InputCentre":null,"Periodicity":null,"FromYear":1995,"ToYear":null,"WoSFlag":1,"ISSNL":"1354-1013","EmbargoYears":null,"VABBFlag":1},"relations":null,"relationsRev":null,"addrec":null,"othpubs":null,"ownerships":null,"authors":null,"mapdetails":null,"datasets":null,"monographs":null,"monparts":null,"serparts":[{"BRefID":352226,"RR":"<b>Doxa, A.; Almpanidou, V.; Katsanevakis, S.; Queirós, A.M.; Kaschner, K.; Garilao, C.; Reyes, K.; Mazaris, A.D.</b> (2022). 4D marine conservation networks: combining 3D prioritization of present and future biodiversity with climatic refugia. <i>Glob. Chang. Biol. 28(15)</i>: 4577-4588. <a href=\"https://dx.doi.org/10.1111/gcb.16268\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16268</a>","StandardTitle":"4D marine conservation networks: combining 3D prioritization of present and future biodiversity with climatic refugia","AuthorsString":"Doxa, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":206080,"RR":"<b>Reid, Ph.C.; Johns, D.G.; Edwards, M.; Starr, M.; Poulin, M.; Snoeijs, P.</b> (2007). A biological consequence of reducing Arctic ice cover: arrival of the Pacific diatom <i>Neodenticula seminae</i> in the North Atlantic for the first time in 800 000 years. <i>Glob. Chang. Biol. 13(9)</i>: 1910-1921. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2007.01413.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2007.01413.x</a>","StandardTitle":"A biological consequence of reducing Arctic ice cover: arrival of the Pacific diatom <i>Neodenticula seminae</i> in the North Atlantic for the first time in 800 000 years","AuthorsString":"Reid, Ph.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":311048,"RR":"<b>Windsor, F.M.; Durance, I.; Horton, A.A.; Thompson, R.C.; Tyler, C.R.; Ormerod, S.J.</b> (2019). A catchment‐scale perspective of plastic pollution. <i>Glob. Chang. Biol. 25(4)</i>: 1207-1221. <a href=\"https://dx.doi.org/10.1111/gcb.14572\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14572</a>","StandardTitle":"A catchment‐scale perspective of plastic pollution","AuthorsString":"Windsor, F.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":332489,"RR":"<b>Telesca, L.; Peck, L.S.; Backeljau, T.; Heinig, M.F.; Harper, E.M.</b> (2021). A century of coping with environmental and ecological changes via compensatory biomineralization in mussels. <i>Glob. Chang. Biol. 27(3)</i>: 624-639. <a href=\"https://dx.doi.org/10.1111/gcb.15417\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15417</a>","StandardTitle":"A century of coping with environmental and ecological changes via compensatory biomineralization in mussels","AuthorsString":"Telesca, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":406234,"RR":"<b>Smith, J.G.; Free, C.M.; Lopazanski, C.; Brun, J.; Anderson, C.R.; Carr, M.H.; Claudet, J.; Dugan, J.E.; Eurich, J.G.; Francis, T.B.; Hamilton, S.L.; Mouillot, D.; Raimondi, P.T.; Starr, R.M.; Ziegler, S.L.; Nickols, K.J.; Caselle, J.E.</b> (2023). A marine protected area network does not confer community structure resilience to a marine heatwave across coastal ecosystems. <i>Glob. Chang. Biol. 29(19)</i>: 5634-5651. <a href=\"https://dx.doi.org/10.1111/gcb.16862\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16862</a>","StandardTitle":"A marine protected area network does not confer community structure resilience to a marine heatwave across coastal ecosystems","AuthorsString":"Smith, J.G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":319450,"RR":"<b>Westfall, K.M.; Therriault, T.W.; Abbott, C.L.</b> (2020). A new approach to molecular biosurveillance of invasive species using DNA metabarcoding. <i>Glob. Chang. Biol. 26(2)</i>: 1012-1022. <a href=\"https://dx.doi.org/10.1111/gcb.14886\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14886</a>","StandardTitle":"A new approach to molecular biosurveillance of invasive species using DNA metabarcoding","AuthorsString":"Westfall, K.M.; Therriault, T.W.; Abbott, C.L.","BibLvlCode":"AS"},{"BRefID":396377,"RR":"<b>Ruthsatz, K.; Dahlke, F.T.; Alter, K.; Wohlrab, S.; Eterovick, P.C.; Lyra, M.L.; Gippner, S.; Cooke, S.J.; Peck, M.A.</b> (2024). Acclimation capacity to global warming of amphibians and freshwater fishes: Drivers, patterns, and data limitations. <i>Glob. Chang. Biol. 30(5)</i>: e17318. <a href=\"https://dx.doi.org/10.1111/gcb.17318\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17318</a>","StandardTitle":"Acclimation capacity to global warming of amphibians and freshwater fishes: Drivers, patterns, and data limitations","AuthorsString":"Ruthsatz, K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295385,"RR":"<b>Schäfer, R.B.; Piggott, J.J.</b> (2018). Advancing understanding and prediction in multiple stressor research through a mechanistic basis for null models. <i>Glob. Chang. Biol. 24(5)</i>: 1817-1826. <a href=\"https://dx.doi.org/10.1111/gcb.14073\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14073</a>","StandardTitle":"Advancing understanding and prediction in multiple stressor research through a mechanistic basis for null models","AuthorsString":"Schäfer, R.B.; Piggott, J.J.","BibLvlCode":"AS"},{"BRefID":436278,"RR":"<b>Cano-Barbacil, C.; Bowler, D.E.; Ballesteros-Pelegrín, G.A.; Bertolero, A.; Deneudt, K.; Genovart, M.; Gómez-Serrano, M.A.; Hernández-Navarro, A.J.; Oro, D.; Zamora-López, A.; Haase, P.</b> (2025). Almost seven decades of coastal bird community recovery across three European seas. <i>Glob. Chang. Biol. 31(11)</i>: e70623. <a href=\"https://dx.doi.org/10.1111/gcb.70623\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70623</a>","StandardTitle":"Almost seven decades of coastal bird community recovery across three European seas","AuthorsString":"Cano-Barbacil, C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":350591,"RR":"<b>Coleman, M.A.; Cetina-Heredia, P.; Roughan, M.; Feng, M.; Sebille, E.; Kelaher, B.P.</b> (2017). Anticipating changes to future connectivity within a network of marine protected areas. <i>Glob. Chang. Biol. 23(9)</i>: 3533-3542. <a href=\"https://dx.doi.org/10.1111/gcb.13634\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13634</a>","StandardTitle":"Anticipating changes to future connectivity within a network of marine protected areas","AuthorsString":"Coleman, M.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":350901,"RR":"<b>Cuthbert, R.N.; Kotronaki, S.G.; Carlton, J.T.; Ruiz, G.M.; Fofonoff, P.; Briski, E.</b> (2022). Aquatic invasion patterns across the North Atlantic. <i>Glob. Chang. Biol. 28(4)</i>: 1376-1387. <a href=\"https://dx.doi.org/10.1111/gcb.16016\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16016</a>","StandardTitle":"Aquatic invasion patterns across the North Atlantic","AuthorsString":"Cuthbert, R.N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362145,"RR":"<b>Bringloe, T.T.; Wilkinson, D.P.; Goldsmit, J.; Savoie, A.M.; Filbee-Dexter, K.; Macgregor, K.A.; Howland, K.L.; McKindsey, C.W.; Verbruggen, H.</b> (2022). Arctic marine forest distribution models showcase potentially severe habitat losses for cryophilic species under climate change. <i>Glob. Chang. Biol. 28(11)</i>: 3711-3727. <a href=\"https://dx.doi.org/10.1111/gcb.16142\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16142</a>","StandardTitle":"Arctic marine forest distribution models showcase potentially severe habitat losses for cryophilic species under climate change","AuthorsString":"Bringloe, T.T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":283260,"RR":"<b>Fogarty, H.E.; Burrows, M.T.; Pecl, G.T.; Robinson, L.M.; Poloczanska, E.S.</b> (2017). Are fish outside their usual ranges early indicators of climate-driven range shifts? <i>Glob. Chang. Biol. 23(5)</i>: 2047-2057. <a href=\"https://dx.doi.org/10.1111/gcb.13635\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13635</a>","StandardTitle":"Are fish outside their usual ranges early indicators of climate-driven range shifts?","AuthorsString":"Fogarty, H.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":221146,"RR":"<b>McClanahan, T. R.; Maina, J. M.; Muthiga, N. A.</b> (2011). Associations between climate stress and coral reef diversity in the Western Indian Ocean. <i>Glob. Chang. Biol. 17(6)</i>: 2023-2032. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2011.02395.x\" target=\"_blank\">dx.doi.org/10.1111/j.1365-2486.2011.02395.x</a>","StandardTitle":"Associations between climate stress and coral reef diversity in the Western Indian Ocean","AuthorsString":"McClanahan, T. R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362056,"RR":"<b>Roggatz, C.C.; Saha, M.; Blanchard, S.; Schirrmacher, P.; Fink, P.; Verheggen, F.; Hardege, J.D.</b> (2022). Becoming nose-blind - Climate change impacts on chemical communication. <i>Glob. Chang. Biol. 28(15)</i>: 4495-4505. <a href=\"https://dx.doi.org/10.1111/gcb.16209\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16209</a>","StandardTitle":"Becoming nose-blind - Climate change impacts on chemical communication","AuthorsString":"Roggatz, C.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":322734,"RR":"<b>Fabri-Ruiz, S.; Danis, B.; Navarro, N.; Koubbi, P.; Laffont, R.; Saucède, T.</b> (2020). Benthic ecoregionalization based on echinoid fauna of the Southern Ocean supports current proposals of Antarctic Marine Protected Areas under IPCC scenarios of climate change. <i>Glob. Chang. Biol. 26(4)</i>: 2161-2180. <a href=\"https://dx.doi.org/10.1111/gcb.14988\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14988</a>","StandardTitle":"Benthic ecoregionalization based on echinoid fauna of the Southern Ocean supports current proposals of Antarctic Marine Protected Areas under IPCC scenarios of climate change","AuthorsString":"Fabri-Ruiz, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230990,"RR":"<b>Teal, L.R.; van Hal, R.; van Kooten, T.; Ruardij, P.; Rijnsdorp, A.D.</b> (2012). Bio-energetics underpins the spatial response of North Sea plaice (<i>Pleuronectes platessa</i> L.) and sole (<i>Solea solea</i> L.) to climate change. <i>Glob. Chang. Biol. 18(11)</i>: 3291-3305. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2012.02795.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2012.02795.x</a>","StandardTitle":"Bio-energetics underpins the spatial response of North Sea plaice (<i>Pleuronectes platessa</i> L.) and sole (<i>Solea solea</i> L.) to climate change","AuthorsString":"Teal, L.R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355094,"RR":"<b>Sunday, J.M.; Howard, E.; Siedlecki, S.; Pilcher, D.J.; Deutsch, C.; MacCready, P.; Newton, J.; Klinger, T.</b> (2022). Biological sensitivities to high‐resolution climate change projections in the California current marine ecosystem. <i>Glob. Chang. Biol. 28(19)</i>: 5726-5740. <a href=\"https://dx.doi.org/10.1111/gcb.16317\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16317</a>","StandardTitle":"Biological sensitivities to high‐resolution climate change projections in the California current marine ecosystem","AuthorsString":"Sunday, J.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":289196,"RR":"<b>Ramajo, L.; Marba, N.; Prado, L.; Peron, S.; Lardies, M.A.; Rodriguez-Navarro, A.B.; Vargas, C.A.; Lagos, N.A.; Duarte, C.M.</b> (2016). Biomineralization changes with food supply confer juvenile scallops (<i>Argopecten purpuratus</i>) resistance to ocean acidification. <i>Glob. Chang. Biol. 22(6)</i>: 2025-2037. <a href=\"https://dx.doi.org/10.1111/gcb.13179\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13179</a>","StandardTitle":"Biomineralization changes with food supply confer juvenile scallops (<i>Argopecten purpuratus</i>) resistance to ocean acidification","AuthorsString":"Ramajo, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":368701,"RR":"<b>Mason, V. G.; Burden, A.; Epstein, G.; Jupe, L. L.; Wood, K.A.; Skov, M. W.</b> (2023). Blue carbon benefits from global saltmarsh restoration. <i>Glob. Chang. Biol. 29(23)</i>: 6517-6545. <a href=\"https://dx.doi.org/10.1111/gcb.16943\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16943</a>","StandardTitle":"Blue carbon benefits from global saltmarsh restoration","AuthorsString":"Mason, V. G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230463,"RR":"<b>Burba, G.; Schmidt, A.; Scott, R.L.; Nakai, T.; Kathilankal, J.; Fratini, G.; Hanson, C.; Law, B.; McDermitt, D.K.; Eckles, R.; Furtaw, M.; Velgersdyk, M.</b> (2012). Calculating C0<sub>2</sub> and H<sub>2</sub>O eddy covariance fluxes from an enclosed gas analyzer using an instantaneous mixing ratio. <i>Glob. Chang. Biol. 18(1)</i>: 385-399. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2011.02536.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2011.02536.x</a>","StandardTitle":"Calculating C0<sub>2</sub> and H<sub>2</sub>O eddy covariance fluxes from an enclosed gas analyzer using an instantaneous mixing ratio","AuthorsString":"Burba, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":351894,"RR":"<b>Posdaljian, N.; Soderstjerna, C.; Jones, J.M.; Solsona-Berga, A.; Hildebrand, J.A.; Westdal, K.; Ootoowak, A.; Baumann-Pickering, S.</b> (2022). Changes in sea ice and range expansion of sperm whales in the Eclipse Sound region of Baffin Bay, Canada. <i>Glob. Chang. Biol. 28(12)</i>: 3860-3870. <a href=\"https://dx.doi.org/10.1111/gcb.16166\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16166</a>","StandardTitle":"Changes in sea ice and range expansion of sperm whales in the Eclipse Sound region of Baffin Bay, Canada","AuthorsString":"Posdaljian, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391017,"RR":"<b>Thompson, M.S.A.; Couce, E.; Schratzberger, M.; Lynam, C.P.</b> (2023). Climate change affects the distribution of diversity across marine food webs. <i>Glob. Chang. Biol. 29(23)</i>: 6606-6619. <a href=\"https://dx.doi.org/10.1111/gcb.16881\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16881</a>","StandardTitle":"Climate change affects the distribution of diversity across marine food webs","AuthorsString":"Thompson, M.S.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336105,"RR":"<b>Altieri, A.H.; Gedan, K.B.</b> (2014). Climate change and dead zones. <i>Glob. Chang. Biol. 21(4)</i>: 1395-1406. <a href=\"https://dx.doi.org/10.1111/gcb.12754\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12754</a>","StandardTitle":"Climate change and dead zones","AuthorsString":"Altieri, A.H.; Gedan, K.B.","BibLvlCode":"AS"},{"BRefID":238688,"RR":"<b>Engelhard, G.H.; Righton, D.A.; Pinnegar, J.K.</b> (2014). Climate change and fishing: a century of shifting distribution in North Sea cod. <i>Glob. Chang. Biol. 2014(8)</i>: 11. <a href=\"https://dx.doi.org/10.1111/gcb.12513\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12513</a>","StandardTitle":"Climate change and fishing: a century of shifting distribution in North Sea cod","AuthorsString":"Engelhard, G.H. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":293850,"RR":"<b>Maclean, I.M.D.; Austin, G.E.; Rehfisch, M.M.; Blew, J.; Crowe, O.; Delany, S.; Devos, K.; Deceuninck, B.; Günther, K.; Laursen, K.; van Roomen, M.; Wahl, J.</b> (2008). Climate change causes rapid changes in the distribution and site abundance of birds in winter. <i>Glob. Chang. Biol. 14(11)</i>: 2489-2500. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2008.01666.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2008.01666.x</a>","StandardTitle":"Climate change causes rapid changes in the distribution and site abundance of birds in winter","AuthorsString":"Maclean, I.M.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":361833,"RR":"<b>Hodapp, D.; Roca, I.T.; Fiorentino, D.; Garilao, C.; Kaschner, K.; Kesner-Reyes, K.; Schneider, B.; Segschneider, J.; Kocsis, A.T.; Kiessling, W.; Brey, T.; Froese, R.</b> (2023). Climate change disrupts core habitats of marine species. <i>Glob. Chang. Biol. 29(12)</i>: 3304-3317. <a href=\"https://dx.doi.org/10.1111/gcb.16612\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16612</a>","StandardTitle":"Climate change disrupts core habitats of marine species","AuthorsString":"Hodapp, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":256993,"RR":"<b>Moreau, S.; Mostajir, B.; Belanger, S.; Schloss, I.; Vancoppenolle, M.; Demers, S.; Ferreyra, G.</b> (2015). Climate change enhances primary production in the western Antarctic Peninsula. <i>Glob. Chang. Biol. 21(6)</i>: 2191-2205. <a href=\"https://dx.doi.org/10.1111/gcb.12878\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12878</a>","StandardTitle":"Climate change enhances primary production in the western Antarctic Peninsula","AuthorsString":"Moreau, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391893,"RR":"<b>Asch, R.G.; Stock, C.A.; Sarmiento, J.L.</b> (2019). Climate change impacts on mismatches between phytoplankton blooms and fish spawning phenology. <i>Glob. Chang. Biol. 25(8)</i>: 2544-2559. <a href=\"https://dx.doi.org/10.1111/gcb.14650\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14650</a>","StandardTitle":"Climate change impacts on mismatches between phytoplankton blooms and fish spawning phenology","AuthorsString":"Asch, R.G.; Stock, C.A.; Sarmiento, J.L.","BibLvlCode":"AS"},{"BRefID":302055,"RR":"<b>Chan, F.T.; Stanislawczyk, K.; Sneekes, A.C.; Dvoretsky, A.G.; Gollasch, S.; Minchin, D.; David, M.; Jelmert, A.; Albretsen, J.; Bailey, S.A.</b> (2019). Climate change opens new frontiers for marine species in the Arctic: current trends and future invasion risks. <i>Glob. Chang. Biol. 25(1)</i>: 25-38. <a href=\"https://dx.doi.org/10.1111/gcb.14469\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14469</a>","StandardTitle":"Climate change opens new frontiers for marine species in the Arctic: current trends and future invasion risks","AuthorsString":"Chan, F.T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":119465,"RR":"<b>Hiddink, J.G.; ter Hofstede, R.</b> (2008). Climate induced increases in species richness of marine fishes. <i>Glob. Chang. Biol. 14(3)</i>: 453-460. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2007.01518.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2007.01518.x</a>","StandardTitle":"Climate induced increases in species richness of marine fishes","AuthorsString":"Hiddink, J.G.; ter Hofstede, R.","BibLvlCode":"AS"},{"BRefID":287597,"RR":"<b>Storch, D.; Menzel, L.; Frickenhaus, S.; Pörtner, H.O.</b> (2014). Climate sensitivity across marine domains of life: limits to evolutionary adaptation shape species interactions. <i>Glob. Chang. Biol. 20(10)</i>: 3059-3067. <a href=\"https://dx.doi.org/10.1111/gcb.12645\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12645</a>","StandardTitle":"Climate sensitivity across marine domains of life: limits to evolutionary adaptation shape species interactions","AuthorsString":"Storch, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":287997,"RR":"<b>Hixson, S.M.; Arts, M.T.</b> (2016). Climate warming is predicted to reduce omega-3, long-chain, polyunsaturated fatty acid production in phytoplankton. <i>Glob. Chang. Biol. 22(8)</i>: 2744-2755. <a href=\"https://dx.doi.org/10.1111/gcb.13295\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13295</a>","StandardTitle":"Climate warming is predicted to reduce omega-3, long-chain, polyunsaturated fatty acid production in phytoplankton","AuthorsString":"Hixson, S.M.; Arts, M.T.","BibLvlCode":"AS"},{"BRefID":325331,"RR":"<b>Loewen, C.J.G.; Strecker, A.L.; Gilbert, B.; Jackson, D.A.</b> (2020). Climate warming moderates the impacts of introduced sportfish on multiple dimensions of prey biodiversity. <i>Glob. Chang. Biol. 26(9)</i>: 4937-4951. <a href=\"https://dx.doi.org/10.1111/gcb.15225\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15225</a>","StandardTitle":"Climate warming moderates the impacts of introduced sportfish on multiple dimensions of prey biodiversity","AuthorsString":"Loewen, C.J.G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344983,"RR":"<b>Cacciapaglia, C.; van Woesik, R.</b> (2016). Climate-change refugia: shading reef corals by turbidity. <i>Glob. Chang. Biol. 22(3)</i>: 1145-1154. <a href=\"https://dx.doi.org/10.1111/gcb.13166\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13166</a>","StandardTitle":"Climate-change refugia: shading reef corals by turbidity","AuthorsString":"Cacciapaglia, C.; van Woesik, R.","BibLvlCode":"AS"},{"BRefID":322089,"RR":"<b>Morato, T.; González‐Irusta, J.-M.; Dominguez‐Carrió, C.; Wei, C.-L.; Davies, A.; Sweetman, A.K.; Taranto, G.H.; Beazley, L.; García‐Alegre, A.; Grehan, A.; Laffargue, P.; Murillo, F.J.; Sacau, M.; Vaz, S.; Kenchington, E.; Arnaud‐Haond, S.; Callery, O.; Chimienti, G.; Cordes, E.; Egilsdottir, H.; Freiwald, A.; Gasbarro, R.; Gutiérrez‐Zárate, C.; Gianni, M.; Gilkinson, K.; Wareham Hayes, V.E.; Hebbeln, D.; Hedges, K.; Henry, L.‐A.; Johnson, D.; Koen‐Alonso, M.; Lirette, C.; Mastrototaro, F.; Menot, L.; Molodtsova, T.; Durán Muñoz, P.; Orejas, C.; Pennino, M.G.; Puerta, P.; Ragnarsson, S.Á.; Ramiro‐Sánchez, B.; Rice, J.; Rivera, J.; Roberts, J.M.; Ross, S.W.; Rueda, J.L.; Sampaio, Í.; Snelgrove, P.; Stirling, D.; Treble, M.A.; Urra, J.; Vad, J.; van Oevelen, D.; Watling, L.; Walkusz, W.; Wienberg, C.; Woillez, M.; Levin, L.A.; Carreiro‐Silva, M.</b> (2020). Climate‐induced changes in the suitable habitat of cold‐water corals and commercially important deep‐sea fishes in the North Atlantic. <i>Glob. Chang. Biol. 26(4)</i>: 2181-2202. <a href=\"https://dx.doi.org/10.1111/gcb.14996\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14996</a>","StandardTitle":"Climate‐induced changes in the suitable habitat of cold‐water corals and commercially important deep‐sea fishes in the North Atlantic","AuthorsString":"Morato, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":347215,"RR":"<b>Blain, C.O.; Hansen, S.A.; Shears, N.T.</b> (2021). Coastal darkening substantially limits the contribution of kelp to coastal carbon cycles. <i>Glob. Chang. Biol. 27(21)</i>: 5547-5563. <a href=\"https://dx.doi.org/10.1111/gcb.15837\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15837</a>","StandardTitle":"Coastal darkening substantially limits the contribution of kelp to coastal carbon cycles","AuthorsString":"Blain, C.O.; Hansen, S.A.; Shears, N.T.","BibLvlCode":"AS"},{"BRefID":417426,"RR":"<b>Wang, D.; Gu, G.; Temmerman, S.; Belliard, J.-P.; Gourgue, O.; Xue, L.; Bai, J.</b> (2025). Coastal marsh vulnerability to sea-level rise is exacerbated by plant species invasion. <i>Glob. Chang. Biol. 31(2)</i>: e70058. <a href=\"https://dx.doi.org/10.1111/gcb.70058\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70058</a>","StandardTitle":"Coastal marsh vulnerability to sea-level rise is exacerbated by plant species invasion","AuthorsString":"Wang, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336281,"RR":"<b>Saunders, M.I.; Leon, J.; Phinn, S.R.; Callaghan, D.P.; O'Brien, K.R.; Roelfsema, C.M.; Lovelock, C.E.; Lyons, M.B.; Mumby, P.J.</b> (2013). Coastal retreat and improved water quality mitigate losses of seagrass from sea level rise. <i>Glob. Chang. Biol. 19(8)</i>: 2569-2583. <a href=\"https://dx.doi.org/10.1111/gcb.12218\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12218</a>","StandardTitle":"Coastal retreat and improved water quality mitigate losses of seagrass from sea level rise","AuthorsString":"Saunders, M.I. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":381586,"RR":"<b>Niiranen, S.; Yletyinen, J.; Tomczak, M.T.; Blenckner, T.; Hjerne, O.; MacKenzie, B.R.; Müller-Karulis, B.; Neumann, T.; Meier, H.E.M.</b> (2013). Combined effects of global climate change and regional ecosystem drivers on an exploited marine food web. <i>Glob. Chang. Biol. 19(11)</i>: 3327-3342. <a href=\"https://dx.doi.org/10.1111/gcb.12309\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12309</a>","StandardTitle":"Combined effects of global climate change and regional ecosystem drivers on an exploited marine food web","AuthorsString":"Niiranen, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":284818,"RR":"<b>Martínez, B.; Arenas, F.; Trilla, A.; Viejo, R.M.; Carreño, F.</b> (2015). Combining physiological threshold knowledge to species distribution models is key to improving forecasts of the future niche for macroalgae. <i>Glob. Chang. Biol. 21(4)</i>: 1422-1433. <a href=\"https://dx.doi.org/10.1111/gcb.12655\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12655</a>","StandardTitle":"Combining physiological threshold knowledge to species distribution models is key to improving forecasts of the future niche for macroalgae","AuthorsString":"Martínez, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417909,"RR":"<b>Metaxas, A.; Anglin, C.D.; Cross, A.; Drazen, J.; Haeckel, M.; Mudd, G.; Smith, C.R.; Smith, S.; Weaver, P.P.E.; Sonter, L.; Amon, D.J.; Erskine, P.D.; Levin, L.A.; Lily, H.; Maest, A.S.; Mestre, N.C.; Ramirez-Llodra, E.; Sánchez, L.E.; Sharma, R.; Vanreusel, A.; Wheston, S.; Tunnicliffe, V.</b> (2024). Comparing environmental impacts of deep-seabed and land-based mining: A defensible framework. <i>Glob. Chang. Biol. 30(5)</i>. <a href=\"https://dx.doi.org/10.1111/gcb.17334\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17334</a>","StandardTitle":"Comparing environmental impacts of deep-seabed and land-based mining: A defensible framework","AuthorsString":"Metaxas, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":295511,"RR":"<b>Lacroix, G.; Barbut, L.; Volckaert, F.A.M.</b> (2018). Complex effect of projected sea temperature and wind change on flatfish dispersal. <i>Glob. Chang. Biol. 24(1)</i>: 85-100. <a href=\"https://dx.doi.org/10.1111/gcb.13915\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13915</a>","StandardTitle":"Complex effect of projected sea temperature and wind change on flatfish dispersal","AuthorsString":"Lacroix, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":343729,"RR":"<b>Pita, I.; Mouillot, D.; Moullec, F.; Shin, Y.-J.</b> (2021). Contrasted patterns in climate change risk for Mediterranean fisheries. <i>Glob. Chang. Biol. 27(22)</i>: 5920-5933. <a href=\"https://dx.doi.org/10.1111/gcb.15814\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15814</a>","StandardTitle":"Contrasted patterns in climate change risk for Mediterranean fisheries","AuthorsString":"Pita, I. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":405434,"RR":"<b>Lucey, N.M.; César-Ávila, C.; Eckert, A.; Rajagopalan, A.; Brister, W.C.; Kline, E.; Altieri, A.H.; Deutsch, C.A.; Collin, R.</b> (2024). Coral community composition linked to hypoxia exposure. <i>Glob. Chang. Biol. 30(10)</i>: e17545. <a href=\"https://dx.doi.org/10.1111/gcb.17545\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17545</a>","StandardTitle":"Coral community composition linked to hypoxia exposure","AuthorsString":"Lucey, N.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":365790,"RR":"<b>van Woesik, Robert; Shlesinger, Tom; Grottoli, Andréa G.; Toonen, Rob J.; Vega Thurber, Rebecca; Warner, Mark E.; Marie Hulver, Ann; Chapron, Leila; McLachlan, Rowan H.; Albright, Rebecca; Crandall, Eric; DeCarlo, Thomas M.; Donovan, Mary K.; Eirin‐Lopez, Jose; Harrison, Hugo B.; Heron, Scott F.; Huang, Danwei; Humanes, Adriana; Krueger, Thomas; Madin, Joshua S.; Manzello, Derek; McManus, Lisa C.; Matz, Mikhail; Muller, Erinn M.; Rodriguez‐Lanetty, Mauricio; Vega‐Rodriguez, Maria; Voolstra, Christian R.; Zaneveld, Jesse</b> (2022). Coral‐bleaching responses to climate change across biological scales. <i>Glob. Chang. Biol. 28(14)</i>: 4229-4250. <a href=\"https://dx.doi.org/10.1111/gcb.16192\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16192</a>","StandardTitle":"Coral‐bleaching responses to climate change across biological scales","AuthorsString":"van Woesik, Robert <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":247390,"RR":"<b>Collard, M.; De Ridder, C.; David, B; Dehairs, F.; Dubois, P.</b> (2015). Could the acid-base status of Antarctic sea urchins indicate a better-than-expected resilience to near-future ocean acidification? <i>Glob. Chang. Biol. 21(2)</i>: 605-617. <a href=\"http://dx.doi.org/10.1111/gcb.12735\" target=\"_blank\">dx.doi.org/10.1111/gcb.12735</a>","StandardTitle":"Could the acid-base status of Antarctic sea urchins indicate a better-than-expected resilience to near-future ocean acidification?","AuthorsString":"Collard, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353099,"RR":"<b>Zhu, B.-R.; Verhoeven, M.A.; Velasco, N.; Sanchez-Aguilar, L.; Zhang, Z.; Piersma, T.</b> (2022). Current breeding distributions and predicted range shifts under climate change in two subspecies of Black‐tailed Godwits in Asia. <i>Glob. Chang. Biol. 28(18)</i>: 5416-5426. <a href=\"https://dx.doi.org/10.1111/gcb.16308\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16308</a>","StandardTitle":"Current breeding distributions and predicted range shifts under climate change in two subspecies of Black‐tailed Godwits in Asia","AuthorsString":"Zhu, B.-R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":112728,"RR":"<b>MacKenzie, B.R.; Schiedek, D.</b> (2007). Daily ocean monitoring since the 1860s shows record warming of northern European seas. <i>Glob. Chang. Biol. 13(7)</i>: 1335-1347. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2007.01360.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2007.01360.x</a>","StandardTitle":"Daily ocean monitoring since the 1860s shows record warming of northern European seas","AuthorsString":"MacKenzie, B.R.; Schiedek, D.","BibLvlCode":"AS"},{"BRefID":437455,"RR":"<b>Oortwijn, T.; Lameris, T.K.; Zhemchuzhnikov, M.K.; Dekinga, A.; ten Horn, J.; Kutcherov, D.; Lisovski, S.; Piersma, T.; Rakhimberdiev, E.; Soloviev, M.Y.; Spaans, B.; Syroechkovsky, E.E.; Tomkovich, P.S.; Zhemchuzhnikova, E.A.; van Gils, J.A.</b> (2025). Demand‐resource mismatch explains body shrinkage in a migratory shorebird. <i>Glob. Chang. Biol. 31(4)</i>: e70170. <a href=\"https://dx.doi.org/10.1111/gcb.70170\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70170</a>","StandardTitle":"Demand‐resource mismatch explains body shrinkage in a migratory shorebird","AuthorsString":"Oortwijn, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":351992,"RR":"<b>Álvarez-Romero, J.G.; Munguía-Vega, A.; Beger, M.; Mar Mancha-Cisneros, M.; Suárez-Castillo, A.N.; Gurney, G.G.; Pressey, R.L.; Gerber, L.R.; Morzaria-Luna, H.N.; Reyes-Bonilla, H.; Adams, V.M.; Kolb, M.; Graham, E.M.; VanDerWal, J.; Castillo-López, A.; Hinojosa-Arango, G.; Petatán-Ramírez, D.; Moreno-Báez, M.; Godínez-Reyes, C.R.; Torre, J.</b> (2018). Designing connected marine reserves in the face of global warming. <i>Glob. Chang. Biol. 24(2)</i>: e671-e691. <a href=\"https://dx.doi.org/10.1111/gcb.13989\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13989</a>","StandardTitle":"Designing connected marine reserves in the face of global warming","AuthorsString":"Álvarez-Romero, J.G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":324121,"RR":"<b>Bramanti, L.; Movilla, J.; Guron, M.; Calvo, E.; Gori, A.; Dominguez-Carrio, C.; Grinyo, J.; Lopez-Sanz, A.; Martínez-Quintana, A.; Pelejero, C.; Ziveri, P.; Rossi, S.</b> (2013). Detrimental effects of ocean acidification on the economically important Mediterranean red coral (<i>Corallium rubrum</i>). <i>Glob. Chang. Biol. 19(6)</i>: 1897-1908. <a href=\"https://dx.doi.org/10.1111/gcb.12171\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12171</a>","StandardTitle":"Detrimental effects of ocean acidification on the economically important Mediterranean red coral (<i>Corallium rubrum</i>)","AuthorsString":"Bramanti, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":341134,"RR":"<b>Møller, A.M.; Flensted-Jensen, E.; Mardal, W.</b> (2006). Dispersal and climate change: A case study of the Arctic tern <i>Sterna paradisaea</i>. <i>Glob. Chang. Biol. 12(10)</i>: 2005-2013. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2006.01216.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2006.01216.x</a>","StandardTitle":"Dispersal and climate change: A case study of the Arctic tern <i>Sterna paradisaea</i>","AuthorsString":"Møller, A.M.; Flensted-Jensen, E.; Mardal, W.","BibLvlCode":"AS"},{"BRefID":369410,"RR":"<b>Frada, M.J.; Keuter, S.; Koplovitz, G.; Avrahami, Y.</b> (2021). Divergent fate of coccolithophores in a warming tropical ecosystem. <i>Glob. Chang. Biol. 28(4)</i>: 1560-1568. <a href=\"https://dx.doi.org/10.1111/gcb.16007\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16007</a>","StandardTitle":"Divergent fate of coccolithophores in a warming tropical ecosystem","AuthorsString":"Frada, M.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344986,"RR":"<b>Chefaoui, R.M.; Duarte, C.M.; Serrão, E.A.</b> (2018). Dramatic loss of seagrass habitat under projected climate change in the Mediterranean Sea. <i>Glob. Chang. Biol. 24(10)</i>: 4919-4928. <a href=\"https://dx.doi.org/10.1111/gcb.14401\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14401</a>","StandardTitle":"Dramatic loss of seagrass habitat under projected climate change in the Mediterranean Sea","AuthorsString":"Chefaoui, R.M.; Duarte, C.M.; Serrão, E.A.","BibLvlCode":"AS"},{"BRefID":345095,"RR":"<b>Belmaker, J.; Parravicini, V.; Kulbicki, M.</b> (2014). Ecological traits and environmental affinity explain Red Sea fish introduction into the Mediterranean - Corrigendum. <i>Glob. Chang. Biol. 20(2)</i>: 680-680. <a href=\"https://dx.doi.org/10.1111/gcb.12376\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12376</a>","StandardTitle":"Ecological traits and environmental affinity explain Red Sea fish introduction into the Mediterranean - Corrigendum","AuthorsString":"Belmaker, J.; Parravicini, V.; Kulbicki, M.","BibLvlCode":"AS"},{"BRefID":344980,"RR":"<b>Belmaker, J.; Parravicini, V.; Kulbicki, M.</b> (2013). Ecological traits and environmental affinity explain Red Sea fish introduction into the Mediterranean. <i>Glob. Chang. Biol. 19(5)</i>: 1373-1382. <a href=\"https://dx.doi.org/10.1111/gcb.12132\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12132</a>","StandardTitle":"Ecological traits and environmental affinity explain Red Sea fish introduction into the Mediterranean","AuthorsString":"Belmaker, J.; Parravicini, V.; Kulbicki, M.","BibLvlCode":"AS"},{"BRefID":220089,"RR":"<b>Gypens, N.; Borges, A.V.; Lancelot, C.</b> (2009). Effect of eutrophication on air-sea CO<sub>2</sub> fluxes in the coastal Southern North Sea: a model study of the past 50 years. <i>Glob. Chang. Biol. 15(4)</i>: 1040-1056. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2008.01773.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2008.01773.x</a>","StandardTitle":"Effect of eutrophication on air-sea CO<sub>2</sub> fluxes in the coastal Southern North Sea: a model study of the past 50 years","AuthorsString":"Gypens, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":73487,"RR":"<b>Fox, A.D.; Madsen, J.; Boyd, H.; Kuijken, E.; Norriss, D.W.; Tombre, I.M.; Stroud, D.A.</b> (2005). Effects of agricultural change on abundance, fitness components and distribution of two Arctic-nesting goose populations. <i>Glob. Chang. Biol. 11(6)</i>: 881-893. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2005.00941.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2005.00941.x</a>","StandardTitle":"Effects of agricultural change on abundance, fitness components and distribution of two Arctic-nesting goose populations","AuthorsString":"Fox, A.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":259319,"RR":"<b>Brown, C.J.; Fulton, E.A.; Hobday, A.J.; Matear, R.J.; Possingham, H.P.; Bulman, C.; Christensen, V.; Forrest, R.E.; Gehrke, P.C.; Gribble, N.A.; Griffiths, S.P.; Lozano-Montes, H.; Martin, J.M.; Metcalf, S.; Okey, T.A.; Watson, R.; Richardson, A.J.</b> (2010). Effects of climate-driven primary production change on marine food webs: implications for fisheries and conservation. <i>Glob. Chang. Biol. 16(4)</i>: 1194-1212. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2009.02046.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2009.02046.x</a>","StandardTitle":"Effects of climate-driven primary production change on marine food webs: implications for fisheries and conservation","AuthorsString":"Brown, C.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":289172,"RR":"<b>Dahlke, F.T.; Leo, E.; Mark, F.C.; Pörtner, H.O.; Bickmeyer, U.; Frickenhaus, S.; Storch, D.</b> (2017). Effects of ocean acidification increase embryonic sensitivity to thermal extremes in Atlantic cod, <i>Gadus morhua</i>. <i>Glob. Chang. Biol. 23(4)</i>: 1499-1510. <a href=\"https://dx.doi.org/10.1111/gcb.13527\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13527</a>","StandardTitle":"Effects of ocean acidification increase embryonic sensitivity to thermal extremes in Atlantic cod, <i>Gadus morhua</i>","AuthorsString":"Dahlke, F.T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":404666,"RR":"<b>Chen, X.; Chen, T.; Liu, Y.; He, B.; Liu, S.; Guo, R.; Dolman, H.</b> (2024). Emergent constraints on historical and future global gross primary productivity. <i>Glob. Chang. Biol. 30(8)</i>: e17479. <a href=\"https://dx.doi.org/10.1111/gcb.17479\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17479</a>","StandardTitle":"Emergent constraints on historical and future global gross primary productivity","AuthorsString":"Chen, X. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":294535,"RR":"<b>Miloslavich, P.; Bax, N.J.; Simmons, S.E.; Klein, E.; Appeltans, W.; Aburto-Oropeza, O.; Garcia, M.A.; Batten, S.D.; Benedetti-Cecchi, L.; Checkley Jr., D.M.; Chiba, S.; Duffy, J.M.; Dunn, D.C.; Fischer, A.; Gunn, J.; Kudela, R.; Marsac, F.; Müller-Karger, F.E.; Obura, D.; Shin, Y.-J.</b> (2018). Essential ocean variables for global sustained observations of biodiversity and ecosystem changes. <i>Glob. Chang. Biol. 24(6)</i>: 2416-2433. <a href=\"https://dx.doi.org/10.1111/gcb.14108\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14108</a>","StandardTitle":"Essential ocean variables for global sustained observations of biodiversity and ecosystem changes","AuthorsString":"Miloslavich, P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":418722,"RR":"<b>Boyse, E.; Clark, M.S.; Carr, I.M.; Cook, A.J.; Archambault, P.; Holloway, J.E.; Luo, Z.; Milton, M.; Roy, M.; Dawson, J.; Peck, V.</b> (2025). Expanding monitoring capacity for potential invasive species in Arctic Canada with environmental DNA metabarcoding. <i>Glob. Chang. Biol. 31(9)</i>: e70452. <a href=\"https://dx.doi.org/10.1111/gcb.70452\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70452</a>","StandardTitle":"Expanding monitoring capacity for potential invasive species in Arctic Canada with environmental DNA metabarcoding","AuthorsString":"Boyse, E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336180,"RR":"<b>Boyd, Philip W.; Collins, Sinead; Dupont, Sam; Fabricius, Katharina; Gattuso, Jean-Pierre; Havenhand, Jonathan; Hutchins, David A.; Riebesell, Ulf; Rintoul, Max S.; Vichi, Marcello; Biswas, Haimanti; Ciotti, Aurea; Gao, Kunshan; Gehlen, Marion; Hurd, Catriona L.; Kurihara, Haruko; McGraw, Christina M.; Navarro, Jorge M.; Nilsson, Göran E.; Passow, Uta; Pörtner, Hans-Otto</b> (2018). Experimental strategies to assess the biological ramifications of multiple drivers of global ocean change-A review. <i>Glob. Chang. Biol. 24(6)</i>: 2239-2261. <a href=\"https://dx.doi.org/10.1111/gcb.14102\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14102</a>","StandardTitle":"Experimental strategies to assess the biological ramifications of multiple drivers of global ocean change-A review","AuthorsString":"Boyd, Philip W. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":317440,"RR":"<b>de Bakker, D.M.; van Duyl, F.C.; Perry, C.T.; Meesters, E.H.</b> (2019). Extreme spatial heterogeneity in carbonate accretion potential on a Caribbean fringing reef linked to local human disturbance gradients. <i>Glob. Chang. Biol. 25(12)</i>: 4092-4104. <a href=\"https://dx.doi.org/10.1111/gcb.14800\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14800</a>","StandardTitle":"Extreme spatial heterogeneity in carbonate accretion potential on a Caribbean fringing reef linked to local human disturbance gradients","AuthorsString":"de Bakker, D.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":238975,"RR":"<b>Bokhorst, S.; Phoenix, G.K.; Berke, J.W.; Callaghan, T.V.; Huyer-Brugman, F.; Berg, M.P.</b> (2012). Extreme winter warming events more negatively impact small rather than large soil  fauna: shift in community composition explained by traits not taxa. <i>Glob. Chang. Biol. 18</i>: 1152–1162. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2011.02565.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2011.02565.x</a>","StandardTitle":"Extreme winter warming events more negatively impact small rather than large soil  fauna: shift in community composition explained by traits not taxa","AuthorsString":"Bokhorst, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":311049,"RR":"<b>Törnroos, A.; Pecuchet, L.; Olsson, J.; Gårdmark, A.; Blomqvist, M.; Lindegren, M.; Bonsdorff, E.</b> (2019). Four decades of functional community change reveals gradual trends and low interlinkage across trophic groups in a large marine ecosystem. <i>Glob. Chang. Biol. 25(4)</i>: 1235-1246. <a href=\"https://dx.doi.org/10.1111/gcb.14552\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14552</a>","StandardTitle":"Four decades of functional community change reveals gradual trends and low interlinkage across trophic groups in a large marine ecosystem","AuthorsString":"Törnroos, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":363361,"RR":"<b>Aldridge, D.C.; Ollard, I.S.; Bespalaya, Y.V.; Bolotov, I.N.; Douda, K.; Geist, J.; Haag, W.R.; Klunzinger, M.W.; Lopes-Lima, M.; Mlambo, M.C.; Riccardi, N.; Sousa, R.; Strayer, D.L.; Torres, S.H.; Vaughn, C.C.; Zajac, T.; Zieritz, A.</b> (2023). Freshwater mussel conservation: A global horizon scan of emerging threats and opportunities. <i>Glob. Chang. Biol. 29(3)</i>: 575-589. <a href=\"https://dx.doi.org/10.1111/gcb.16510\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16510</a>","StandardTitle":"Freshwater mussel conservation: A global horizon scan of emerging threats and opportunities","AuthorsString":"Aldridge, D.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":329587,"RR":"<b>Morris, R.L.; Konlechner, T.M.; Ghisalberti, M.; Swearer, S.E.</b> (2018). From grey to green: Efficacy of eco-engineering solutions for nature-based coastal defence. <i>Glob. Chang. Biol. 24(5)</i>: 1827-1842. <a href=\"https://dx.doi.org/10.1111/gcb.14063\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14063</a>","StandardTitle":"From grey to green: Efficacy of eco-engineering solutions for nature-based coastal defence","AuthorsString":"Morris, R.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":285371,"RR":"<b>Byrne, M.; Gall, M.; Wolfe, K.; Agüera, A.</b> (2016). From pole to pole: the potential for the Arctic seastar <i>Asterias amurensis</i> to invade a warming Southern Ocean. <i>Glob. Chang. Biol. 22(12)</i>: 3874-3887. <a href=\"https://dx.doi.org/10.1111/gcb.13304\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13304</a>","StandardTitle":"From pole to pole: the potential for the Arctic seastar <i>Asterias amurensis</i> to invade a warming Southern Ocean","AuthorsString":"Byrne, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":303230,"RR":"<b>McLean, M.J.; Mouillot, D.; Goascoz, N.; Schlaich, I.; Auber, A.</b> (2019). Functional reorganization of marine fish nurseries under climate warming. <i>Glob. Chang. Biol. 25(2)</i>: 660-674. <a href=\"https://dx.doi.org/10.1111/gcb.14501\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14501</a>","StandardTitle":"Functional reorganization of marine fish nurseries under climate warming","AuthorsString":"McLean, M.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":393462,"RR":"<b>Quigley, K.M.; Baird, A.H.</b> (2024). Future climate warming threatens coral reef function on World Heritage reefs. <i>Glob. Chang. Biol. 30(7)</i>. <a href=\"https://dx.doi.org/10.1111/gcb.17407\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17407</a>","StandardTitle":"Future climate warming threatens coral reef function on World Heritage reefs","AuthorsString":"Quigley, K.M.; Baird, A.H.","BibLvlCode":"AS"},{"BRefID":313743,"RR":"<b>Brustolin, M.C.; Nagelkerken, I.; Ferreira, C.M.; Goldenberg, S.U.; Ullah, H.; Fonseca, G.</b> (2019). Future ocean climate homogenizes communities across habitats through diversity loss and rise of generalist species. <i>Glob. Chang. Biol. 25(10)</i>: 3539-3548. <a href=\"https://dx.doi.org/10.1111/gcb.14745\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14745</a>","StandardTitle":"Future ocean climate homogenizes communities across habitats through diversity loss and rise of generalist species","AuthorsString":"Brustolin, M.C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":311047,"RR":"<b>Tulloch, V.J.D.; Plagányi, E.; Brown, C.J.; Richardson, A.J.; Matear, R.</b> (2019). Future recovery of baleen whales is imperiled by climate change. <i>Glob. Chang. Biol. 25(4)</i>: 1263-1281. <a href=\"https://dx.doi.org/10.1111/gcb.14573\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14573</a>","StandardTitle":"Future recovery of baleen whales is imperiled by climate change","AuthorsString":"Tulloch, V.J.D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344992,"RR":"<b>Wood, G.; Marzinelli, E.M.; Campbell, A.H.; Steinberg, P.D.; Vergés, A.; Coleman, M.A.</b> (2021). Genomic vulnerability of a dominant seaweed points to future‐proofing pathways for Australia's underwater forests. <i>Glob. Chang. Biol. 27(10)</i>: 2200-2212. <a href=\"https://dx.doi.org/10.1111/gcb.15534\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15534</a>","StandardTitle":"Genomic vulnerability of a dominant seaweed points to future‐proofing pathways for Australia's underwater forests","AuthorsString":"Wood, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":417421,"RR":"<b>Orihuela-Rivero, R.; Morente-López, J.; Reyes-Betancort, J.A.; Schaefer, H.; Valido, A.; de Sequeira, M.M.; Romeiras, M.M.; Góis-Marques, C.A.; Salas-Pascual, M.; Vanderpoorten, A.; Fernández-Palacios, J.M.; Patiño, J.</b> (2025). Geographic and Biological Drivers Shape Anthropogenic Extinctions in the Macaronesian Vascular Flora. <i>Glob. Chang. Biol. 31(2)</i>. <a href=\"https://dx.doi.org/10.1111/gcb.70072\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70072</a>","StandardTitle":"Geographic and Biological Drivers Shape Anthropogenic Extinctions in the Macaronesian Vascular Flora","AuthorsString":"Orihuela-Rivero, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":319802,"RR":"<b>Venegas-Li, R.; Levin, N.; Morales-Barquero, L.; Kaschner, K.; Garilao, C.; Kark, S.</b> (2019). Global assessment of marine biodiversity potentially threatened by offshore hydrocarbon activities. <i>Glob. Chang. Biol. 25(6)</i>: 2009-2020. <a href=\"https://dx.doi.org/10.1111/gcb.14616\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14616</a>","StandardTitle":"Global assessment of marine biodiversity potentially threatened by offshore hydrocarbon activities","AuthorsString":"Venegas-Li, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336007,"RR":"<b>Goldberg, L.; Lagomasino, D.; Thomas, N.; Fatoyinbo, T.</b> (2020). Global declines in human‐driven mangrove loss. <i>Glob. Chang. Biol. 26(10)</i>: 5844-5855. <a href=\"https://dx.doi.org/10.1111/gcb.15275\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15275</a>","StandardTitle":"Global declines in human‐driven mangrove loss","AuthorsString":"Goldberg, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":289304,"RR":"<b>Pansch, C.; Schaub, I.; Havenhand, J.; Wahl, M.</b> (2014). Habitat traits and food availability determine the response of marine invertebrates to ocean acidification. <i>Glob. Chang. Biol. 20(3)</i>: 765-777. <a href=\"https://dx.doi.org/10.1111/gcb.12478\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12478</a>","StandardTitle":"Habitat traits and food availability determine the response of marine invertebrates to ocean acidification","AuthorsString":"Pansch, C. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":290137,"RR":"<b>Stewart, A.; Hablützel, P.I.; Brown, M.; Watson, H.V.; Parker-Norman, S.; Tober, A.V.; Thomason, A.G.; Friberg, I.M.; Cable, J.; Jackson, J.A.</b> (2018). Half the story: thermal effects on within-host infectious disease progression in a warming climate. <i>Glob. Chang. Biol. 24(1)</i>: 371-386. <a href=\"https://dx.doi.org/10.1111/gcb.13842\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13842</a>","StandardTitle":"Half the story: thermal effects on within-host infectious disease progression in a warming climate","AuthorsString":"Stewart, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":201143,"RR":"<b>Lynam, C.P.; Lilley, M.K.S.; Bastian, T.; Doyle, T.K.; Beggs, S.E.; Hays, G.C.</b> (2011). Have jellyfish in the Irish Sea benefited from climate change and overfishing? <i>Glob. Chang. Biol. 17(2)</i>: 767-782. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2010.02352.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2010.02352.x</a>","StandardTitle":"Have jellyfish in the Irish Sea benefited from climate change and overfishing?","AuthorsString":"Lynam, C.P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":380807,"RR":"<b>Chan, W.Y.; Meyers, L.; Rudd, D.; Topa, S.H.; van Oppen, M.J.H.</b> (2023). Heat‐evolved algal symbionts enhance bleaching tolerance of adult corals without trade‐off against growth. <i>Glob. Chang. Biol. 29(24)</i>: 6945-6968. <a href=\"https://dx.doi.org/10.1111/gcb.16987\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16987</a>","StandardTitle":"Heat‐evolved algal symbionts enhance bleaching tolerance of adult corals without trade‐off against growth","AuthorsString":"Chan, W.Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353287,"RR":"<b>Lacroix, F.; Ilyina, T.; Mathis, M.; Laruelle, G.G.; Regnier, P.</b> (2021). Historical increases in land-derived nutrient inputs may alleviate effects of a changing physical climate on the oceanic carbon cycle. <i>Glob. Chang. Biol. 27(21)</i>: 5491-5513. <a href=\"https://dx.doi.org/10.1111/gcb.15822\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15822</a>","StandardTitle":"Historical increases in land-derived nutrient inputs may alleviate effects of a changing physical climate on the oceanic carbon cycle","AuthorsString":"Lacroix, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":415273,"RR":"<b>Su, S.; Luo, Z.; Kang, J.; Guo, X.; Wang, C.; Jin, R.; Du, J.; Zheng, X.; Hii, K.S.; Fu, S.; Hu, W.; Chen, B.</b> (2025). How does climate change influence the regional ecological–social risks of harmful dinoflagellates? A predictive study of China's coastal waters. <i>Glob. Chang. Biol. 31(7)</i>: e70323. <a href=\"https://dx.doi.org/10.1111/gcb.70323\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70323</a>","StandardTitle":"How does climate change influence the regional ecological–social risks of harmful dinoflagellates? A predictive study of China's coastal waters","AuthorsString":"Su, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391261,"RR":"<b>Roethig, T.; Trevathan-Tackett, S.M.; Voolstra, C.R.; Ross, C.; Chaffron, S.; Durack, P.J.; Warmuth, L.M.; Sweet, M.</b> (2023). Human-induced salinity changes impact marine organisms and ecosystems. <i>Glob. Chang. Biol. 29(17)</i>: 4731-4749. <a href=\"https://dx.doi.org/10.1111/gcb.16859\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16859</a>","StandardTitle":"Human-induced salinity changes impact marine organisms and ecosystems","AuthorsString":"Roethig, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":395746,"RR":"<b>Dobbelaere, T.; Dekens, A.; Saint-Amand, A.; Alaerts, L.; Holstein, D.M.; Hanert, E.</b> (2024). Hurricanes enhance coral connectivity but also superspread coral diseases. <i>Glob. Chang. Biol. 30(6)</i>: e17382. <a href=\"https://dx.doi.org/10.1111/gcb.17382\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17382</a>","StandardTitle":"Hurricanes enhance coral connectivity but also superspread coral diseases","AuthorsString":"Dobbelaere, T. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":321305,"RR":"<b>Clarke, S.A.; Vilizzi, L.; Lee, L.; Wood, L.E.; Cowie, W.J.; Burt, J.A.; Mamiit, R.J.E.; Ali, H.; Davison, P.I.; Fenwick, G.V.; Harmer, R.; Skóra, M.E.; Kozic, S.; Aislabie, L.R.; Kennerley, A.; Le Quesne, W.J.F.; Copp, G.H.; Stebbing, P.D.</b> (2020). Identifying potentially invasive non‐native marine and brackish water species for the Arabian Gulf and Sea of Oman. <i>Glob. Chang. Biol. 26(4)</i>: 2081-2092. <a href=\"https://dx.doi.org/10.1111/gcb.14964\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14964</a>","StandardTitle":"Identifying potentially invasive non‐native marine and brackish water species for the Arabian Gulf and Sea of Oman","AuthorsString":"Clarke, S.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":112703,"RR":"<b>MacKenzie, B.R.; Gislason, H.; Möllmann, C.; Köster, F.W.</b> (2007). Impact of 21st century climate change on the Baltic Sea fish community and fisheries. <i>Glob. Chang. Biol. 13(7)</i>: 1348-1367. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2007.01369.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2007.01369.x</a>","StandardTitle":"Impact of 21st century climate change on the Baltic Sea fish community and fisheries","AuthorsString":"MacKenzie, B.R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":317001,"RR":"<b>Drigo, B.; Kowalchuk, G.A.; Yergeau, E.; Bezemer, T.M.; Boschker, H.T.S.; van Veen, J.A.</b> (2007). Impact of elevated carbon dioxide on the rhizosphere communities of <i>Carex arenaria</i> and <i>Festuca rubra</i>. <i>Glob. Chang. Biol. 13(11)</i>: 2396-2410. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2007.01445.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2007.01445.x</a>","StandardTitle":"Impact of elevated carbon dioxide on the rhizosphere communities of <i>Carex arenaria</i> and <i>Festuca rubra</i>","AuthorsString":"Drigo, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230888,"RR":"<b>Drigo, B.; Kowalchuk, G.A.; Knapp, B.A.; Pijl, A.S.; Boschker, H.T.S.; van Veen, J.A.</b> (2013). Impacts of 3 years of elevated atmospheric CO<sub>2</sub> on rhizosphere carbon flow and microbial community dynamics. <i>Glob. Chang. Biol. 19(2)</i>: 621-636. <a href=\"http://dx.doi.org/10.1111/gcb.12045\" target=\"_blank\">dx.doi.org/10.1111/gcb.12045</a>","StandardTitle":"Impacts of 3 years of elevated atmospheric CO<sub>2</sub> on rhizosphere carbon flow and microbial community dynamics","AuthorsString":"Drigo, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336050,"RR":"<b>Kroeker, K.J.; Kordas, R.L.; Crim, R.; Hendriks, I.; Ramajo, L.; Singh, G.G.; Duarte, C.M.; Gattuso, J.P.</b> (2013). Impacts of ocean acidification on marine organisms: Quantifying sensitivities and interaction with warming. <i>Glob. Chang. Biol. 19(6)</i>: 1884-1896. <a href=\"https://dx.doi.org/10.1111/gcb.12179\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12179</a>","StandardTitle":"Impacts of ocean acidification on marine organisms: Quantifying sensitivities and interaction with warming","AuthorsString":"Kroeker, K.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":355158,"RR":"<b>Wilson, K.L.; Tittensor, D.P.; Worm, B.; Lotze, H.K.</b> (2020). Incorporating climate change adaptation into marine protected area planning. <i>Glob. Chang. Biol. 26(6)</i>: 3251-3267. <a href=\"https://dx.doi.org/10.1111/gcb.15094\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15094</a>","StandardTitle":"Incorporating climate change adaptation into marine protected area planning","AuthorsString":"Wilson, K.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":325028,"RR":"<b>Neukermans, G.; Oziel, L.; Babin, M.</b> (2018). Increased intrusion of warming Atlantic water leads to rapid expansion of temperate phytoplankton in the Arctic. <i>Glob. Chang. Biol. 24(6)</i>: 2545-2553. <a href=\"https://dx.doi.org/10.1111/gcb.14075\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14075</a>","StandardTitle":"Increased intrusion of warming Atlantic water leads to rapid expansion of temperate phytoplankton in the Arctic","AuthorsString":"Neukermans, G.; Oziel, L.; Babin, M.","BibLvlCode":"AS"},{"BRefID":406726,"RR":"<b>Wesselmann, M.; Hendriks, I.E.; Johnson, M.P.; Jorda, G.; Mineur, F.; Marbà, N.</b> (2024). Increasing spread rates of tropical non‐native macrophytes in the Mediterranean Sea. <i>Glob. Chang. Biol. 30(4)</i>: e17249. <a href=\"https://dx.doi.org/10.1111/gcb.17249\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17249</a>","StandardTitle":"Increasing spread rates of tropical non‐native macrophytes in the Mediterranean Sea","AuthorsString":"Wesselmann, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":303079,"RR":"<b>Magozzi, S.; Calosi, P.</b> (2015). Integrating metabolic performance, thermal tolerance, and plasticity enables for more accurate predictions on species vulnerability to acute and chronic effects of global warming. <i>Glob. Chang. Biol. 21(1)</i>: 181-194. <a href=\"https://dx.doi.org/10.1111/gcb.12695\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12695</a>","StandardTitle":"Integrating metabolic performance, thermal tolerance, and plasticity enables for more accurate predictions on species vulnerability to acute and chronic effects of global warming","AuthorsString":"Magozzi, S.; Calosi, P.","BibLvlCode":"AS"},{"BRefID":322775,"RR":"<b>Hughes, K.A.; Pescott, O.L.; Peyton, J.; Adriaens, T.; Cottier-Cook, E.J.; Key, G.; Rabitsch, W.; Tricarico, E.; Barnes, D.K.A.; Baxter, N.; Belchier, M.; Blake, D.; Convey, P.; Dawson, W.; Frohlich, D.; González-Moreno, P.; James, R.; Malumphy, C.; Martin, S.; Martinou, A.F.; Minchin, D.; Monaco, A.; Moore, N.; Morley, S.A.; Ross, K.; Shanklin, J.; Turvey, K.; Vaughan, D.; Vaux, A.G.C.; Werenkraut, V.; Winfield, I.J.; Roy, H.E.</b> (2020). Invasive non-native species likely to threaten biodiversity and ecosystems in the Antarctic Peninsula region. <i>Glob. Chang. Biol. 26(4)</i>: 2702-2716. <a href=\"https://dx.doi.org/10.1111/gcb.14938\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14938</a>","StandardTitle":"Invasive non-native species likely to threaten biodiversity and ecosystems in the Antarctic Peninsula region","AuthorsString":"Hughes, K.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":353584,"RR":"<b>López-Farran, Z.; Guillaumot, C.; Vargas-Chacoff, L.; Paschke, K.; Dulière, V.; Danis, B.; Poulin, E.; Saucède, T.; Waters, J.; Gerard, K.</b> (2021). Is the southern crab <i>Halicarcinus planatus</i> (Fabricius, 1775) the next invader of Antarctica? <i>Glob. Chang. Biol. 27(15)</i>: 3487-3504. <a href=\"https://dx.doi.org/10.1111/gcb.15674\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15674</a>","StandardTitle":"Is the southern crab <i>Halicarcinus planatus</i> (Fabricius, 1775) the next invader of Antarctica?","AuthorsString":"López-Farran, Z. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":287770,"RR":"<b>Hiddink, J.G.; Ben Rais Lasram, F.; Cantrill, J.; Davies, A.J.</b> (2012). Keeping pace with climate change: what can we learn from the spread of Lessepsian migrants? <i>Glob. Chang. Biol. 18(7)</i>: 2161-2172. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2012.02698.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2012.02698.x</a>","StandardTitle":"Keeping pace with climate change: what can we learn from the spread of Lessepsian migrants?","AuthorsString":"Hiddink, J.G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344984,"RR":"<b>van Rijn, I.; Buba, Y.; DeLong, J.; Kiflawi, M.; Belmaker, J.</b> (2017). Large but uneven reduction in fish size across species in relation to changing sea temperatures. <i>Glob. Chang. Biol. 23(9)</i>: 3667-3674. <a href=\"https://dx.doi.org/10.1111/gcb.13688\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13688</a>","StandardTitle":"Large but uneven reduction in fish size across species in relation to changing sea temperatures","AuthorsString":"van Rijn, I. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":349399,"RR":"<b>Zhao, S.; Zettler, E.R.; Bos, R.P.; Lin, P.; Amaral-Zettler, L.; Mincer, T.J. </b> (2022). Large quantities of small microplastics permeate the surface ocean to abyssal depths in the South Atlantic Gyre. <i>Glob. Chang. Biol. 28(9)</i>: 2991-3006. <a href=\"https://dx.doi.org/10.1111/gcb.16089\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16089</a>","StandardTitle":"Large quantities of small microplastics permeate the surface ocean to abyssal depths in the South Atlantic Gyre","AuthorsString":"Zhao, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":317937,"RR":"<b>Erauskin-Extramiana, M.; Arrizabalaga, H.; Hobday, A.J.; Cabré, A.; Ibaibarriaga, L.; Arregui, I.; Murua, H.; Chust, G.</b> (2019). Large‐scale distribution of tuna species in a warming ocean. <i>Glob. Chang. Biol. 25(6)</i>: 2043-2060. <a href=\"https://dx.doi.org/10.1111/gcb.14630\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14630</a>","StandardTitle":"Large‐scale distribution of tuna species in a warming ocean","AuthorsString":"Erauskin-Extramiana, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":207313,"RR":"<b>Cheung, W.W.L.; Lam, V.W.Y.; Sarmiento, J.L.; Kearney, K.; Watson, R.; Zeller, D.; Pauly, D.</b> (2010). Large-scale redistribution of maximum fisheries catch potential in the global ocean under climate change. <i>Glob. Chang. Biol. 16(1)</i>: 24-35. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2009.01995.x\" target=\"_blank\">http://dx.doi.org/10.1111/j.1365-2486.2009.01995.x</a>","StandardTitle":"Large-scale redistribution of maximum fisheries catch potential in the global ocean under climate change","AuthorsString":"Cheung, W.W.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":392357,"RR":"<b>Rademaker, M.; Peck, M.A.; van Leeuwen, A.</b> (2024). Local reflects global: Life stage‐dependent changes in the phenology of coastal habitat use by North Sea herring. <i>Glob. Chang. Biol. 30(4)</i>: e17285. <a href=\"https://dx.doi.org/10.1111/gcb.17285\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17285</a>","StandardTitle":"Local reflects global: Life stage‐dependent changes in the phenology of coastal habitat use by North Sea herring","AuthorsString":"Rademaker, M.; Peck, M.A.; van Leeuwen, A.","BibLvlCode":"AS"},{"BRefID":297766,"RR":"<b>Van de Broek, M.; Vandendriessche, C.; Poppelmonde, D.; Merckx, R.; Temmerman, S.; Govers, G.</b> (2018). Long-term organic carbon sequestration in tidal marsh sediments is dominated by old-aged allochthonous inputs in a macrotidal estuary. <i>Glob. Chang. Biol. 24(6)</i>: 2498-2512. <a href=\"https://dx.doi.org/10.1111/gcb.14089\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14089</a>","StandardTitle":"Long-term organic carbon sequestration in tidal marsh sediments is dominated by old-aged allochthonous inputs in a macrotidal estuary","AuthorsString":"Van de Broek, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362309,"RR":"<b>Peña, V.; Harvey, B.P.; Agostini, S.; Porzio, L.; Milazzo, M.; Horta, P.; Le Gall, L.; Hall-Spencer, J.M.</b> (2021). Major loss of coralline algal diversity in response to ocean acidification. <i>Glob. Chang. Biol. 27(19)</i>: 4785-4798. <a href=\"https://dx.doi.org/10.1111/gcb.15757\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15757</a>","StandardTitle":"Major loss of coralline algal diversity in response to ocean acidification","AuthorsString":"Peña, V. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":227288,"RR":"<b>Rideout, A. J. R.; Joshi, N. P.; Viergever, K. M.; Huxham, M.; Briers, R. A.</b> (2013). Making predictions of mangrove deforestation: a comparison of two methods in Kenya. <i>Glob. Chang. Biol. 1(11)</i>: 1-9. <a href=\"http://dx.doi.org/10.1111/gcb.12176\" target=\"_blank\">http://dx.doi.org/10.1111/gcb.12176</a>","StandardTitle":"Making predictions of mangrove deforestation: a comparison of two methods in Kenya","AuthorsString":"Rideout, A. J. R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391293,"RR":"<b>Garrabou, J.; Gomez-Gras, D.; Medrano, A.; Cerrano, C.; Ponti, M.; Schlegel, R.; Bensoussan, N.; Turicchia, E.; Sini, M.; Gerovasileiou, V.; Teixido, N.; Mirasole, A.; Tamburello, L.; Cebrian, E.; Rilov, G.; Ledoux, J.B.; Ben Souissi, J.; Khamassi, F.; Ghanem, R.; Benabdi, M.; Grimes, S.; Ocana, O.; Bazairi, H.; Hereu, B.; Linares, C.; Kersting, D.K.; la Rovira, G.; Ortega, J.; Casals, D.; Pages-Escola, M.; Margarit, N.; Capdevila, P.; Verdura, J.; Ramos, A.; Izquierdo, A.; Barbera, C.; Rubio-Portillo, E.; Anton, I.; Lopez-Sendino, P.; Diaz, D.; Vazquez-Luis, M.; Duarte, C.; Marba, N.; Aspillaga, E.; Espinosa, F.; Grech, D.; Guala, I.; Azzurro, E.; Farina, S.; Cristina Gambi, M.C.; Chimienti, G.; Montefalcone, M.; Azzola, A.; Mantas, T.P.; Fraschetti, S.; Ceccherelli, G.; Kipson, S.; Bakran-Petricioli, T.; Petricioli, D.; Jimenez, C.; Katsanevakis, S.; Kizilkaya, I.T.; Kizilkaya, Z.; Sartoretto, S.; Elodie, R.; Ruitton, S.; Comeau, S.; Gattuso, J.P.; Harmelin, J.G.</b> (2022). Marine heatwaves drive recurrent mass mortalities in the Mediterranean Sea. <i>Glob. Chang. Biol. 28(19)</i>: 5708-5725. <a href=\"https://dx.doi.org/10.1111/gcb.16301\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16301</a>","StandardTitle":"Marine heatwaves drive recurrent mass mortalities in the Mediterranean Sea","AuthorsString":"Garrabou, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":291739,"RR":"<b>Meire, L.; Mortensen, J.; Meire, P.; Juul-Pedersen, T.; Sejr, M.K.; Rysgaard, S.; Nygaard, R.; Huybrechts, P.; Meysman, F.J.R.</b> (2017). Marine-terminating glaciers sustain high productivity in Greenland fjords. <i>Glob. Chang. Biol. 23(12)</i>: 5344-5357. <a href=\"https://dx.doi.org/10.1111/gcb.13801\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13801</a>","StandardTitle":"Marine-terminating glaciers sustain high productivity in Greenland fjords","AuthorsString":"Meire, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":323550,"RR":"<b>Garrabou, J.; Coma, R.; Bensoussan, N.; Bally, M.; Chevaldonné, P.; Cigliano, M.; DIiaz, D.; Harmelin, J. G.; Gambi, M. C.; Kersting, D. K.; Ledoux, J. B.; LeJeusne, C.; Linares, C.; Marschal, C.; Pérez, T.; Ribes, M.; Romano, J. C.; Seranno, E.; Teixido, N.; Torrents, O.; Zabala, M.; Zuberer, F.; Cerrano, C.</b> (2009). Mass mortality in Northwestern Mediterranean rocky benthic communities: effects of the 2003 heat wave. <i>Glob. Chang. Biol. 15(5)</i>: 1090-1103. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2008.01823.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2008.01823.x</a>","StandardTitle":"Mass mortality in Northwestern Mediterranean rocky benthic communities: effects of the 2003 heat wave","AuthorsString":"Garrabou, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":437461,"RR":"<b>Lameris, T.K.; Boom, M.P.; Nuijten, R.J.M.; Buitendijk, N.H.; Eichhorn, G.; Ens, B.J.; Exo, K.‐M.; Glazov, P.M.; Hanssen, S.A.; Hunke, P.; van der Jeugd, H.P.; de Jong, M.E.; Kölzsch, A.; Kondratyev, A.; Kruckenberg, H.; Kulikova, O.; Linssen, H.; Loonen, M.J.J.E.; Loshchagina, J.A.; Madsen, J.; Moe, B.; Moonen, S.; Müskens, G.J.D.M.; Nolet, B.A.; Pokrovsky, I.; Reneerkens, J.; Scheiber, I.B.R.; Schekkerman, H.; Schreven, K.H.T.; Tal, T.; Tulp, I.; Verhoeven, M.A.; Versluijs, T.S.L.; Volkov, S.; Wikelski, M.; van Bemmelen, R.S.A.</b> (2025). Migratory birds advance spring arrival and egg‐laying in the Arctic, mostly by travelling faster. <i>Glob. Chang. Biol. 31(4)</i>: e70158. <a href=\"https://dx.doi.org/10.1111/gcb.70158\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70158</a>","StandardTitle":"Migratory birds advance spring arrival and egg‐laying in the Arctic, mostly by travelling faster","AuthorsString":"Lameris, T.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":348092,"RR":"<b>Lameris, T.K.; Tomkovich, P.S.; Johnson, J.A.; Morisson, R.I.G.; Tulp, I.; Lisovski, S.; DeCicco, L.; Dementyev, M.; Gill, R.E.; ten Horn, J.; Piersma, T.; Pohlen, Z.; Schekkerman, H.; Soloviev, M.; Syroechkovsky, E.E.; Zhemchuzhnikov, M.K.; van Gils, J.A.</b> (2022). Mismatch‐induced growth reductions in a clade of Arctic‐breeding shorebirds are rarely mitigated by increasing temperatures. <i>Glob. Chang. Biol. 28(3)</i>: 829-847. <a href=\"https://dx.doi.org/10.1111/gcb.16025\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16025</a>","StandardTitle":"Mismatch‐induced growth reductions in a clade of Arctic‐breeding shorebirds are rarely mitigated by increasing temperatures","AuthorsString":"Lameris, T.K. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":253094,"RR":"<b>Lenoir, S.; Beaugrand, G.; Lecuyer, E.</b> (2011). Modelled spatial distribution of marine fish and projected modifications in the North Atlantic Ocean. <i>Glob. Chang. Biol. 17(1)</i>: 115-129. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2010.02229.x\" target=\"_blank\">dx.doi.org/10.1111/j.1365-2486.2010.02229.x</a>","StandardTitle":"Modelled spatial distribution of marine fish and projected modifications in the North Atlantic Ocean","AuthorsString":"Lenoir, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":232854,"RR":"<b>Hinder, S.L.; Gravenor, M.B.; Edwards, M.; Ostle, C.; Bodger, O.; Lee, P.L.M.; Walne, A.W.; Hays, G.C.</b> (2014). Multi-decadal range changes vs. thermal adaptation for north east Atlantic oceanic copepods in the face of climate change. <i>Glob. Chang. Biol. 20(1)</i>: 140-146. <a href=\"http://dx.doi.org/10.1111/gcb.12387\" target=\"_blank\">http://dx.doi.org/10.1111/gcb.12387</a>","StandardTitle":"Multi-decadal range changes vs. thermal adaptation for north east Atlantic oceanic copepods in the face of climate change","AuthorsString":"Hinder, S.L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":409702,"RR":"<b>Gilmour, M.E.; Pollock, K.; Adams, J.; Block, B.A.; Caselle, J.E.; Filous, A.; Friedlander, A.M.; Game, E.T.; Hazen, E.L.; Hill, M.; Holmes, N.D.; Lafferty, K.D.; Maxwell, S.M.; McCauley, D.J.; Schallert, R.J.; Shaffer, S.A.; Wolff, N.H.; Wegmann, A.S.</b> (2025). Multi‐species telemetry quantifies current and future efficacy of a remote marine protected area. <i>Glob. Chang. Biol. 31(4)</i>: 1-17. <a href=\"https://dx.doi.org/10.1111/gcb.70138\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70138</a>","StandardTitle":"Multi‐species telemetry quantifies current and future efficacy of a remote marine protected area","AuthorsString":"Gilmour, M.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":437468,"RR":"<b>Sailley, S.F.; Catalán, I.A.; Batsleer, J.; Bossier, S.; Damalas, D.; Hansen, C.; Huret, M.; Engelhard, G.H.; Hamon, K.G.; Kay, S.; Maynou, F.; Nielsen, J.R.; Ospina-Álvarez, A.; Pinnegar, J.; Poos, J.J.; Sgardeli, V.; Peck, M.A.</b> (2025). Multiple models of European marine fish stocks: regional winners and losers in a future climate. <i>Glob. Chang. Biol. 31(4)</i>: e70149. <a href=\"https://dx.doi.org/10.1111/gcb.70149\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70149</a>","StandardTitle":"Multiple models of European marine fish stocks: regional winners and losers in a future climate","AuthorsString":"Sailley, S.F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":329685,"RR":"<b>Hewitt, J.E.; Ellis, J.I.; Thrush, S.F.</b> (2016). Multiple stressors, nonlinear effects and the implications of climate change impacts on marine coastal ecosystems. <i>Glob. Chang. Biol. 22(8)</i>: 2665-2675. <a href=\"https://dx.doi.org/10.1111/gcb.13176\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13176</a>","StandardTitle":"Multiple stressors, nonlinear effects and the implications of climate change impacts on marine coastal ecosystems","AuthorsString":"Hewitt, J.E.; Ellis, J.I.; Thrush, S.F.","BibLvlCode":"AS"},{"BRefID":383447,"RR":"<b>Coulon, N.; Elliott, S.; Teichert, N.; Auber, A.; McLean, M.; Barreau, T.; Feunteun, E.; Carpentier, A.</b> (2024). Northeast Atlantic elasmobranch community on the move: Functional reorganization in response to climate change. <i>Glob. Chang. Biol. 30(1)</i>: e17157. <a href=\"https://dx.doi.org/10.1111/gcb.17157\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17157</a>","StandardTitle":"Northeast Atlantic elasmobranch community on the move: Functional reorganization in response to climate change","AuthorsString":"Coulon, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":317126,"RR":"<b>Tombre, I.M.; Oudman, T.; Shimmings, P.; Griffin, L.R.; Prop, J.</b> (2019). Northward range expansion in spring‐staging barnacle geese is a response to climate change and population growth, mediated by individual experience. <i>Glob. Chang. Biol. 25(11)</i>: 3680-3693. <a href=\"https://dx.doi.org/10.1111/gcb.14793\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14793</a>","StandardTitle":"Northward range expansion in spring‐staging barnacle geese is a response to climate change and population growth, mediated by individual experience","AuthorsString":"Tombre, I.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":329695,"RR":"<b>Roleda, M.Y.; Morris, J.N.; McGraw, C.M.; Hurd, C.L.</b> (2012). Ocean acidification and seaweed reproduction: increased CO<sub>2</sub> ameliorates the negative effect of lowered pH on meiospore germination in the giant kelp <i>Macrocystis pyrifera</i> (Laminariales, Phaeophyceae). <i>Glob. Chang. Biol. 18(3)</i>: 854-864. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2011.02594.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2011.02594.x</a>","StandardTitle":"Ocean acidification and seaweed reproduction: increased CO<sub>2</sub> ameliorates the negative effect of lowered pH on meiospore germination in the giant kelp <i>Macrocystis pyrifera</i> (Laminariales, Phaeophyceae)","AuthorsString":"Roleda, M.Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":336013,"RR":"<b>Kapsenberg, L.; Cyronak, T.</b> (2019). Ocean acidification refugia in variable environments. <i>Glob. Chang. Biol. 25(10)</i>: 3201-3214. <a href=\"https://dx.doi.org/10.1111/gcb.14730\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14730</a>","StandardTitle":"Ocean acidification refugia in variable environments","AuthorsString":"Kapsenberg, L.; Cyronak, T.","BibLvlCode":"AS"},{"BRefID":409782,"RR":"<b>Findlay, H.S.; Feely, R.A.; Jiang, L.-Q.; Pelletier, G.; Bednaršek, N.</b> (2025). Ocean acidification: Another planetary boundary crossed. <i>Glob. Chang. Biol. 31(6)</i>: e70238. <a href=\"https://dx.doi.org/10.1111/gcb.70238\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70238</a>","StandardTitle":"Ocean acidification: Another planetary boundary crossed","AuthorsString":"Findlay, H.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":416680,"RR":"<b>Espasandín, L.; Ramírez, F.; Ortega, M.; Villarino, E.; Chust, G.; Sbragaglia, V.; Coll, M.</b> (2025). Ocean warming effects on catch and revenue composition in the northwestern Mediterranean Sea. <i>Glob. Chang. Biol. 31(3)</i>: e70112. <a href=\"https://dx.doi.org/10.1111/gcb.70112\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70112</a>","StandardTitle":"Ocean warming effects on catch and revenue composition in the northwestern Mediterranean Sea","AuthorsString":"Espasandín, L. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":359519,"RR":"<b>Zona, D.; Lafleur, P.M.; Hufkens, K.; Gioli, B.; Bailey, B.; Burba, G.; Euskirchen, E.S.; Watts, J.D.; Arndt, K.A.; Farina, M.; Kimball, J.S.; Heimann, M.; Göckede, M.; Pallandt, M.; Christensen, T.R.; Mastepanov, M.; López‐Blanco, E.; Dolman, A.J.; Commane, R.; Miller, C.E.; Hashemi, J.; Kutzbach, L.; Holl, D.; Boike, J.; Wille, C.; Sachs, T.; Kalhori, A.; Humphreys, E.R.; Sonnentag, O.; Meyer, G.; Gosselin, G.H.; Marsh, P.; Oechel, W.C.</b> (2023). Pan‐Arctic soil moisture control on tundra carbon sequestration and plant productivity. <i>Glob. Chang. Biol. 29(5)</i>: 1267-1281. <a href=\"https://dx.doi.org/10.1111/gcb.16487\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16487</a>","StandardTitle":"Pan‐Arctic soil moisture control on tundra carbon sequestration and plant productivity","AuthorsString":"Zona, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":337597,"RR":"<b>Bax, N.; Sands, C.J.; Gogarty, B.; Downey, R.V.; Moreau, C.V.E.; Moreno, B.; Held, C.; Paulsen, M.L.; McGee, J.; Haward, M.; Barnes, D.K.A.</b> (2021). Perspective: Increasing blue carbon around Antarctica is an ecosystem service of considerable societal and economic value worth protecting. <i>Glob. Chang. Biol. 27(1)</i>: 5-12. <a href=\"https://hdl.handle.net/10.1111/gcb.15392\" target=\"_blank\">https://hdl.handle.net/10.1111/gcb.15392</a>","StandardTitle":"Perspective: Increasing blue carbon around Antarctica is an ecosystem service of considerable societal and economic value worth protecting","AuthorsString":"Bax, N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":363024,"RR":"<b>Schulhof, M.A.; Shurin, J.B.; Declerck, S.A.J.; Van de Waal, D.B.</b> (2019). Phytoplankton growth and stoichiometric responses to warming, nutrient addition and grazing depend on lake productivity and cell size. <i>Glob. Chang. Biol. 25(8)</i>: 2751-2762. <a href=\"https://dx.doi.org/10.1111/gcb.14660\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14660</a>","StandardTitle":"Phytoplankton growth and stoichiometric responses to warming, nutrient addition and grazing depend on lake productivity and cell size","AuthorsString":"Schulhof, M.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":334202,"RR":"<b>Savoca, M.S.; McInturf, A.G.</b> (2021). Plastic ingestion by marine fish is widespread and increasing. <i>Glob. Chang. Biol. 27(10)</i>: 2188-2199. <a href=\"https://dx.doi.org/10.1111/gcb.15533\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15533</a>","StandardTitle":"Plastic ingestion by marine fish is widespread and increasing","AuthorsString":"Savoca, M.S.; McInturf, A.G.","BibLvlCode":"AS"},{"BRefID":361492,"RR":"<b>Green, C.-P.; Green, D.B.; Ratcliffe, N.; Thompson, D.; Lea, M.-A.; Baylis, A.M.M.; Bond, A.L.; Bost, C.-A.; Crofts, S.; Cuthbert, R.J.; González-Solís, J.; Morrison, K.W.; Poisbleau, M.; Pütz, K.; Rey, A.R.; Ryan, P.G.; Sagar, P.M.; Steinfurth, A.; Thiebot, J.-B.; Tierney, M.; Whitehead, T.O.; Wotherspoon, S.; Hindell, M.A.</b> (2023). Potential for redistribution of post-moult habitat for <i>Eudyptes</i> penguins in the Southern Ocean under future climate conditions. <i>Glob. Chang. Biol. 29(3)</i>: 648-667. <a href=\"https://dx.doi.org/10.1111/gcb.16500\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16500</a>","StandardTitle":"Potential for redistribution of post-moult habitat for <i>Eudyptes</i> penguins in the Southern Ocean under future climate conditions","AuthorsString":"Green, C.-P. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":348161,"RR":"<b>Ross, S.R.P.-J.; García Molinos, J.; Okuda, A.; Johnstone, J.; Atsumi, K.; Futamura, R.; Williams, M.A.; Matsuoka, Y.; Uchida, J.; Kumikawa, S.; Sugiyama, H.; Kishida, O.; Donohue, I.</b> (2021). Predators mitigate the destabilising effects of heatwaves on multitrophic stream communities. <i>Glob. Chang. Biol. 28(2)</i>: 403-416. <a href=\"https://dx.doi.org/10.1111/gcb.15956\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15956</a>","StandardTitle":"Predators mitigate the destabilising effects of heatwaves on multitrophic stream communities","AuthorsString":"Ross, S.R.P.-J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":311551,"RR":"<b>Grech, A.; Hanert, E.; McKenzie, L.; Rasheed, M.; Thomas, C.; Tol, S.; Wang, M.; Waycott, M.; Wolter, J.; Coles, R.</b> (2018). Predicting the cumulative effect of multiple disturbances on seagrass connectivity. <i>Glob. Chang. Biol. 24(7)</i>: 3093-3104. <a href=\"https://dx.doi.org/10.1111/gcb.14127\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14127</a>","StandardTitle":"Predicting the cumulative effect of multiple disturbances on seagrass connectivity","AuthorsString":"Grech, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":418010,"RR":"<b>Layton, K.K.S.; Brieuc, M.S.O.; Castilho, R.; Diaz-Arce, N.; Estévez-Barcia, D.; Fonseca, V.G.; Fuentes-Pardo, A.P.; Jeffery, N.W.; Jiménez-Mena, B.; Junge, C.; Kaufmann, J.; Leinonen, T.; Maes, S.M.; Mcginnity, P.; Reed, T.E.; Reisser, C.M.O.; Silva, G.; Vasemägi, A.; Bradbury, I.R.</b> (2024). Predicting the future of our oceans-Evaluating genomic forecasting approaches in marine species. <i>Glob. Chang. Biol. 30(3)</i>. <a href=\"https://dx.doi.org/10.1111/gcb.17236\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17236</a>","StandardTitle":"Predicting the future of our oceans-Evaluating genomic forecasting approaches in marine species","AuthorsString":"Layton, K.K.S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344987,"RR":"<b>McHenry, J.; Welch, H.; Lester, S.E.; Saba, V.</b> (2019). Projecting marine species range shifts from only temperature can mask climate vulnerability. <i>Glob. Chang. Biol. 25(12)</i>: 4208-4221. <a href=\"https://dx.doi.org/10.1111/gcb.14828\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14828</a>","StandardTitle":"Projecting marine species range shifts from only temperature can mask climate vulnerability","AuthorsString":"McHenry, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":288211,"RR":"<b>Gallardo, B.; Aldridge, D.C.; González-Moreno, P.; Pergl, J.; Pizarro, M.; Pysek, P.; Thuiller, W.; Yesson, C.; Vilá, M.</b> (2017). Protected areas offer refuge from invasive species spreading under climate change. <i>Glob. Chang. Biol. 23(12)</i>: 5331-5343. <a href=\"https://dx.doi.org/10.1111/gcb.13798\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13798</a>","StandardTitle":"Protected areas offer refuge from invasive species spreading under climate change","AuthorsString":"Gallardo, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":323654,"RR":"<b>Glatzel, T.; Herndl, G.</b> (2021). Recognizing the complexity of soil organic carbon dynamics in vegetated coastal habitats. <i>Glob. Chang. Biol. 27(1)</i>: 3-4. <a href=\"https://doi.org/10.1111/gcb.15426\" target=\"_blank\">https://doi.org/10.1111/gcb.15426</a>","StandardTitle":"Recognizing the complexity of soil organic carbon dynamics in vegetated coastal habitats","AuthorsString":"Glatzel, T.; Herndl, G.","BibLvlCode":"AS"},{"BRefID":344982,"RR":"<b>Cacciapaglia, C.; van Woesik, R.</b> (2015). Reef-coral refugia in a rapidly changing ocean. <i>Glob. Chang. Biol. 21(6)</i>: 2272-2282. <a href=\"https://dx.doi.org/10.1111/gcb.12851\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12851</a>","StandardTitle":"Reef-coral refugia in a rapidly changing ocean","AuthorsString":"Cacciapaglia, C.; van Woesik, R.","BibLvlCode":"AS"},{"BRefID":287898,"RR":"<b>Duprey, N.N.; Yasuhara, M.; Baker, D.M.</b> (2016). Reefs of tomorrow: eutrophication reduces coral biodiversity in an urbanized seascape. <i>Glob. Chang. Biol. 22(11)</i>: 3550-3565. <a href=\"https://dx.doi.org/10.1111/gcb.13432\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13432</a>","StandardTitle":"Reefs of tomorrow: eutrophication reduces coral biodiversity in an urbanized seascape","AuthorsString":"Duprey, N.N. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":144669,"RR":"<b>Raes, M.; Rose, A.; Vanreusel, A.</b> (2010). Response of nematode communities after large-scale ice-shelf collapse events in the Antarctic Larsen area. <i>Glob. Chang. Biol. 16(5)</i>: 1618-1631. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2009.02137.x\" target=\"_blank\">dx.doi.org/10.1111/j.1365-2486.2009.02137.x</a>","StandardTitle":"Response of nematode communities after large-scale ice-shelf collapse events in the Antarctic Larsen area","AuthorsString":"Raes, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":289223,"RR":"<b>Tomas, F.; Martínez-Crego, B.; Hernán, G.; Santos, R.</b> (2015). Responses of seagrass to anthropogenic and natural disturbances do not equally translate to its consumers. <i>Glob. Chang. Biol. 21(11)</i>: 4021-4030. <a href=\"https://dx.doi.org/10.1111/gcb.13024\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13024</a>","StandardTitle":"Responses of seagrass to anthropogenic and natural disturbances do not equally translate to its consumers","AuthorsString":"Tomas, F. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362172,"RR":"<b>Lutier, M.; Di Poi, C.; Gazeau, F.; Appolis, A.; Le Luyer, J.; Pernet, F.</b> (2022). Revisiting tolerance to ocean acidification: insights from a new framework combining physiological and molecular tipping points of Pacific oyster. <i>Glob. Chang. Biol. 28(10)</i>: 3333-3348. <a href=\"https://dx.doi.org/10.1111/gcb.16101\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16101</a>","StandardTitle":"Revisiting tolerance to ocean acidification: insights from a new framework combining physiological and molecular tipping points of Pacific oyster","AuthorsString":"Lutier, M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362922,"RR":"<b>Peeters, B.; Le Moullec, M.; Raeymaekers, J.A.M.; Marquez, J.F.; Røed, K.H.; Pedersen, A.Ø.; Veiberg, V.; Loe, L.E.; Hansen, B.B.</b> (2020). Sea ice loss increases genetic isolation in a high Arctic ungulate metapopulation. <i>Glob. Chang. Biol. 26(4)</i>: 2028-2041. <a href=\"https://dx.doi.org/10.1111/gcb.14965\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14965</a>","StandardTitle":"Sea ice loss increases genetic isolation in a high Arctic ungulate metapopulation","AuthorsString":"Peeters, B. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":359229,"RR":"<b>Christianen, M.J.A.; Smulders, F.O.H.; Vonk, J.A.; Becking, L.E.; Bouma, T.J.; Engel, S.M.; James, R.K.; Nava, M.I.; de Smit, J.C.; van der Zee, J.P.; Palsbøll, P.J.; Bakker, E.S.</b> (2023). Seagrass ecosystem multifunctionality under the rise of a flagship marine megaherbivore. <i>Glob. Chang. Biol. 29(1)</i>: 215-230. <a href=\"https://dx.doi.org/10.1111/gcb.16464\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16464</a>","StandardTitle":"Seagrass ecosystem multifunctionality under the rise of a flagship marine megaherbivore","AuthorsString":"Christianen, M.J.A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391921,"RR":"<b>MacLean, S.A.; Beissinger, S.R.</b> (2017). Species’ traits as predictors of range shifts under contemporary climate change: A review and meta‐analysis. <i>Glob. Chang. Biol. 23(10)</i>: 4094-4105. <a href=\"https://dx.doi.org/10.1111/gcb.13736\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13736</a>","StandardTitle":"Species’ traits as predictors of range shifts under contemporary climate change: A review and meta‐analysis","AuthorsString":"MacLean, S.A.; Beissinger, S.R.","BibLvlCode":"AS"},{"BRefID":221121,"RR":"<b>McClanahan, T. R.; Weil, E.; Maina, J.</b> (2009). Strong relationship between coral bleaching and growth anomalies in massive <i>Porites</i>. <i>Glob. Chang. Biol. 15(7)</i>: 1804-1816. <a href=\"http://dx.doi.org/10.1111/j.1365-2486.2008.01799.x\" target=\"_blank\">dx.doi.org/10.1111/j.1365-2486.2008.01799.x</a>","StandardTitle":"Strong relationship between coral bleaching and growth anomalies in massive <i>Porites</i>","AuthorsString":"McClanahan, T. R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344989,"RR":"<b>Faulkner, K.T.; Robertson, M.P.; Wilson, J.R.U.</b> (2020). Stronger regional biosecurity is essential to prevent hundreds of harmful biological invasions. <i>Glob. Chang. Biol. 26(4)</i>: 2449-2462. <a href=\"https://dx.doi.org/10.1111/gcb.15006\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15006</a>","StandardTitle":"Stronger regional biosecurity is essential to prevent hundreds of harmful biological invasions","AuthorsString":"Faulkner, K.T.; Robertson, M.P.; Wilson, J.R.U.","BibLvlCode":"AS"},{"BRefID":409490,"RR":"<b>Happe, A.; Meijer, K.J.; Dajka, J.-C.; Franken, O.; Haslob, H.; Govers, L.L.; Kleyer, M.; Kok, A.C.M.; Kuczynski, L.; Lohmus, K.; van der Meij, S.E.T.; Olff, H.; Rönn, L.; Ryabov, A.; Sell, A.F.; Thieltges, D.W.; Eriksson, B.K.; Hillebrand, H.</b> (2025). Synthesis of population trends reveals seascape‐wide reorganisation of biodiversity from microalgae to birds. <i>Glob. Chang. Biol. 31(6)</i>: 1-17. <a href=\"https://dx.doi.org/10.1111/gcb.70298\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70298</a>","StandardTitle":"Synthesis of population trends reveals seascape‐wide reorganisation of biodiversity from microalgae to birds","AuthorsString":"Happe, A. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":282428,"RR":"<b>Hiddink, J.G.; Burrows, M.T.; García Molinos, J.</b> (2015). Temperature tracking by North Sea benthic invertebrates in response to climate change. <i>Glob. Chang. Biol. 21(1)</i>: 117-129. <a href=\"http://dx.doi.org/10.1111/gcb.12726\" target=\"_blank\">http://dx.doi.org/10.1111/gcb.12726</a>","StandardTitle":"Temperature tracking by North Sea benthic invertebrates in response to climate change","AuthorsString":"Hiddink, J.G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":380584,"RR":"<b>Holmquist, J.R.; Klinges, D.; Lonneman, M.; Wolfe, J.; Boyd, B.; Eagle, M.; Sanderman, J.; Todd‐Brown, K.; Belshe, E.F.; Brown, L.N.; Chapman, S.; Corstanje, R.; Janousek, C.; Morris, J.T.; Noe, G.; Rovai, A.; Spivak, A.; Vahsen, M.; Windham‐Myers, L.; Kroeger, K.; Megonigal, J.P.</b> (2024). The Coastal Carbon Library and Atlas: open source soil data and tools supporting blue carbon research and policy. <i>Glob. Chang. Biol. 30(1)</i>: e17098. <a href=\"https://dx.doi.org/10.1111/gcb.17098\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17098</a>","StandardTitle":"The Coastal Carbon Library and Atlas: open source soil data and tools supporting blue carbon research and policy","AuthorsString":"Holmquist, J.R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":243352,"RR":"<b>Brown, A.; Thatje, S.</b> (2015). The effects of changing climate on faunal depth distributions determine winners and losers. <i>Glob. Chang. Biol. 21(1)</i>: 173-180. <a href=\"http://dx.doi.org/10.1111/gcb.12680\" target=\"_blank\">http://dx.doi.org/10.1111/gcb.12680</a>","StandardTitle":"The effects of changing climate on faunal depth distributions determine winners and losers","AuthorsString":"Brown, A.; Thatje, S.","BibLvlCode":"AS"},{"BRefID":437543,"RR":"<b>Baldan, D.; Chauvier-Mendes, Y.; Panzeri, D.; Cossarini, G.; Solidoro, C.; Bandelj, V.</b> (2026). The geography of Mediterranean benthic communities under climate change. <i>Glob. Chang. Biol. 32(2)</i>: e70725. <a href=\"https://dx.doi.org/10.1111/gcb.70725\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70725</a>","StandardTitle":"The geography of Mediterranean benthic communities under climate change","AuthorsString":"Baldan, D. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":352638,"RR":"<b>Epstein, G.; Middelburg, J.J.; Hawkins, J.P.; Norris, C.R.; Roberts, C. M.</b> (2022). The impact of mobile demersal fishing on carbon storage in seabed sediments. <i>Glob. Chang. Biol. 28(9)</i>: 2875-2894. <a href=\"https://dx.doi.org/10.1111/gcb.16105\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16105</a>","StandardTitle":"The impact of mobile demersal fishing on carbon storage in seabed sediments","AuthorsString":"Epstein, G. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":344985,"RR":"<b>Givan, O.; Edelist, D.; Sonin, O.; Belmaker, J.</b> (2018). Thermal affinity as the dominant factor changing Mediterranean fish abundances. <i>Glob. Chang. Biol. 24(1)</i>: e80-e89. <a href=\"https://dx.doi.org/10.1111/gcb.13835\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.13835</a>","StandardTitle":"Thermal affinity as the dominant factor changing Mediterranean fish abundances","AuthorsString":"Givan, O. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":324182,"RR":"<b>Bally, M.; Garrabou, J.</b> (2007). Thermodependent bacterial pathogens and mass mortalities in temperate benthic communities: a new case of emerging disease linked to climate change. <i>Glob. Chang. Biol. 13(10)</i>: 2078-2088. <a href=\"https://dx.doi.org/10.1111/j.1365-2486.2007.01423.x\" target=\"_blank\">https://dx.doi.org/10.1111/j.1365-2486.2007.01423.x</a>","StandardTitle":"Thermodependent bacterial pathogens and mass mortalities in temperate benthic communities: a new case of emerging disease linked to climate change","AuthorsString":"Bally, M.; Garrabou, J.","BibLvlCode":"AS"},{"BRefID":354702,"RR":"<b>Alós, J.; Aarestrup, K.; Abecasis, D.; Afonso, P.; Alonso-Fernández, A.; Aspillaga, E.; Barcelo-Serra, M.; Bolland, J.; Cabanellas-Reboredo, M.; Lennox, R.; McGill, R.; Özgül, A.; Reubens, J.; Villegas-Rios, D.</b> (2022). Toward a decade of ocean science for sustainable development through acoustic animal tracking. <i>Glob. Chang. Biol. 28(19)</i>: 5630-5653. <a href=\"https://dx.doi.org/10.1111/gcb.16343\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.16343</a>","StandardTitle":"Toward a decade of ocean science for sustainable development through acoustic animal tracking","AuthorsString":"Alós, J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":289247,"RR":"<b>Thor, P.; Dupont, S.</b> (2015). Transgenerational effects alleviate severe fecundity loss during ocean acidification in a ubiquitous planktonic copepod. <i>Glob. Chang. Biol. 21(6)</i>: 2261-2271. <a href=\"https://dx.doi.org/10.1111/gcb.12815\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12815</a>","StandardTitle":"Transgenerational effects alleviate severe fecundity loss during ocean acidification in a ubiquitous planktonic copepod","AuthorsString":"Thor, P.; Dupont, S.","BibLvlCode":"AS"},{"BRefID":344991,"RR":"<b>Inagaki, K.Y.; Pennino, M.G.; Floeter, S.R.; Hay, M.E.; Longo, G.O.</b> (2020). Trophic interactions will expand geographically but be less intense as oceans warm. <i>Glob. Chang. Biol. 26(12)</i>: 6805-6812. <a href=\"https://dx.doi.org/10.1111/gcb.15346\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15346</a>","StandardTitle":"Trophic interactions will expand geographically but be less intense as oceans warm","AuthorsString":"Inagaki, K.Y. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":380804,"RR":"<b>Silberberger, M.J.; Koziorowska-Makuch, K.; Reiss, H.; Kedra, M.</b> (2024). Trophic niches of macrobenthos: latitudinal variation indicates climate change impact on ecosystem functioning. <i>Glob. Chang. Biol. 30(1)</i>: e17100. <a href=\"https://dx.doi.org/10.1111/gcb.17100\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.17100</a>","StandardTitle":"Trophic niches of macrobenthos: latitudinal variation indicates climate change impact on ecosystem functioning","AuthorsString":"Silberberger, M.J. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":362287,"RR":"<b>Cornwall, C.E.; Harvey, B.P.; Comeau, S.; Cornwall, D.L.; Hall-Spencer, J.M.; Peña, V.; Wada, S.; Porzio, L.</b> (2022). Understanding coralline algal responses to ocean acidification: Meta-analysis and synthesis. <i>Glob. Chang. Biol. 28(2)</i>: 362-374. <a href=\"https://dx.doi.org/10.1111/gcb.15899\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15899</a>","StandardTitle":"Understanding coralline algal responses to ocean acidification: Meta-analysis and synthesis","AuthorsString":"Cornwall, C.E. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":230953,"RR":"<b>Bokhorst, S.; Huiskes, A.; Aerts, R.; Convey, P.; Cooper, E.J.; Dalen, L.; Erschbamer, B.; Gudmundsson, J.; Hofgaard, H.; Hollister, R.D.; Johnstone, J.; Jónsdóttir, I.S.; Lebouvier, M.; Van de Vijver, B.; Wahren, C.-H.; Dorrepaal, E.</b> (2013). Variable temperature effects of Open Top Chambers at polar and alpine sites explained by irradiance and snow depth. <i>Glob. Chang. Biol. 19(1)</i>: 64-74. <a href=\"http://dx.doi.org/10.1111/gcb.12028\" target=\"_blank\">dx.doi.org/10.1111/gcb.12028</a>","StandardTitle":"Variable temperature effects of Open Top Chambers at polar and alpine sites explained by irradiance and snow depth","AuthorsString":"Bokhorst, S. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":283592,"RR":"<b>Glibert, P.M.; Allen, J.I.; Artioli, Y.; Beusen, A.; Bouwman, L.; Harle, J.; Holmes, R.; Holt, J.</b> (2014). Vulnerability of coastal ecosystems to changes in harmful algal bloom distribution in response to climate change: projections based on model analysis. <i>Glob. Chang. Biol. 20(12)</i>: 3845-3858. <a href=\"http://dx.doi.org/10.1111/gcb.12662\" target=\"_blank\">http://dx.doi.org/10.1111/gcb.12662</a>","StandardTitle":"Vulnerability of coastal ecosystems to changes in harmful algal bloom distribution in response to climate change: projections based on model analysis","AuthorsString":"Glibert, P.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":311050,"RR":"<b>van Dorst, R.M.; Gårdmark, A.; Svanbäck, R.; Beier, U.; Weyhenmeyer, G.A.; Huss, M.</b> (2019). Warmer and browner waters decrease fish biomass production. <i>Glob. Chang. Biol. 25(4)</i>: 1395-1408. <a href=\"https://dx.doi.org/10.1111/gcb.14551\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.14551</a>","StandardTitle":"Warmer and browner waters decrease fish biomass production","AuthorsString":"van Dorst, R.M. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":391930,"RR":"<b>Montero-Serra, I.; Edwards, M.; Genner, M.J.</b> (2015). Warming shelf seas drive the subtropicalization of European pelagic fish communities. <i>Glob. Chang. Biol. 21(1)</i>: 144-153. <a href=\"https://dx.doi.org/10.1111/gcb.12747\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.12747</a>","StandardTitle":"Warming shelf seas drive the subtropicalization of European pelagic fish communities","AuthorsString":"Montero-Serra, I.; Edwards, M.; Genner, M.J.","BibLvlCode":"AS"},{"BRefID":302719,"RR":"<b>Kentie, R.; Coulson, T.; Hooijmeijer, J.C.E.W. ; Howison, R.A.; Loonstra, A.H.J.; Verhoeven, M.A.; Both, C.; Piersma, T.</b> (2018). Warming springs and habitat alteration interact to impact timing of breeding and population dynamics in a migratory bird. <i>Glob. Chang. Biol. 24(11)</i>: 5292-5303. <a href=\"https://doi.org/10.1111/gcb.14406\" target=\"_blank\">https://doi.org/10.1111/gcb.14406</a>","StandardTitle":"Warming springs and habitat alteration interact to impact timing of breeding and population dynamics in a migratory bird","AuthorsString":"Kentie, R. <i>et al.</i>","BibLvlCode":"AS"},{"BRefID":325138,"RR":"<b>Goldsmit, J.; McKindsey, C.W.; Schlegel, R.W.; Archambault, P.; Howland, K.L.</b> (2020). What and where? Predicting invasion hotspots in the Arctic marine realm. <i>Glob. Chang. Biol. 26(9)</i>: 4752-4771. <a href=\"https://dx.doi.org/10.1111/gcb.15159\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.15159</a>","StandardTitle":"What and where? Predicting invasion hotspots in the Arctic marine realm","AuthorsString":"Goldsmit, J. <i>et al.</i>","BibLvlCode":"AS"}],"BEntOpen":69392,"BEntPrivate":null,"availability":null,"litstyles":null,"thespers":null,"arch2discl":805,"SERpubls":null,"MONpubls":null,"pictures":[],"thestermsPath":null,"thestermsASFA":null,"taxtermsASFA":null,"geotermsASFA":null,"collections":null,"conf":null,"proj":null,"Physdatasets":null,"spcols":{"805":{"SpName":"Koninklijk Nederlands Instituut voor Onderzoek der Zee","SpColID":805,"ParSpColID":null,"TopParID":null,"ShortName":"NIOZ","URLLocation":"https://www.vliz.be/imis/nioz/imis.php?refid=","LibID":2779,"OpenRepoFlag":1,"SpTypID":1,"TopParIDNotWebsite":null,"SpColPath":"NIOZ"}},"doi":null,"publs":[{"PublID":166,"PublName":"Blackwell Publishers","InsID":null,"PersID":null,"INBOID":null,"OrderNr":1}],"serparttypes":["A"],"monauthors":null,"MParts":null,"SParts":null,"hLibs":null,"langs":[{"BEntID":69392,"AbstractFlag":0,"LangID":15,"LangCode":"en","Lang":"English","DutchTerm":"Engels","LangCodeExtended":"eng"}],"urls":[{"URL":"www.blackwell-synergy.com/loi/GCB","externalID":null,"URLTypeCode":null,"URLID":9927,"URLTypID":22,"URLType":"Journal home page","URLPrefix":null}],"thesterms":null,"taxterms":null,"geoterms":null,"othterms":null,"asfacodes":null,"asfa2codes":null,"thestermsFRIS":null,"taxtermsFRIS":null,"geotermsFRIS":null,"othtermsFRIS":null,"resmessage":"","complete":1,"sessions":{"newSesName":"Chisala, Chilekwa, C.","newSesDate":{"date":"2005-06-28 09:42:03.467000","timezone_type":3,"timezone":"Europe/Brussels"},"updSesName":"Haspeslagh, Jan, J.","updSesDate":{"date":"2014-01-20 08:49:39.800000","timezone_type":3,"timezone":"Europe/Brussels"}}}
