{"refrec":{"BRefID":282823,"RR":"Nature Ecology & Evolution. Springer Nature.  ISSN 2397-334X","BEntID":274841,"PublicFlag":1,"CheckedFlag":0,"wosflag":1,"vabbflag":null,"RefStringPartII":". Springer Nature.  ISSN 2397-334X","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":"Nature Ecology & Evolution","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":"2017-01-19","DateCreate":"2017-01-19","SecASFANote":null,"ConfID":null,"PeerRev":1,"VlizCoreFlag":1,"WoScode":null,"VABBcode":null,"OpenAcc":0},"refs":null,"anarec":null,"monrec":null,"serrec":{"SerID":282823,"ISSN":"2397-334X","Abbreviation":null,"PublID":null,"City":null,"InpCentreCode":null,"ASFACode":null,"AntilopeFlag":0,"PerioID":null,"CurrentFlag":1,"PeerRevFlag":1,"DigISSN":null,"InputCentre":null,"Periodicity":null,"FromYear":null,"ToYear":null,"WoSFlag":1,"ISSNL":null,"EmbargoYears":null,"VABBFlag":0},"relations":null,"relationsRev":null,"addrec":null,"othpubs":null,"ownerships":null,"authors":null,"mapdetails":null,"datasets":null,"monographs":null,"monparts":null,"serparts":[{"BRefID":349718,"RR":"<b>Chen, Z.; Wang, X.; Song, Y.; Zeng, Q.; Zhang, Y.; Luo, H.<\/b> (2022). <i>Prochlorococcus<\/i> have low global mutation rate and small effective population size. <i>Nature Ecology & Evolution 6(2)<\/i>: 183-194. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01591-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01591-0<\/a>","StandardTitle":"<i>Prochlorococcus<\/i> have low global mutation rate and small effective population size","AuthorsString":"Chen, Z. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":415706,"RR":"<b>Prentice, M.B.; Crandall, G.A.; Chan, A.M.; Davis, K.M.; Hershberger, P.K.; Finke, J.F.; Hodin, J.; McCracken, A.; Kellogg, C.T.E.; Clemente-Carvalho, R.B.G.; Prentice, C.; Zhong, K.X.; Harvell, C.D.; Suttle, C.A.; Gehman, A.-L.M.<\/b> (2025). <i>Vibrio pectenicida<\/i> strain FHCF-3 is a causative agent of sea star wasting disease. <i>Nature Ecology & Evolution 9(9)<\/i>: 1739-1751. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02797-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02797-2<\/a>","StandardTitle":"<i>Vibrio pectenicida<\/i> strain FHCF-3 is a causative agent of sea star wasting disease","AuthorsString":"Prentice, M.B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":367958,"RR":"<b>Gumnit, E.; Tosches, M.A.<\/b> (2023). A cell type atlas of the lamprey brain. <i>Nature Ecology & Evolution 7(10)<\/i>: 1591-1592. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02195-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02195-6<\/a>","StandardTitle":"A cell type atlas of the lamprey brain","AuthorsString":"Gumnit, E.; Tosches, M.A.","BibLvlCode":"AS"},{"BRefID":393139,"RR":"<b>Wang, L.<\/b> (2024). A clock for clonal organisms. <i>Nature Ecology & Evolution 8(7)<\/i>: 1212-1213. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02418-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02418-4<\/a>","StandardTitle":"A clock for clonal organisms","AuthorsString":"Wang, L.","BibLvlCode":"AS"},{"BRefID":414087,"RR":"<b>Baer, J.L.; Hartmann, A.C.; Rohwer, F.<\/b> (2025). A control theory framework and in situ experimental platform for informing restoration of coral reefs. <i>Nature Ecology & Evolution 9(8)<\/i>: 1323-1340. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02741-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02741-4<\/a>","StandardTitle":"A control theory framework and in situ experimental platform for informing restoration of coral reefs","AuthorsString":"Baer, J.L.; Hartmann, A.C.; Rohwer, F.","BibLvlCode":"AS"},{"BRefID":354964,"RR":"<b>Dunn, F.S.; Kenchington, C.G.; Parry, L.A.; Clark, J.W.; Kendall, R.S.; Wilby, P.R.<\/b> (2022). A crown-group cnidarian from the Ediacaran of Charnwood Forest, UK. <i>Nature Ecology & Evolution 6(8)<\/i>: 1095-1104. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01807-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01807-x<\/a>","StandardTitle":"A crown-group cnidarian from the Ediacaran of Charnwood Forest, UK","AuthorsString":"Dunn, F.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334784,"RR":"<b>Howell, Kerry L.; Hil\u00e1rio, Ana; Allcock, A. Louise; Bailey, David; Baker, Maria; Clark, Malcolm R.; Cola\u00e7o, Ana; Copley, Jon; Cordes, Erik E.; Danovaro, Roberto; Dissanayake, Awantha; Escobar, Elva; Esquete, Patricia; Gallagher, Austin J.; Gates, Andrew R.; Gaudron, Sylvie M.; German, Christopher R.; Gjerde, Kristina M.; Higgs, Nicholas D.; Le Bris, Nadine; Levin, Lisa A.; Manea, Elisabetta; McClain, Craig; Menot, Lenaick; Mestre, Nelia C.; Metaxas, Anna; Milligan, Rosanna; Muthumbi, Agnes W. N.; Narayanaswamy, Bhavani E.; Ramalho, Sofia P.; Ramirez-Llodra, Eva; Robson, Laura M.; Rogers, Alex D.; Sellanes, Javier; Sigwart, Julia D.; Sink, Kerry; Snelgrove, Paul V. R.; Stefanoudis, Paris V.; Sumida, Paulo Y.; Taylor, Michelle L.; Thurber, Andrew R.; Vieira, Rui; Watanabe, Hiromi K.; Woodall, Lucy C.; Xavier, Joana R.<\/b> (2021). A decade to study deep-sea life. <i>Nature Ecology & Evolution 5(3)<\/i>: 265-267. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01352-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01352-5<\/a>","StandardTitle":"A decade to study deep-sea life","AuthorsString":"Howell, Kerry L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":438081,"RR":"<b>Ovaskainen, Otso; Winter, Steven; Tikhonov, Gleb; Lauha, Patrik; Lehti\u00f6, Ari; Nokelainen, Ossi; Abrego, Nerea; Aroluoma, Anni; Harrison, Jesse Patrick; Heikkinen, Mikko; Kallio, Aleksi; Koliseva, Anniina; Lehikoinen, Aleksi; Roslin, Tomas; Somervuo, Panu; Souza, Allan Tain\u00e1; Tahir, Jemal; Talaskivi, Jussi; Turunen, Alpo; Vancraeyenest, Aur\u00e9lie; Zuquim, Gabriela; Autto, Hannu; H\u00e4nninen, Jari; Inkinen, Jasmin; Kalttop\u00e4\u00e4, Outa; Koskinen, Janne; Kotakorpi, Matti; Kuntze, Kim; Loehr, John; Mutanen, Marko; Oranen, Mikko; Paavola, Riku; Renkonen, Risto; Schiestl-Aalto, Pauliina; Sipil\u00e4, Mikko; Sujala, Maija; Sundell, Janne; Tepsa, Saana; Tuominen, Esa-Pekka; Uusitalo, Joni; Vallinm\u00e4ki, Mikko; Vatka, Emma; Veikkolainen, Silja; Watts, Phillip C.; Dunson, David<\/b> (2026). A digital twin for real-time biodiversity forecasting with citizen science data. <i>Nature Ecology & Evolution 10(3)<\/i>: 481-495. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02966-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02966-3<\/a>","StandardTitle":"A digital twin for real-time biodiversity forecasting with citizen science data","AuthorsString":"Ovaskainen, Otso <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338292,"RR":"<b>Christianen, M.J.A.; van Katwijk, M.M.; van Tussenbroek, B.I.; Pag\u00e8s, J.F.; Ballorain, K.; Kelkar, N.; Arthur, R.; Alcoverro, T.<\/b> (2021). A dynamic view of seagrass meadows in the wake of successful green turtle conservation. <i>Nature Ecology & Evolution 5(5)<\/i>: 553-555. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-021-01433-z\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-021-01433-z<\/a>","StandardTitle":"A dynamic view of seagrass meadows in the wake of successful green turtle conservation","AuthorsString":"Christianen, M.J.A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":411065,"RR":"<b>Bernardo-Madrid, R.; Gonz\u00e1lez-Su\u00e1rez, M.; Rosvall, M.; Rueda, M.; Revilla, E.; Carretero, I; Tella, J.L.; Astigarraga, J.; Calatayud, J.<\/b> (2025). A general rule on the organization of biodiversity in Earth\u2019s biogeographical regions. <i>Nature Ecology & Evolution 9(7)<\/i>: 1193-1204. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02724-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02724-5<\/a>","StandardTitle":"A general rule on the organization of biodiversity in Earth\u2019s biogeographical regions","AuthorsString":"Bernardo-Madrid, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334816,"RR":"<b>Graf, L.; Shin, Y.; Yang, J.H.; Choi, J.W.; Hwang, I.K.; Nelson, W.; Bhattacharya, D.; Viard, F.; Yoon, H. S.<\/b> (2021). A genome-wide investigation of the effect of farming and human-mediated introduction on the ubiquitous seaweed <i>Undaria pinnatifida<\/i>. <i>Nature Ecology & Evolution 5(3)<\/i>: 360-368. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01378-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01378-9<\/a>","StandardTitle":"A genome-wide investigation of the effect of farming and human-mediated introduction on the ubiquitous seaweed <i>Undaria pinnatifida<\/i>","AuthorsString":"Graf, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330700,"RR":"<b>Torres-Pulliza, D.; Dornelas, M.A.; Pizarro, O.; Bewley, M.; Blowes, S.A.; Boutros, N.; Brambilla, V.; Chase, T.J.; Frank, G.; Friedman, A.; Hoogenboom, M.O.; Williams, S.; Zawada, K.J.A.; Madin, J.S.<\/b> (2020). A geometric basis for surface habitat complexity and biodiversity. <i>Nature Ecology & Evolution 4(11)<\/i>: 1495-1501. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1281-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1281-8<\/a>","StandardTitle":"A geometric basis for surface habitat complexity and biodiversity","AuthorsString":"Torres-Pulliza, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":380783,"RR":"<b>Gonzalez, Andrew; Vihervaara, Petteri; Balvanera, Patricia; Bates, Amanda E.; Bayraktarov, Elisa; Bellingham, Peter J.; Bruder, Andreas; Campbell, Jillian; Catchen, Michael D.; Cavender-Bares, Jeannine; Chase, Jonathan; Coops, Nicholas; Costello, Mark J.; Cz\u00facz, B\u00e1lint; Delavaud, Aur\u00e9lie; Dornelas, Maria; Dubois, Gr\u00e9goire; Duffy, Emmett J.; Eggermont, Hilde; Fernandez, Miguel; Fernandez, Nestor; Ferrier, Simon; Geller, Gary N.; Gill, Michael; Gravel, Dominique; Guerra, Carlos A.; Guralnick, Robert; Harfoot, Michael; Hirsch, Tim; Hoban, Sean; Hughes, Alice C.; Hugo, Wim; Hunter, Margaret E.; Isbell, Forest; Jetz, Walter; Juergens, Norbert; Kissling, W. Daniel; Krug, Cornelia B.; Kullberg, Peter; Le Bras, Yvan; Leung, Brian; Londo\u00f1o-Murcia, Maria Cecilia; Lord, Jean-Michel; Loreau, Michel; Luers, Amy; Ma, Keping; MacDonald, Anna J.; Maes, Joachim; McGeoch, Melodie; Mihoub, Jean Baptiste; Millette, Katie L.; Molnar, Zsolt; Montes, Enrique; Mori, Akira S.; Muller-Karger, Frank E.; Muraoka, Hiroyuki; Nakaoka, Masahiro; Navarro, Laetitia; Newbold, Tim; Niamir, Aidin; Obura, David; O\u2019Connor, Mary; Paganini, Marc; Pelletier, Dominique; Pereira, Henrique; Poisot, Timoth\u00e9e; Pollock, Laura J.; Purvis, Andy; Radulovici, Adriana; Rocchini, Duccio; Roeoesli, Claudia; Schaepman, Michael; Schaepman-Strub, Gabriela; Schmeller, Dirk S.; Schmiedel, Ute; Schneider, Fabian D.; Shakya, Mangal Man; Skidmore, Andrew; Skowno, Andrew L.; Takeuchi, Yayioi; Tuanmu, Mao-Ning; Turak, Eren; Turner, Woody; Urban, Mark C.; Urbina-Cardona, Nicol\u00e1s; Valbuena, Ruben; Van de Putte, Anton; van Havre, Basile; Wingate, Vladimir Ruslan; Wright, Elaine; Torrelio, Carlos Zambrana<\/b> (2023). A global biodiversity observing system to unite monitoring and guide action. <i>Nature Ecology & Evolution 7(12)<\/i>: 1947-1952. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02171-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02171-0<\/a>","StandardTitle":"A global biodiversity observing system to unite monitoring and guide action","AuthorsString":"Gonzalez, Andrew <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":355337,"RR":"<b>Herbert-Read, J.E.; Thornton, A.; Amon, D.J.; Birchenough, S.N.R.; C\u00f4t\u00e9, I.M.; Dias, M.P.; Godley, B.J.; Keith, S.A.; McKinley, E.; Peck, L.S.; Calado, R.; Defeo, O.; Degraer, S.; Johnston, E.L.; Kaartokallio, H.; Macreadie, P.I.; Metaxas, A.; Muthumbi, A.W.N.; Obura, D.O.; Paterson, D.M.; Piola, A.R.; Richardson, A.J.; Schloss, I.R.; Snelgrove, P.V.R.; Stewart, B.D.; Thompson, P.M.; Watson, G.J.; Worthington, T.A.; Yasuhara, M.; Sutherland, W.J.<\/b> (2022). A global horizon scan of issues impacting marine and coastal biodiversity conservation. <i>Nature Ecology & Evolution 6(9)<\/i>: 1262-1270. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01812-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01812-0<\/a>","StandardTitle":"A global horizon scan of issues impacting marine and coastal biodiversity conservation","AuthorsString":"Herbert-Read, J.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":295490,"RR":"<b>Bird, C.S.; Ver\u00edssimo, A.; Magozzi, S.; Abrantes, K.G.; Aguilar, A.; Al-Reasi, H.; Barnett, A.; Bethea, D.M.; Biais, G.; Borrell, A.; Bouchoucha, M.; Boyle, M.; Brooks, E.J.; Brunnschweiler, J.; Bustamante, P.; Carlisle, A.; Catarino, D.; Caut, S.; Cherel, Y.; Chouvelon, T.; Churchill, D.; Ciancio, J.; Claes, J.M.; Cola\u00e7o, A.; Courtney, D.L.; Cresson, P.; Daly, R.; de Necker, L.; Endo, T.; Figueiredo, I.; Frisch, A.J.; Hansen, J.H.; Heithaus, M.; Hussey, N.E.; Iitembu, J.; Juanes, F.; Kinney, M.J.; Kiszka, J.J.; Klarian, S.A.; Kopp, D.; Leaf, R.; Li, Y.; Lorrain, A.; Madigan, D.J.; Maljkovic, A.; Malpica-Cruz, L.; Matich, P.; Meekan, M.G.; M\u00e9nard, F.; Menezes, G.M.; Munroe, S.E.M.; Newman, M.C.; Papastamatiou, Y.P.; Pethybridge, H.; Plumlee, J.D.; Polo-Silva, C.; Quaeck-Davies, K.; Raoult, V.; Reum, J.; Torres-Rojas, Y.E.; Shiffman, D.S.; Shipley, O.N.; Speed, C.W.; Staudinger, M.D.; Teffer, A.K.; Tilley, A.; Valls, M.; Vaudo, J.J.; Wai, T.-C.; Wells, R.J.D.; Wyatt, A.S.J.; Yool, A.; Trueman, C.N.<\/b> (2018). A global perspective on the trophic geography of sharks. <i>Nature Ecology & Evolution 2(2)<\/i>: 299-305. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0432-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0432-z<\/a>","StandardTitle":"A global perspective on the trophic geography of sharks","AuthorsString":"Bird, C.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291546,"RR":"<b>Bellard, C.; Rysman, J.-F.; Leroy, B.; Claud, C.; Mace, G.M.<\/b> (2017). A global picture of biological invasion threat on islands. <i>Nature Ecology & Evolution 1(12)<\/i>: 1862-1869. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0365-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0365-6<\/a>","StandardTitle":"A global picture of biological invasion threat on islands","AuthorsString":"Bellard, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330699,"RR":"<b>Geary, W.L.; Bode, M.; Doherty, T.S.; Fulton, E.A.; Nimmo, D.G.; Tulloch, A.I.T.; Tulloch, V.J.D.; Ritchie, E.G.<\/b> (2020). A guide to ecosystem models and their environmental applications. <i>Nature Ecology & Evolution 4(11)<\/i>: 1459-1471. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01298-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01298-8<\/a>","StandardTitle":"A guide to ecosystem models and their environmental applications","AuthorsString":"Geary, W.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":318293,"RR":"<b>Trevathan-Tackett, Stacey M.; Sherman, Craig D.H.; Huggett, Megan J.; Campbell, Alexandra H.; Laverock, Bonnie; Hurtado-McCormick, Valentina; Seymour, Justin R.; Firl, Alana; Messer, Lauren F.; Ainsworth, Tracy D.; Negandhi, Karita L.; Daffonchio, Daniele; Egan, Suhelen; Engelen, Aschwin H.; Fusi, Marco; Thomas, Torsten; Vann, Laura; Hernandez-Agreda, Alejandra; Gan, Han Ming; Marzinelli, Ezequiel M.; Steinberg, Peter D.; Hardtke, Leo; Macreadie, Peter I.<\/b> (2019). A horizon scan of priorities for coastal marine microbiome research. <i>Nature Ecology & Evolution 3(11)<\/i>: 1509-1520. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0999-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0999-7<\/a>","StandardTitle":"A horizon scan of priorities for coastal marine microbiome research","AuthorsString":"Trevathan-Tackett, Stacey M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":341542,"RR":"<b>Yang, X.; Kimmig, J.; Zhai, D.; Liu, Y.; Kimmig, S.R.; Peng, S.<\/b> (2021). A juvenile-rich palaeocommunity of the lower Cambrian Chengjiang biota sheds light on palaeo-boom or palaeo-bust environments. <i>Nature Ecology & Evolution 5(8)<\/i>: 1082-1090. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01490-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01490-4<\/a>","StandardTitle":"A juvenile-rich palaeocommunity of the lower Cambrian Chengjiang biota sheds light on palaeo-boom or palaeo-bust environments","AuthorsString":"Yang, X. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":367962,"RR":"<b>Lamanna, Francesco; Hervas-Sotomayor, Francisca; Oel, A. Phillip; Jandzik, David; Sobrido-Came\u00e1n, Daniel; Santos-Dur\u00e1n, Gabriel N.; Martik, Megan L.; Stundl, Jan; Green, Stephen A.; Br\u00fcning, Thoomke; M\u00f6\u00dfinger, Katharina; Schmidt, Julia; Schneider, Celine; Sepp, Mari; Murat, Florent; Smith, Jeramiah J.; Bronner, Marianne E.; Rodicio, Mar\u00eda Celina; Barreiro-Iglesias, Ant\u00f3n; Medeiros, Daniel M.; Arendt, Detlev; Kaessmann, Henrik<\/b> (2023). A lamprey neural cell type atlas illuminates the origins of the vertebrate brain. <i>Nature Ecology & Evolution 7(10)<\/i>: 1714-1728. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02170-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02170-1<\/a>","StandardTitle":"A lamprey neural cell type atlas illuminates the origins of the vertebrate brain","AuthorsString":"Lamanna, Francesco <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":360373,"RR":"<b>Giles, S.; Feilich, K.; Warnock, R.C.M.; Pierce, S.E.; Friedman, M.<\/b> (2022). A Late Devonian actinopterygian suggests high lineage survivorship across the end-Devonian mass extinction. <i>Nature Ecology & Evolution 7(1)<\/i>: 10-19. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01919-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01919-4<\/a>","StandardTitle":"A Late Devonian actinopterygian suggests high lineage survivorship across the end-Devonian mass extinction","AuthorsString":"Giles, S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":344772,"RR":"<b>Ohayon, S.; Granot, I.; Belmaker, J.<\/b> (2021). A meta-analysis reveals edge effects within marine protected areas. <i>Nature Ecology & Evolution 5(9)<\/i>: 1301\u20131308. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01502-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01502-3<\/a>","StandardTitle":"A meta-analysis reveals edge effects within marine protected areas","AuthorsString":"Ohayon, S.; Granot, I.; Belmaker, J.","BibLvlCode":"AS"},{"BRefID":311922,"RR":"<b>Nesbitt, S.J.; Denton Jr., R.K.; Loewen, M.A.; Brusatte, S.L.; Smith, N.D.; Turner, A.H.; Kirkland, J.I.; McDonald, A.T.; Wolfe, D.G.<\/b> (2019). A mid-Cretaceous tyrannosauroid and the origin of North American end-Cretaceous dinosaur assemblages. <i>Nature Ecology & Evolution 3(6)<\/i>: 892-899. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0888-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0888-0<\/a>","StandardTitle":"A mid-Cretaceous tyrannosauroid and the origin of North American end-Cretaceous dinosaur assemblages","AuthorsString":"Nesbitt, S.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364396,"RR":"<b>Botting, J.P.; Muir, L.A.; Pates, S.; McCobb, L.M.E.; Wallet, E.; Willman, S.; Zhang, Y.; Ma, J.<\/b> (2023). A Middle Ordovician Burgess Shale-type fauna from Castle Bank, Wales (UK). <i>Nature Ecology & Evolution 7(5)<\/i>: 666-674. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02038-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02038-4<\/a>","StandardTitle":"A Middle Ordovician Burgess Shale-type fauna from Castle Bank, Wales (UK)","AuthorsString":"Botting, J.P. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330694,"RR":"<b>Castellanos-Galindo, G.A.; Robertson, D.R.; Torchin, M.E.<\/b> (2020). A new wave of marine fish invasions through the Panama and Suez canals. <i>Nature Ecology & Evolution 4(11)<\/i>: 1444-1446. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01301-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01301-2<\/a>","StandardTitle":"A new wave of marine fish invasions through the Panama and Suez canals","AuthorsString":"Castellanos-Galindo, G.A.; Robertson, D.R.; Torchin, M.E.","BibLvlCode":"AS"},{"BRefID":329206,"RR":"<b>Piganeau, G.<\/b> (2020). A planktonic picoeukaryote makes big changes to the green lineage. <i>Nature Ecology & Evolution 4(9)<\/i>: 1160-1161. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1244-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1244-0<\/a>","StandardTitle":"A planktonic picoeukaryote makes big changes to the green lineage","AuthorsString":"Piganeau, G.","BibLvlCode":"AS"},{"BRefID":353943,"RR":"<b>Wang, M.-S.; Murray, G.G.R.; Mann, D.; Groves, P.; Vershinina, A.O.; Supple, M.A.; Kapp, J.D.; Corbett-Detig, R.; Crump, S.E.; Stirling, I.; Laidre, K.L.; Kunz, M.; Dal\u00e9n, L.; Green, R.E.; Shapiro, B.<\/b> (2022). A polar bear paleogenome reveals extensive ancient gene flow from polar bears into brown bears. <i>Nature Ecology & Evolution 6(7)<\/i>: 936-944. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01753-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01753-8<\/a>","StandardTitle":"A polar bear paleogenome reveals extensive ancient gene flow from polar bears into brown bears","AuthorsString":"Wang, M.-S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":324837,"RR":"<b>Purvis, A.<\/b> (2020). A single apex target for biodiversity would be bad news for both nature and people. <i>Nature Ecology & Evolution 4(6)<\/i>: 768-769. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1181-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1181-y<\/a>","StandardTitle":"A single apex target for biodiversity would be bad news for both nature and people","AuthorsString":"Purvis, A.","BibLvlCode":"AS"},{"BRefID":411069,"RR":"<b>Gavriouchkina, D.; Tan, Y.; Parey, E.; Ziadi-K\u00fcnzli, F.; Hasegawa, Y.; Piovani, L.; Zhang, L.; Sugimoto, C.; Luscombe, N.; Marl\u00e9taz, F.; Rokhsar, D.S.<\/b> (2025). A single-cell atlas of the bobtail squid visual and nervous system highlights molecular principles of convergent evolution. <i>Nature Ecology & Evolution 9(7)<\/i>: 1245-1262. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02720-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02720-9<\/a>","StandardTitle":"A single-cell atlas of the bobtail squid visual and nervous system highlights molecular principles of convergent evolution","AuthorsString":"Gavriouchkina, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364400,"RR":"<b>von Meijenfeldt, F.A.B.; Hogeweg, P.; Dutilh, B.E.<\/b> (2023). A social niche breadth score reveals niche range strategies of generalists and specialists. <i>Nature Ecology & Evolution 7(5)<\/i>: 768-781. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02027-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02027-7<\/a>","StandardTitle":"A social niche breadth score reveals niche range strategies of generalists and specialists","AuthorsString":"von Meijenfeldt, F.A.B.; Hogeweg, P.; Dutilh, B.E.","BibLvlCode":"AS"},{"BRefID":393138,"RR":"<b>Yu, L.; Renton, J.; Burian, A.; Khachaturyan, M.; Bayer, T.; Kotta, J.; Stachowicz, J.J.; DuBois, K.; Baums, I.B.; Werner, B.; Reusch, T.B.H.<\/b> (2024). A somatic genetic clock for clonal species. <i>Nature Ecology & Evolution 8(7)<\/i>: 1327-1336. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02439-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02439-z<\/a>","StandardTitle":"A somatic genetic clock for clonal species","AuthorsString":"Yu, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":353944,"RR":"<b>Hu, Y.; Northen, T.R.<\/b> (2022). A sweet spot in marine ecosystems. <i>Nature Ecology & Evolution 6(7)<\/i>: 847-848. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01764-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01764-5<\/a>","StandardTitle":"A sweet spot in marine ecosystems","AuthorsString":"Hu, Y.; Northen, T.R.","BibLvlCode":"AS"},{"BRefID":332600,"RR":"<b>Williams, J.W.; Ordonez, A.; Svenning, J.-C.<\/b> (2021). A unifying framework for studying and managing climate-driven rates of ecological change. <i>Nature Ecology & Evolution 5(1)<\/i>: 17-26. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01344-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01344-5<\/a>","StandardTitle":"A unifying framework for studying and managing climate-driven rates of ecological change","AuthorsString":"Williams, J.W.; Ordonez, A.; Svenning, J.-C.","BibLvlCode":"AS"},{"BRefID":365651,"RR":"<b>Pigot, A.L.; Merow, C.; Wilson, A.; Trisos, C.H.<\/b> (2023). Abrupt expansion of climate change risks for species globally. <i>Nature Ecology & Evolution 7(7)<\/i>: 1060-1071. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02070-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02070-4<\/a>","StandardTitle":"Abrupt expansion of climate change risks for species globally","AuthorsString":"Pigot, A.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291543,"RR":"<b>Jansen, J.; Hill, N.A.; Dunstan, P.K.; McKinlay, J.; Sumner, M.D.; Post, A.L.; El\u00e9aume, M.P.; Armand, L.K.; Warnock, J.P.; Galton-Fenzi, B.K.; Johnson, C.R.<\/b> (2017). Abundance and richness of key Antarctic seafloor fauna correlates with modelled food availability. <i>Nature Ecology & Evolution 2(1)<\/i>: 71-80. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0392-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0392-3<\/a>","StandardTitle":"Abundance and richness of key Antarctic seafloor fauna correlates with modelled food availability","AuthorsString":"Jansen, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338294,"RR":"<b>Beger, M.<\/b> (2021). Accepting the loss of habitat specialists in a changing world. <i>Nature Ecology & Evolution 5(5)<\/i>: 556-557. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-021-01402-6\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-021-01402-6<\/a>","StandardTitle":"Accepting the loss of habitat specialists in a changing world","AuthorsString":"Beger, M.","BibLvlCode":"AS"},{"BRefID":284856,"RR":"<b>Sun, J.; Zhang, Y.; Xu, X.; Zhang, Y.; Mu, H.; Zhang, Y.; Lan, Y.; Fields, C.J.; Hui, J.H.L.; Zhang, W.; Li, R.; Nong, W.; Cheung, F.K.M.; Qiu, J.-W.; Qian, P.-Y.<\/b> (2017). Adaptation to deep-sea chemosynthetic environments as revealed by mussel genomes. <i>Nature Ecology & Evolution 1(5)<\/i>: 0121. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0121\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0121<\/a>","StandardTitle":"Adaptation to deep-sea chemosynthetic environments as revealed by mussel genomes","AuthorsString":"Sun, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330005,"RR":"<b>Peu\u00df, R.; Box, A.C.; Chen, S.; Wang, Y.; Tsuchiya, D.; Persons, J.L.; Kenzior, A.; Maldonado, E.; Krishnan, J.; Scharsack, J.P.; Slaughter, B.D.; Rohner, N.<\/b> (2020). Adaptation to low parasite abundance affects immune investment and immunopathological responses of cavefish. <i>Nature Ecology & Evolution 4(10)<\/i>: 1416-1430. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1234-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1234-2<\/a>","StandardTitle":"Adaptation to low parasite abundance affects immune investment and immunopathological responses of cavefish","AuthorsString":"Peu\u00df, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":393131,"RR":"<b>Claudet, Joachim; Blythe, Jessica; Gill, David A.; Bennett, Nathan J.; Gurney, Georgina G.; Evans, Louisa; Mahajan, Shauna L.; Turner, Rachel A.; Ahmadia, Gabby N.; Ban, Natalie C.; Epstein, Graham; Jupiter, Stacy D.; Lau, Jacqueline; Mangubhai, Sangeeta; Zafra-Calvo, Noelia; Lazzari, Natali; Baggio, Jacopo A.; Bernard, Miranda L.; Brun, Victor; D\u2019Agata, Stephanie; Di Franco, Antonio; Horan, Rebecca; Naggea, Josheena<\/b> (2024). Advancing ocean equity at the nexus of development, climate and conservation policy. <i>Nature Ecology & Evolution 8(7)<\/i>: 1205-1208. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02417-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02417-5<\/a>","StandardTitle":"Advancing ocean equity at the nexus of development, climate and conservation policy","AuthorsString":"Claudet, Joachim <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":333771,"RR":"<b>Bobrovskiy, I.; Hope, J.M.; Nettersheim, B.J.; Volkman, J.K.; Hallmann, C.; Brocks, J.J.<\/b> (2021). Algal origin of sponge sterane biomarkers negates the oldest evidence for animals in the rock record. <i>Nature Ecology & Evolution 5(2)<\/i>: 165-168. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01334-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01334-7<\/a>","StandardTitle":"Algal origin of sponge sterane biomarkers negates the oldest evidence for animals in the rock record","AuthorsString":"Bobrovskiy, I. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359784,"RR":"<b>Schwaiger, M.; Andrikou, C.; Dnyansagar, R.; Murguia, P.F.; Paganos, P.; Voronov, D.; Zimmermann, B.; Lebedeva, T.; Schmidt, H.A.; Genikhovich, G.; Benvenuto, G.; Arnone, M.I.; Technau, U.<\/b> (2022). An ancestral Wnt\u2013Brachyury feedback loop in axial patterning and recruitment of mesoderm-determining target genes. <i>Nature Ecology & Evolution 6(12)<\/i>: 1921-1939. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01905-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01905-w<\/a>","StandardTitle":"An ancestral Wnt\u2013Brachyury feedback loop in axial patterning and recruitment of mesoderm-determining target genes","AuthorsString":"Schwaiger, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":411072,"RR":"<b>Vargas-Ch\u00e1vez, C.; Ben\u00edtez-\u00c1lvarez, L.; Mart\u00ednez-Redondo, G.I.; \u00c1lvarez-Gonz\u00e1lez, L.; Salces-Ortiz, J.; Eleftheriadi, K.; Escudero, N.; Guiglielmoni, N.; Flot, J.-F.; Novo, M.; Ruiz-Herrera, A.; McLysaght, A.; Fern\u00e1ndez, R.<\/b> (2025). An episodic burst of massive genomic rearrangements and the origin of non-marine annelids. <i>Nature Ecology & Evolution 9(7)<\/i>: 1263-1279. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02728-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02728-1<\/a>","StandardTitle":"An episodic burst of massive genomic rearrangements and the origin of non-marine annelids","AuthorsString":"Vargas-Ch\u00e1vez, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":297169,"RR":"<b>Schunter, C.; Welch, M.J.; Nilsson, G.E.; Rummer, J.L.; Munday, P.L.; Ravasi, T.<\/b> (2017). An interplay between plasticity and parental phenotype determines impacts of ocean acidification on a reef fish. <i>Nature Ecology & Evolution 2(2)<\/i>: 334-342. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0428-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0428-8<\/a>","StandardTitle":"An interplay between plasticity and parental phenotype determines impacts of ocean acidification on a reef fish","AuthorsString":"Schunter, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":349082,"RR":"<b>McKay, A.<\/b> (2022). An ocean of benefits. <i>Nature Ecology & Evolution 6(1)<\/i>: 20-20. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01629-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01629-3<\/a>","StandardTitle":"An ocean of benefits","AuthorsString":"McKay, A.","BibLvlCode":"AS"},{"BRefID":359772,"RR":"<b>Han, Wentao; Liu, Liangjie; Wang, Jing; Wei, Huilan; Li, Yuli; Zhang, Lijing; Guo, Zhenyi; Li, Yajuan; Liu, Tian; Zeng, Qifan; Xing, Qiang; Shu, Ya; Wang, Tong; Yang, Yaxin; Zhang, Meiwei; Li, Ruojiao; Yu, Jiachen; Pu, Zhongqi; Lv, Jia; Lian, Shanshan; Hu, Jingjie; Hu, Xiaoli; Bao, Zhenmin; Bao, Lisui; Zhang, Lingling; Wang, Shi<\/b> (2022). Ancient homomorphy of molluscan sex chromosomes sustained by reversible sex-biased genes and sex determiner translocation. <i>Nature Ecology & Evolution 6(12)<\/i>: 1891-1906. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01898-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01898-6<\/a>","StandardTitle":"Ancient homomorphy of molluscan sex chromosomes sustained by reversible sex-biased genes and sex determiner translocation","AuthorsString":"Han, Wentao <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338971,"RR":"<b>Holman, L.E.; de Bruyn, M.; Creer, S.; Carvalho, G.; Robidart, J.; Rius, M.<\/b> (2021). Animals, protists and bacteria share marine biogeographic patterns. <i>Nature Ecology & Evolution 5(6)<\/i>: 738-746. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01439-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01439-7<\/a>","StandardTitle":"Animals, protists and bacteria share marine biogeographic patterns","AuthorsString":"Holman, L.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364399,"RR":"<b>Shan, X.; Goyal, A.; Gregor, R.; Cordero, O.X.<\/b> (2023). Annotation-free discovery of functional groups in microbial communities. <i>Nature Ecology & Evolution 7(5)<\/i>: 716-724. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02021-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02021-z<\/a>","StandardTitle":"Annotation-free discovery of functional groups in microbial communities","AuthorsString":"Shan, X. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":352697,"RR":"<b>Cooke, R.; Gearty, W.; Chapman, A.S.A.; Dunic, J.; Edgar, G.J.; Lefcheck, J.S.; Rilov, G.; McClain, C.R.; Stuart-Smith, R.D.; Kathleen Lyons, S.; Bates, A.E.<\/b> (2022). Anthropogenic disruptions to longstanding patterns of trophic-size structure in vertebrates. <i>Nature Ecology & Evolution 6(6)<\/i>: 684-692. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01726-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01726-x<\/a>","StandardTitle":"Anthropogenic disruptions to longstanding patterns of trophic-size structure in vertebrates","AuthorsString":"Cooke, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351867,"RR":"<b>Turner, M.<\/b> (2022). Aquaculture effects in the wild. <i>Nature Ecology & Evolution 6(5)<\/i>: 494-494. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01720-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01720-3<\/a>","StandardTitle":"Aquaculture effects in the wild","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":393201,"RR":"<b>Rose, K.C.; Ferrer, E.M.; Carpenter, S.R.; Crowe, S.A.; Donelan, S.C.; Gar\u00e7on, V.C.; Gr\u00e9goire, M.; Jane, S.F.; Leavitt, P.R.; Levin, L.A.; Oschlies, A.; Breitburg, D.<\/b> (2024). Aquatic deoxygenation as a planetary boundary and key regulator of Earth system stability. <i>Nature Ecology & Evolution 8(8)<\/i>: 1400-1406. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02448-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02448-y<\/a>","StandardTitle":"Aquatic deoxygenation as a planetary boundary and key regulator of Earth system stability","AuthorsString":"Rose, K.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":406595,"RR":"<b>Matsuo, T.; Ito-Miwa, K.; Hoshino, Y.; Fujii, Y.I.; Kanno, S.; Fujimoto, K.J.; Tsuji, R.; Takeda, S.; Onami, C.; Arai, C.; Yoshiyama, Y.; Mino, Y.; Kato, Y.; Yanai, T.; Fujita, Y.; Masuda, S.; Kakegawa, T.; Miyashita, H.<\/b> (2025). Archaean green-light environments drove the evolution of cyanobacteria\u2019s light-harvesting system. <i>Nature Ecology & Evolution 9(4)<\/i>: 599-612. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02637-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02637-3<\/a>","StandardTitle":"Archaean green-light environments drove the evolution of cyanobacteria\u2019s light-harvesting system","AuthorsString":"Matsuo, T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":347560,"RR":"<b>Jung, Martin; Arnell, Andy; de Lamo, Xavier; Garc\u00eda-Rangel, Shaenandhoa; Lewis, Matthew; Mark, Jennifer; Merow, Cory; Miles, Lera; Ondo, Ian; Pironon, Samuel; Ravilious, Corinna; Rivers, Malin; Schepaschenko, Dmitry; Tallowin, Oliver; van Soesbergen, Arnout; Govaerts, Rafa\u00ebl; Boyle, Bradley L.; Enquist, Brian J.; Feng, Xiao; Gallagher, Rachael; Maitner, Brian; Meiri, Shai; Mulligan, Mark; Ofer, Gali; Roll, Uri; Hanson, Jeffrey O.; Jetz, Walter; Di Marco, Moreno; McGowan, Jennifer; Rinnan, D. Scott; Sachs, Jeffrey D.; Lesiv, Myroslava; Adams, Vanessa M.; Andrew, Samuel C.; Burger, Joseph R.; Hannah, Lee; Marquet, Pablo A.; McCarthy, James K.; Morueta-Holme, Naia; Newman, Erica A.; Park, Daniel S.; Roehrdanz, Patrick R.; Svenning, Jens-Christian; Violle, Cyrille; Wieringa, Jan J.; Wynne, Graham; Fritz, Steffen; Strassburg, Bernardo B. N.; Obersteiner, Michael; Kapos, Valerie; Burgess, Neil; Schmidt-Traub, Guido; Visconti, Piero<\/b> (2021). Areas of global importance for conserving terrestrial biodiversity, carbon and water. <i>Nature Ecology & Evolution 5(11)<\/i>: 1499-1509. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01528-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01528-7<\/a>","StandardTitle":"Areas of global importance for conserving terrestrial biodiversity, carbon and water","AuthorsString":"Jung, Martin <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":437751,"RR":"<b>Ingels, J.; Leduc, D.; Ullmann, A.; Rowden, A.<\/b> (2026). Assessing mining impacts in the deep sea. <i>Nature Ecology & Evolution 10(2)<\/i>: 172-174. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02965-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02965-4<\/a>","StandardTitle":"Assessing mining impacts in the deep sea","AuthorsString":"Ingels, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396177,"RR":"<b>Steibl, S.; Steiger, S.; Wegmann, A.S.; Holmes, N.D.; Young, H.S.; Carr, P.; Russell, J.C.<\/b> (2024). Atolls are globally important sites for tropical seabirds. <i>Nature Ecology & Evolution 8(10)<\/i>: 1907-1915. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02496-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02496-4<\/a>","StandardTitle":"Atolls are globally important sites for tropical seabirds","AuthorsString":"Steibl, S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396175,"RR":"<b>Dunn, R.E.<\/b> (2024). Atolls are vital for seabirds and vice versa. <i>Nature Ecology & Evolution 8(10)<\/i>: 1784-1785. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02518-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02518-1<\/a>","StandardTitle":"Atolls are vital for seabirds and vice versa","AuthorsString":"Dunn, R.E.","BibLvlCode":"AS"},{"BRefID":359133,"RR":"<b>Troia, M.J.; Kaz, A.L.; Niemeyer, J.C.; Giam, X.<\/b> (2022). Author Correction: Species traits and reduced habitat suitability limit efficacy of climate change refugia in streams. <i>Nature Ecology & Evolution 6(11)<\/i>: 1777-1787. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01874-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01874-0<\/a>","StandardTitle":"Author Correction: Species traits and reduced habitat suitability limit efficacy of climate change refugia in streams","AuthorsString":"Troia, M.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":362809,"RR":"<b>Li, L.; Wang, S.; Wang, H.; Sahu, S.K.; Marin, B.; Li, H.; Xu, Y.; Liang, H.; Li, Z.; Cheng, S.; Reder, T.; \u00c7ebi, Z.; Wittek, S.; Petersen, M.; Melkonian, B.; Du, H.; Yang, H.; Wang, J.; Wong, G.K.-S.; Xu, X.; Liu, X.; Van de Peer, Y.; Melkonian, M.; Liu, H.<\/b> (2020). Author correction: The genome of <i>Prasinoderma coloniale<\/i> unveils the existence of a third phylum within green plants. <i>Nature Ecology & Evolution 4(9)<\/i>: 1280-1280. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1268-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1268-5<\/a>","StandardTitle":"Author correction: The genome of <i>Prasinoderma coloniale<\/i> unveils the existence of a third phylum within green plants","AuthorsString":"Li, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":436584,"RR":"<b>West, S.A.; Dall, S.R.X.; Cunningham, J.P.; Alonzo, S.H.; Griffin, A.S.<\/b> (2025). Behavioural ecology in the twenty-first century. <i>Nature Ecology & Evolution 9(12)<\/i>: 2193-2205. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02912-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02912-3<\/a>","StandardTitle":"Behavioural ecology in the twenty-first century","AuthorsString":"West, S.A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":360375,"RR":"<b>Tebbett, S.B.; Connolly, S.R.; Bellwood, D.R.<\/b> (2023). Benthic composition changes on coral reefs at global scales. <i>Nature Ecology & Evolution 7(1)<\/i>: 71-81. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01937-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01937-2<\/a>","StandardTitle":"Benthic composition changes on coral reefs at global scales","AuthorsString":"Tebbett, S.B.; Connolly, S.R.; Bellwood, D.R.","BibLvlCode":"AS"},{"BRefID":367912,"RR":"<b>Sylvester, Francisco; Weichert, Fabian G.; Lozano, Ver\u00f3nica L.; Groh, Ksenia J.; B\u00e1lint, Mikl\u00f3s; Baumann, Lisa; B\u00e4ssler, Claus; Brack, Werner; Brandl, Barbara; Curtius, Joachim; Dierkes, Paul; D\u00f6ll, Petra; Ebersberger, Ingo; Fragkostefanakis, Sotirios; Helfrich, Eric J. N.; Hickler, Thomas; Johann, Sarah; Jourdan, Jonas; Klimpel, Sven; Kminek, Helge; Liquin, Florencia; M\u00f6llendorf, Darrel; Mueller, Thomas; Oehlmann, J\u00f6rg; Ottermanns, Richard; Pauls, Steffen U.; Piepenbring, Meike; Pfefferle, Jakob; Schenk, Gerrit Jasper; Scheepens, J. F.; Scheringer, Martin; Schiwy, Sabrina; Schlottmann, Antje; Schneider, Flurina; Schulte, Lisa M.; Schulze-Sylvester, Maria; Stelzer, Ernst; Strobl, Frederic; Sundermann, Andrea; Tockner, Klement; Tr\u00f6ger, Tobias; Vilcinskas, Andreas; V\u00f6lker, Carolin; Winkelmann, Ricarda; Hollert, Henner<\/b> (2023). Better integration of chemical pollution research will further our understanding of biodiversity loss. <i>Nature Ecology & Evolution 7(10)<\/i>: 1552-1555. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02117-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02117-6<\/a>","StandardTitle":"Better integration of chemical pollution research will further our understanding of biodiversity loss","AuthorsString":"Sylvester, Francisco <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":311918,"RR":"<b>Lee, S.Y.; Hamilton, S.E.; Barbier, E. B.; Primavera, J. H.; Lewis III, R.R.<\/b> (2019). Better restoration policies are needed to conserve mangrove ecosystems. <i>Nature Ecology & Evolution 3(6)<\/i>: 870-872. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0861-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0861-y<\/a>","StandardTitle":"Better restoration policies are needed to conserve mangrove ecosystems","AuthorsString":"Lee, S.Y. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":283395,"RR":"<b>Jamieson, A.J.; Malkocs, T.; Piertney, S.B.; Fujii, T.; Zhang, Z.<\/b> (2017). Bioaccumulation of persistent organic pollutants in the deepest ocean fauna. <i>Nature Ecology & Evolution 1<\/i>: 0051. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-016-0051\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-016-0051<\/a>","StandardTitle":"Bioaccumulation of persistent organic pollutants in the deepest ocean fauna","AuthorsString":"Jamieson, A.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":325367,"RR":"<b>Benkwitt, C.E.; Wilson, S.K.; Graham, N.A.J.<\/b> (2020). Biodiversity increases ecosystem functions despite multiple stressors on coral reefs. <i>Nature Ecology & Evolution 4(7)<\/i>: 919-926. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1203-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1203-9<\/a>","StandardTitle":"Biodiversity increases ecosystem functions despite multiple stressors on coral reefs","AuthorsString":"Benkwitt, C.E.; Wilson, S.K.; Graham, N.A.J.","BibLvlCode":"AS"},{"BRefID":330693,"RR":"<b>Lees, A.C.; Attwood, S.; Barlow, J.; Phalan, B.<\/b> (2020). Biodiversity scientists must fight the creeping rise of extinction denial. <i>Nature Ecology & Evolution 4(11)<\/i>: 1440-1443. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01285-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01285-z<\/a>","StandardTitle":"Biodiversity scientists must fight the creeping rise of extinction denial","AuthorsString":"Lees, A.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":365649,"RR":"<b>Kuczynski, L.; Ontiveros, V.J.; Hillebrand, H.<\/b> (2023). Biodiversity time series are biased towards increasing species richness in changing environments. <i>Nature Ecology & Evolution 7(7)<\/i>: 994-1001. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02078-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02078-w<\/a>","StandardTitle":"Biodiversity time series are biased towards increasing species richness in changing environments","AuthorsString":"Kuczynski, L.; Ontiveros, V.J.; Hillebrand, H.","BibLvlCode":"AS"},{"BRefID":366749,"RR":"(2023). Biogeographic boundaries and high diversity in abyssal seafloor communities. <i>Nature Ecology & Evolution 7(9)<\/i>: 1358-1359. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02139-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02139-0<\/a>","StandardTitle":"Biogeographic boundaries and high diversity in abyssal seafloor communities","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":331722,"RR":"<b>Endo, H.; Blanc-Mathieu, R.; Li, Y.; Salazar, G.; Henry, N.; Labadie, K.; de Vargas, C.; Sullivan, M.B.; Bowler, C.; Wincker, P.; Karp-Boss, L.; Sunagawa, S.; Ogata, H.<\/b> (2020). Biogeography of marine giant viruses reveals their interplay with eukaryotes and ecological functions. <i>Nature Ecology & Evolution 4(12)<\/i>: 1639-1649. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01288-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01288-w<\/a>","StandardTitle":"Biogeography of marine giant viruses reveals their interplay with eukaryotes and ecological functions","AuthorsString":"Endo, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":352695,"RR":"<b>Schiettekatte, Nina M. D.; Brandl, Simon J.; Casey, Jordan M.; Graham, Nicholas A. J.; Barneche, Diego R.; Burkepile, Deron E.; Allgeier, Jacob E.; Arias-Gonzal\u00e9z, Jes\u00fas E.; Edgar, Graham J.; Ferreira, Carlos E. L.; Floeter, Sergio R.; Friedlander, Alan M.; Green, Alison L.; Kulbicki, Michel; Letourneur, Yves; Luiz, Osmar J.; Merci\u00e8re, Alexandre; Morat, Fabien; Munsterman, Katrina S.; Rezende, Enrico L.; Rodr\u00edguez\u2010Zaragoza, Fabian A.; Stuart-Smith, Rick D.; Vigliola, Laurent; Vill\u00e9ger, S\u00e9bastien; Parravicini, Valeriano<\/b> (2022). Biological trade-offs underpin coral reef ecosystem functioning. <i>Nature Ecology & Evolution 6(6)<\/i>: 701-708. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01710-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01710-5<\/a>","StandardTitle":"Biological trade-offs underpin coral reef ecosystem functioning","AuthorsString":"Schiettekatte, Nina M. D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":365647,"RR":"<b>Lester, S.E.<\/b> (2023). Blue carbon for climate and co-benefits. <i>Nature Ecology & Evolution 7(7)<\/i>: 967-968. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02034-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02034-8<\/a>","StandardTitle":"Blue carbon for climate and co-benefits","AuthorsString":"Lester, S.E.","BibLvlCode":"AS"},{"BRefID":330695,"RR":"<b>Va\u0161kaninov\u00e1, V.<\/b> (2020). Bone of contention. <i>Nature Ecology & Evolution 4(11)<\/i>: 1447-1448. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01300-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01300-3<\/a>","StandardTitle":"Bone of contention","AuthorsString":"Va\u0161kaninov\u00e1, V.","BibLvlCode":"AS"},{"BRefID":414092,"RR":"<b>Wang, F.; Finnegan, S.; Dal Corso, J.; Ye, F.; Wu, Y.; Chen, J.; Jiang, S.; Tian, L.; Dai, X.; Chu, D.; Song, H.; Tong, J.; Song, H.<\/b> (2025). Brachiopods and forams reduced calcification costs through morphological simplification during mass extinction events. <i>Nature Ecology & Evolution 9(8)<\/i>: 1456-1468. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02749-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02749-w<\/a>","StandardTitle":"Brachiopods and forams reduced calcification costs through morphological simplification during mass extinction events","AuthorsString":"Wang, F. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":393908,"RR":"<b>Loubet-Senear, K.; Srivastava, M.<\/b> (2024). Brittle star genome provides information on the evolution of regeneration. <i>Nature Ecology & Evolution 8(8)<\/i>: 1385-1386. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02459-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02459-9<\/a>","StandardTitle":"Brittle star genome provides information on the evolution of regeneration","AuthorsString":"Loubet-Senear, K.; Srivastava, M.","BibLvlCode":"AS"},{"BRefID":329207,"RR":"<b>Fan, P.-F.; Yang, L.; Liu, Y.; Lee, T.M.<\/b> (2020). Build up conservation research capacity in China for biodiversity governance. <i>Nature Ecology & Evolution 4(9)<\/i>: 1162-1167. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1253-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1253-z<\/a>","StandardTitle":"Build up conservation research capacity in China for biodiversity governance","AuthorsString":"Fan, P.-F. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338970,"RR":"<b>Booth, H.L.; Arlidge, W.N.S.; Squires, D.; Milner-Gulland, E.J.<\/b> (2021). Bycatch levies could reconcile trade-offs between blue growth and biodiversity conservation. <i>Nature Ecology & Evolution 5(6)<\/i>: 715-725. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01444-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01444-w<\/a>","StandardTitle":"Bycatch levies could reconcile trade-offs between blue growth and biodiversity conservation","AuthorsString":"Booth, H.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":366750,"RR":"<b>Simon-Lled\u00f3, E.; Amon, D.J.; Bribiesca-Contreras, G.; Cuvelier, D.; Durden, J.M.; Ramalho, S.P.; Uhlenkott, K.; Arbizu, P.M.; Benoist, N.; Copley, J.; Dahlgren, T.G.; Glover, A.G.; Fleming, B.; Horton, T.; Ju, S.-J.; Mej\u00eda-Saenz, A.; McQuaid, K.; Pape, E.; Park, C.; Smith, C.R.; Jones, D.O.B.<\/b> (2023). Carbonate compensation depth drives abyssal biogeography in the northeast Pacific. <i>Nature Ecology & Evolution 7(9)<\/i>: 1388-1397. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02122-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02122-9<\/a>","StandardTitle":"Carbonate compensation depth drives abyssal biogeography in the northeast Pacific","AuthorsString":"Simon-Lled\u00f3, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":436575,"RR":"<b>Liu, Y.; Jiang, H.; Miao, Y.; Zhao, W.; Schneider, R.; Yin, L.; Yu, X.; Yu, H.; Lu, X.; Bi, E.; Chen, L.; Meyer, A.; Lin, Q.<\/b> (2025). Cellular and molecular mechanisms of seahorse male pregnancy. <i>Nature Ecology & Evolution 9(12)<\/i>: 2404-2421. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02883-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02883-5<\/a>","StandardTitle":"Cellular and molecular mechanisms of seahorse male pregnancy","AuthorsString":"Liu, Y. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":363725,"RR":"<b>McKay, A.<\/b> (2023). Cetacean cooperation. <i>Nature Ecology & Evolution 7(4)<\/i>: 493. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02005-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02005-z<\/a>","StandardTitle":"Cetacean cooperation","AuthorsString":"McKay, A.","BibLvlCode":"AS"},{"BRefID":360374,"RR":"<b>Sasmito, S.D.; Basyuni, M.; Kridalaksana, A.; Saragi-Sasmito, M.F.; Lovelock, C.E.; Murdiyarso, D.<\/b> (2023). Challenges and opportunities for achieving Sustainable Development Goals through restoration of Indonesia\u2019s mangroves. <i>Nature Ecology & Evolution 7(1)<\/i>: 62-70. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01926-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01926-5<\/a>","StandardTitle":"Challenges and opportunities for achieving Sustainable Development Goals through restoration of Indonesia\u2019s mangroves","AuthorsString":"Sasmito, S.D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":311920,"RR":"<b>Marschall, E.A.<\/b> (2019). Challenging life cycles. <i>Nature Ecology & Evolution 3(6)<\/i>: 875-876. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0920-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0920-4<\/a>","StandardTitle":"Challenging life cycles","AuthorsString":"Marschall, E.A.","BibLvlCode":"AS"},{"BRefID":354714,"RR":"<b>Rogers, T.L.; Johnson, B.J.; Munch, S.B.<\/b> (2022). Chaos is not rare in natural ecosystems. <i>Nature Ecology & Evolution 6(8)<\/i>: 1105-1111. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01787-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01787-y<\/a>","StandardTitle":"Chaos is not rare in natural ecosystems","AuthorsString":"Rogers, T.L.; Johnson, B.J.; Munch, S.B.","BibLvlCode":"AS"},{"BRefID":410155,"RR":"<b>Santana-Molina, C.; Williams, T.A.; Snel, B; Spang, A.<\/b> (2025). Chimeric origins and dynamic evolution of central carbon metabolism in eukaryotes. <i>Nature Ecology & Evolution 9(4)<\/i>: 613-627. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02648-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02648-0<\/a>","StandardTitle":"Chimeric origins and dynamic evolution of central carbon metabolism in eukaryotes","AuthorsString":"Santana-Molina, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":347557,"RR":"<b>Turner, M.<\/b> (2021). Chondrichthyan crisis. <i>Nature Ecology & Evolution 5(11)<\/i>: 1471. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01567-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01567-0<\/a>","StandardTitle":"Chondrichthyan crisis","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":312359,"RR":"<b>Longo, S.J.<\/b> (2019). Chronicles of an adaptive radiation. <i>Nature Ecology & Evolution 3(7)<\/i>: 1005-1006. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0915-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0915-1<\/a>","StandardTitle":"Chronicles of an adaptive radiation","AuthorsString":"Longo, S.J.","BibLvlCode":"AS"},{"BRefID":380805,"RR":"<b>Domingues, V.<\/b> (2024). Clever placozoans. <i>Nature Ecology & Evolution 8(1)<\/i>: 2. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02277-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02277-5<\/a>","StandardTitle":"Clever placozoans","AuthorsString":"Domingues, V.","BibLvlCode":"AS"},{"BRefID":393133,"RR":"<b>Chevalier, M.; Broennimann, O.; Guisan, A.<\/b> (2024). Climate change may reveal currently unavailable parts of species\u2019 ecological niches. <i>Nature Ecology & Evolution 8(7)<\/i>: 1298-1310. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02426-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02426-4<\/a>","StandardTitle":"Climate change may reveal currently unavailable parts of species\u2019 ecological niches","AuthorsString":"Chevalier, M.; Broennimann, O.; Guisan, A.","BibLvlCode":"AS"},{"BRefID":407994,"RR":"<b>Gao, G.; Li, G.; Xu, J.; Feng, Y.; Hall-Spencer, J.M.<\/b> (2025). Coastal restoration policy needs to consider seaweed diversity. <i>Nature Ecology & Evolution 9(5)<\/i>: 740-742. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02693-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02693-9<\/a>","StandardTitle":"Coastal restoration policy needs to consider seaweed diversity","AuthorsString":"Gao, G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":286003,"RR":"<b>Fernandes, P.G.; Ralph, G.M.; Nieto, A.; Garc\u00eda Criado, M.; Vasilakopoulos, P.; Maravelias, C.D.; Cook, R.M.; Pollom, R.A.; Kovacic, M.; Pollard, D.; Farrell, E.D.; Florin, A.-B.; Polidoro, B.A.; Lawson, J.M.; Lorance, P.; Uiblein, F.; Craig, M.; Allen, D.J.; Fowler, S.L.; Walls, R.H.L.; Comeros-Raynal, M.T.; Harvey, M.S.; Dureuil, M.; Biscoito, M.; Pollock, C.M.; McCully Phillips, S.R.; Ellis, J.R.; Papaconstantinou, C.; Soldo, A.; Keskin, C.; Knudsen, S.W.; Gil de Sola, L.; Serena, F.; Collette, B.B.; Nedreaas, K.; Stump, E.; Russell, B.C.; Garcia, S.; Afonso, P.; Jung, A.B.J.; \u00c1lvarez, H.; Delgado, J.; Dulvy, N.K.; Carpenter, K.E.<\/b> (2017). Coherent assessments of Europe\u2019s marine fishes show regional divergence and megafauna loss. <i>Nature Ecology & Evolution 1<\/i>: 0170. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0170\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0170<\/a>","StandardTitle":"Coherent assessments of Europe\u2019s marine fishes show regional divergence and megafauna loss","AuthorsString":"Fernandes, P.G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":345703,"RR":"<b>Dalziel, B.D.; Novak, M.; Watson, J.R.; Ellner, S.P.<\/b> (2021). Collective behaviour can stabilize ecosystems. <i>Nature Ecology & Evolution 5(10)<\/i>: 1435-1440. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01517-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01517-w<\/a>","StandardTitle":"Collective behaviour can stabilize ecosystems","AuthorsString":"Dalziel, B.D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":406051,"RR":"<b>Hu, J.; Barbier, M.; Bunin, G.; Gore, J.<\/b> (2025). Collective dynamical regimes predict invasion success and impacts in microbial communities. <i>Nature Ecology & Evolution 9(3)<\/i>: 406-416. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02618-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02618-y<\/a>","StandardTitle":"Collective dynamical regimes predict invasion success and impacts in microbial communities","AuthorsString":"Hu, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":437753,"RR":"<b>Malfertheiner, L.; Tackmann, J.; Matias Rodrigues, J.F.; von Mering, C.<\/b> (2026). Community conservatism is widespread across microbial phyla and environments. <i>Nature Ecology & Evolution 10(2)<\/i>: 232-245. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02957-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02957-4<\/a>","StandardTitle":"Community conservatism is widespread across microbial phyla and environments","AuthorsString":"Malfertheiner, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":322680,"RR":"<b>Fug\u00e8re, V.; H\u00e9bert, M.-P.; da Costa, N.B.; Xu, C.C.Y.; Barrett, R.D.H.; Beisner, B.E.; Bell, G.; Fussmann, G.F.; Shapiro, B.J.; Yargeau, V.; Gonzalez, A.<\/b> (2020). Community rescue in experimental phytoplankton communities facing severe herbicide pollution. <i>Nature Ecology & Evolution 4(4)<\/i>: 578-588. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1134-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1134-5<\/a>","StandardTitle":"Community rescue in experimental phytoplankton communities facing severe herbicide pollution","AuthorsString":"Fug\u00e8re, V. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":355342,"RR":"<b>Wang, Yang; Li, Xi-Yin; Xu, Wen-Jie; Wang, Kun; Wu, Bin; Xu, Meng; Chen, Yan; Miao, Li-Jun; Wang, Zhong-Wei; Li, Zhi; Zhang, Xiao-Juan; Yin, Zhan; Zhou, Bo-Tong; Yang, Yu-Lan; Zhu, Cheng-Long; Hu, Ming-Liang; Zheng, Jiang-Ming; Feng, Chen-Guang; Qiu, Qiang; Tian, Le-Tian; Lu, Meng; Peng, Fang; Lu, Wei-Jia; Tong, Jin-Feng; Tong, Jin-Gou; Fu, Bei-De; Yu, Peng; Ding, Miao; Gan, Rui-Hai; Zhang, Qin-Qin; Jian, Jian-Bo; Zhang, Chi; He, Wei-Ming; Yang, Wei; Zhao, Zi-Cheng; Zhang, Qian-Qian; Gao, Qiang; Xu, Jun-Yang; Bai, Ming-Zhou; Zhang, Ya-Ping; Yang, Huan-Ming; Fang, Xiao-Dong; Wang, Wen; Zhou, Li; Gui, Jian-Fang<\/b> (2022). Comparative genome anatomy reveals evolutionary insights into a unique amphitriploid fish. <i>Nature Ecology & Evolution 6(9)<\/i>: 1354-1366. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01813-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01813-z<\/a>","StandardTitle":"Comparative genome anatomy reveals evolutionary insights into a unique amphitriploid fish","AuthorsString":"Wang, Yang <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":349720,"RR":"<b>Muratore, Daniel; Boysen, Angela K.; Harke, Matthew J.; Becker, Kevin W.; Casey, John R.; Coesel, Sacha N.; Mende, Daniel R.; Wilson, Samuel T.; Aylward, Frank O.; Eppley, John M.; Vislova, Alice; Peng, Shengyun; Rodriguez-Gonzalez, Rogelio A.; Beckett, Stephen J.; Virginia Armbrust, E.; DeLong, Edward F.; Karl, David M.; White, Angelicque E.; Zehr, Jonathan P.; Van Mooy, Benjamin A. S.; Dyhrman, Sonya T.; Ingalls, Anitra E.; Weitz, Joshua S.<\/b> (2022). Complex marine microbial communities partition metabolism of scarce resources over the diel cycle. <i>Nature Ecology & Evolution 6(2)<\/i>: 218-229. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01606-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01606-w<\/a>","StandardTitle":"Complex marine microbial communities partition metabolism of scarce resources over the diel cycle","AuthorsString":"Muratore, Daniel <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":352698,"RR":"<b>Yonatan, Y.; Amit, G.; Friedman, J.; Bashan, A.<\/b> (2022). Complexity\u2013stability trade-off in empirical microbial ecosystems. <i>Nature Ecology & Evolution 6(6)<\/i>: 693-700. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01745-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01745-8<\/a>","StandardTitle":"Complexity\u2013stability trade-off in empirical microbial ecosystems","AuthorsString":"Yonatan, Y. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351407,"RR":"<b>Muir, P.R.; Obura, D.O.; Hoeksema, B.W.; Sheppard, C.; Pichon, M.; Richards, Z.T.<\/b> (2022). Conclusions of low extinction risk for most species of reef-building corals are premature. <i>Nature Ecology & Evolution 6(4)<\/i>: 357-358. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01659-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01659-5<\/a>","StandardTitle":"Conclusions of low extinction risk for most species of reef-building corals are premature","AuthorsString":"Muir, P.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":349710,"RR":"<b>Wyborn, C.; Evans, M.C.<\/b> (2021). Conservation needs to break free from global priority mapping. <i>Nature Ecology & Evolution 5(10)<\/i>: 1322-1324. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01540-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01540-x<\/a>","StandardTitle":"Conservation needs to break free from global priority mapping","AuthorsString":"Wyborn, C.; Evans, M.C.","BibLvlCode":"AS"},{"BRefID":349708,"RR":"<b>Chaplin-Kramer, Rebecca; Brauman, Kate A.; Cavender-Bares, Jeannine; D\u00edaz, Sandra; Duarte, Gabriela Teixeira; Enquist, Brian J.; Garibaldi, Lucas A.; Geldmann, Jonas; Halpern, Benjamin S.; Hertel, Thomas W.; Khoury, Colin K.; Krieger, Joana Madeira; Lavorel, Sandra; Mueller, Thomas; Neugarten, Rachel A.; Pinto-Ledezma, Jes\u00fas; Polasky, Stephen; Purvis, Andy; Reyes-Garc\u00eda, Victoria; Roehrdanz, Patrick R.; Shannon, Lynne J.; Shaw, M. Rebecca; Strassburg, Bernardo B. N.; Tylianakis, Jason M.; Verburg, Peter H.; Visconti, Piero; Zafra-Calvo, Noelia<\/b> (2022). Conservation needs to integrate knowledge across scales. <i>Nature Ecology & Evolution 6(2)<\/i>: 118-119. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01605-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01605-x<\/a>","StandardTitle":"Conservation needs to integrate knowledge across scales","AuthorsString":"Chaplin-Kramer, Rebecca <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":333774,"RR":"<b>Mart\u00edn-Dur\u00e1n, J.M.; Vellutini, B.C.; Marl\u00e9taz, F.; Cetrangolo, V.; Cvetesic, N.; Thiel, D.; Henriet, S.; Grau-Bov\u00e9, X.; Carrillo-Baltodano, A.M.; Gu, W.; Kerbl, A.; Marquez, Y.; Bekkouche, N.; Chourrout, D.; G\u00f3mez-Skarmeta, J.L.; Irimia, M.; Lenhard, B.; Worsaae, K.; Hejnol, A.<\/b> (2021). Conservative route to genome compaction in a miniature annelid. <i>Nature Ecology & Evolution 5(2)<\/i>: 231-242. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01327-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01327-6<\/a>","StandardTitle":"Conservative route to genome compaction in a miniature annelid","AuthorsString":"Mart\u00edn-Dur\u00e1n, J.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338300,"RR":"<b>Des Roches, S.; Pendleton, L.; Shapiro, B.; Palkovacs, E.P.<\/b> (2021). Conserving intraspecific variation for nature\u2019s contributions to people. <i>Nature Ecology & Evolution 5(5)<\/i>: 574-582. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-021-01403-5\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-021-01403-5<\/a>","StandardTitle":"Conserving intraspecific variation for nature\u2019s contributions to people","AuthorsString":"Des Roches, S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":336530,"RR":"<b>Kemppinen, J.; Niittynen, P.; le Roux, P.C.; Momberg, M.; Happonen, K.; Aalto, J.; Rautakoski, H.; Enquist, B.J.; Vandvik, V.; Halbritter, A.H.; Maitner, B.; Luoto, M.<\/b> (2021). Consistent trait\u2013environment relationships within and across tundra plant communities. <i>Nature Ecology & Evolution 5(4)<\/i>: 458-467. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01396-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01396-1<\/a>","StandardTitle":"Consistent trait\u2013environment relationships within and across tundra plant communities","AuthorsString":"Kemppinen, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291548,"RR":"<b>Hu, H.; Uesaka, M.; Guo, S.; Shimai, K.; Lu, T.-M.; Lin, F.; Fujimoto, S.; Ishikawa, M.; Liu, S.; Sasagawa, Y.; Zhang, G.; Kuratani, S.; Yu, J.-K.; Kusakabe, T.G.; Khaitovich, P.; Irie, N.<\/b> (2017). Constrained vertebrate evolution by pleiotropic genes. <i>Nature Ecology & Evolution 1(11)<\/i>: 1722-1730. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0318-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0318-0<\/a>","StandardTitle":"Constrained vertebrate evolution by pleiotropic genes","AuthorsString":"Hu, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":316661,"RR":"<b>Schaffner, L.R.; Govaert, L.; De Meester, L.; Ellner, S.P.; Fairchild, E.; Miner, B.E.; Rudstam, L.G.; Spaak, P.; Hairston Jr, N.<\/b> (2019). Consumer-resource dynamics is an eco-evolutionary process in a natural plankton community. <i>Nature Ecology & Evolution 3(9)<\/i>: 1351-1358. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0960-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0960-9<\/a>","StandardTitle":"Consumer-resource dynamics is an eco-evolutionary process in a natural plankton community","AuthorsString":"Schaffner, L.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":352700,"RR":"<b>Sabrina Pankey, M.; Plachetzki, D.C.; Macartney, K.J.; Gastaldi, M.; Slattery, M.; Gochfeld, D.J.; Lesser, M.P.<\/b> (2022). Cophylogeny and convergence shape holobiont evolution in sponge\u2013microbe symbioses. <i>Nature Ecology & Evolution 6(6)<\/i>: 750-762. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01712-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01712-3<\/a>","StandardTitle":"Cophylogeny and convergence shape holobiont evolution in sponge\u2013microbe symbioses","AuthorsString":"Sabrina Pankey, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":356146,"RR":"<b>Colton, M.A.; McManus, L.C.; Schindler, D.E.; Mumby, P.J.; Palumbi, S.R.; Webster, M.M.; Essington, T.E.; Fox, H.E.; Forrest, D.L.; Schill, S.R.; Pollock, F.J.; DeFilippo, L.B.; Tekwa, E.W.; Walsworth, T.E.; Pinsky, M.L.<\/b> (2022). Coral conservation in a warming world must harness evolutionary adaptation. <i>Nature Ecology & Evolution 6(10)<\/i>: 1405-1407. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01854-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01854-4<\/a>","StandardTitle":"Coral conservation in a warming world must harness evolutionary adaptation","AuthorsString":"Colton, M.A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":320665,"RR":"<b>Stark, J.S.; Langdon, C.<\/b> (2019). Coral reef pH altered in situ. <i>Nature Ecology & Evolution 3(10)<\/i>: 1380-1381. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1000-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1000-5<\/a>","StandardTitle":"Coral reef pH altered in situ","AuthorsString":"Stark, J.S.; Langdon, C.","BibLvlCode":"AS"},{"BRefID":329205,"RR":"<b>Rutz, C.; Loretto, M.-C.; Bates, A.E.; Davidson, S.C.; Duarte, C.M.; Jetz, W.; Johnson, M.; Kato, A.; Kays, R.; Mueller, T.; Primack, R.B.; Ropert-Coudert, Y.; Tucker, M.A.; Wikelski, M.; Cagnacci, F.<\/b> (2020). COVID-19 lockdown allows researchers to quantify the effects of human activity on wildlife. <i>Nature Ecology & Evolution 4(9)<\/i>: 1156-1159. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1237-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1237-z<\/a>","StandardTitle":"COVID-19 lockdown allows researchers to quantify the effects of human activity on wildlife","AuthorsString":"Rutz, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":283758,"RR":"<b>Bowler, D.E.; Hof, C.; Haase, P.; Kr\u00f6ncke, I.; Schweiger, O.; Adrian, R.; Baert, L.; Bauer, H.-G.; Blick, T.; Brooker, R.W.; Dekoninck, W.; Domisch, S.; Eckmann, R.; Hendrickx, F.; Hickler, T.; Klotz, S.; Kraberg, A.; K\u00fchn, I.; Matesanz, S.; Meschede, A.; Neumann, H.; O\u2019Hara, R.; Russell, D.J.; Sell, A.F.; Sonnewald, M.; Stoll, S.; Sundermann, A.; Tackenberg, O.; T\u00fcrkay, M.; Valladares, F.; van Herk, K.; van Klink, R.; Vermeulen, R.; Voigtl\u00e4nder, K.; Wagner, R.; Welk, E.; Wiemers, M.; Wiltshire, K.H.; B\u00f6hning-Gaese, K.<\/b> (2017). Cross-realm assessment of climate change impacts on species\u2019 abundance trends. <i>Nature Ecology & Evolution 1(3)<\/i>: 0067. <a href=\"http:\/\/dx.doi.org\/10.1038\/s41559-016-0067\" target=\"_blank\">http:\/\/dx.doi.org\/10.1038\/s41559-016-0067<\/a>","StandardTitle":"Cross-realm assessment of climate change impacts on species\u2019 abundance trends","AuthorsString":"Bowler, D.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":297163,"RR":"<b>Whelan, M.V.; Kocot, K.M.; Moroz, T.P.; Mukherjee, K.; Williams, P.; Paulay, G.; Moroz, L.L.; Halanych, K.M.<\/b> (2017). Ctenophore relationships and their placement as the sister group to all other animals. <i>Nature Ecology & Evolution 1(11)<\/i>: 1737-1746. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0331-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0331-3<\/a>","StandardTitle":"Ctenophore relationships and their placement as the sister group to all other animals","AuthorsString":"Whelan, M.V. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":393134,"RR":"<b>Roy, Helen E.; Pauchard, An\u00edbal; Stoett, Peter J.; Renard Truong, Tanara; Meyerson, Laura A.; Bacher, Sven; Galil, Bella S.; Hulme, Philip E.; Ikeda, Tohru; Kavileveettil, Sankaran; McGeoch, Melodie A.; Nu\u00f1ez, Martin A.; Ordonez, Alejandro; Rahlao, Sebataolo J.; Schwindt, Evangelina; Seebens, Hanno; Sheppard, Andy W.; Vandvik, Vigdis; Aleksanyan, Alla; Ansong, Michael; August, Tom; Blanchard, Ryan; Brugnoli, Ernesto; Bukombe, John K.; Bwalya, Bridget; Byun, Chaeho; Camacho-Cervantes, Morelia; Cassey, Phillip; Castillo, Mar\u00eda L.; Courchamp, Franck; Dehnen-Schmutz, Katharina; Zenni, Rafael Dudeque; Egawa, Chika; Essl, Franz; Fayvush, Georgi; Fernandez, Romina D.; Fernandez, Miguel; Foxcroft, Llewellyn C.; Genovesi, Piero; Groom, Quentin J.; Gonz\u00e1lez, Ana Isabel; Helm, Aveliina; Herrera, Ileana; Hiremath, Ankila J.; Howard, Patricia L.; Hui, Cang; Ikegami, Makihiko; Keskin, Emre; Koyama, Asuka; Ksenofontov, Stanislav; Lenzner, Bernd; Lipinskaya, Tatsiana; Lockwood, Julie L.; Mangwa, Dongang C.; Martinou, Angeliki F.; McDermott, Shana M.; Morales, Carolina L.; M\u00fcllerov\u00e1, Jana; Mungi, Ninad Avinash; Munishi, Linus K.; Ojaveer, Henn; Pagad, Shyama N.; Pallewatta, Nirmalie P. K. T. S.; Peacock, Lora R.; Per, Esra; Pergl, Jan; Preda, Cristina; Py\u0161ek, Petr; Rai, Rajesh K.; Ricciardi, Anthony; Richardson, David M.; Riley, Sophie; Rono, Betty J.; Ryan-Colton, Ellen; Saeedi, Hanieh; Shrestha, Bharat B.; Simberloff, Daniel; Tawake, Alifereti; Tricarico, Elena; Vanderhoeven, Sonia; Vicente, Joana; Vil\u00e0, Montserrat; Wanzala, Wycliffe; Werenkraut, Victoria; Weyl, Olaf L. F.; Wilson, John R. U.; Xavier, Rafael O.; Ziller, S\u00edlvia R.<\/b> (2024). Curbing the major and growing threats from invasive alien species is urgent and achievable. <i>Nature Ecology & Evolution 8(7)<\/i>: 1216-1223. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02412-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02412-w<\/a>","StandardTitle":"Curbing the major and growing threats from invasive alien species is urgent and achievable","AuthorsString":"Roy, Helen E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364398,"RR":"<b>Fackelmann, G.; Pham, C.K.; Rodr\u00edguez, Y.; Mallory, M.L.; Provencher, J.F.; Baak, J.E.; Sommer, S.<\/b> (2023). Current levels of microplastic pollution impact wild seabird gut microbiomes. <i>Nature Ecology & Evolution 7(5)<\/i>: 698-706. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02013-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02013-z<\/a>","StandardTitle":"Current levels of microplastic pollution impact wild seabird gut microbiomes","AuthorsString":"Fackelmann, G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":316654,"RR":"<b>Hiltbrunner, E.; K\u00f6rner, C.; Meier, R.; Braun, S.; Kahmen, A.<\/b> (2019). Data do not support large-scale oligotrophication of terrestrial ecosystems. <i>Nature Ecology & Evolution 3(9)<\/i>: 1285-1286. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0948-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0948-5<\/a>","StandardTitle":"Data do not support large-scale oligotrophication of terrestrial ecosystems","AuthorsString":"Hiltbrunner, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":437129,"RR":"<b>Elek, A.; Iglesias, M.; Mahieu, L.; Zolotarov, G.; Grau-Bov\u00e9, X.; Aerts, S.; Seb\u00e9-Pedr\u00f3s, A.<\/b> (2026). Decoding cnidarian cell type gene regulation. <i>Nature Ecology & Evolution 10(1)<\/i>: 140-153. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02906-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02906-1<\/a>","StandardTitle":"Decoding cnidarian cell type gene regulation","AuthorsString":"Elek, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":325366,"RR":"<b>Comte, L.; Lenoir, J.<\/b> (2020). Decoupled land\u2013sea biodiversity trends. <i>Nature Ecology & Evolution 4(7)<\/i>: 901-902. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1191-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1191-9<\/a>","StandardTitle":"Decoupled land\u2013sea biodiversity trends","AuthorsString":"Comte, L.; Lenoir, J.","BibLvlCode":"AS"},{"BRefID":437755,"RR":"<b>Magri, Marta S.; Voronov, Danila; Foley, Saoirse; Mart\u00ednez-Garc\u00eda, Pedro Manuel; Franke, Martin; Cary, Gregory A.; Santos-Pereira, Jos\u00e9 M.; Cuomo, Claudia; Fern\u00e1ndez-Moreno, Manuel; Portela, Marta; Gil-Galvez, Alejandro; Acemel, Rafael D.; Paganos, Periklis; Ku, Carolyn; Ran\u0111elovi\u0107, Jovana; Rusciano, Maria Lorenza; Firbas, Panos N.; G\u00f3mez-Skarmeta, Jos\u00e9 Luis; Hinman, Veronica F.; Arnone, Maria Ina; Maeso, Ignacio<\/b> (2026). Deep conservation of <i>cis<\/i>-regulatory elements and chromatin organization in echinoderms uncover ancestral regulatory features of animal genomes. <i>Nature Ecology & Evolution 10(2)<\/i>: 355-371. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02941-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02941-y<\/a>","StandardTitle":"Deep conservation of <i>cis<\/i>-regulatory elements and chromatin organization in echinoderms uncover ancestral regulatory features of animal genomes","AuthorsString":"Magri, Marta S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":407995,"RR":"<b>Eduardo, L.N.; Bertrand, A.<\/b> (2025). Deep-pelagic ecosystems should be considered as social\u2013ecological systems. <i>Nature Ecology & Evolution 9(5)<\/i>: 745-748. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02692-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02692-w<\/a>","StandardTitle":"Deep-pelagic ecosystems should be considered as social\u2013ecological systems","AuthorsString":"Eduardo, L.N.; Bertrand, A.","BibLvlCode":"AS"},{"BRefID":418882,"RR":"<b>Carter, H.H.; Bribiesca-Contreras, G.; Williams, S.T.<\/b> (2025). Deep-sea-floor diversity in Asteroidea is shaped by competing processes across different latitudes and oceans. <i>Nature Ecology & Evolution 9(10)<\/i>: 1910-1923. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02808-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02808-2<\/a>","StandardTitle":"Deep-sea-floor diversity in Asteroidea is shaped by competing processes across different latitudes and oceans","AuthorsString":"Carter, H.H.; Bribiesca-Contreras, G.; Williams, S.T.","BibLvlCode":"AS"},{"BRefID":324846,"RR":"<b>Simakov, O.; Marl\u00e9taz, F.; Yue, J.-X.; O\u2019Connell, B.; Jenkins, J.; Brandt, A.; Calef, R.; Tung, C.-H.; Huang, T.-K.; Schmutz, J.; Satoh, N.; Yu, J.-K.; Putnam, N.H.; Green, R.E.; Rokhsar, D.S.<\/b> (2020). Deeply conserved synteny resolves early events in vertebrate evolution. <i>Nature Ecology & Evolution 4(6)<\/i>: 820-830. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1156-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1156-z<\/a>","StandardTitle":"Deeply conserved synteny resolves early events in vertebrate evolution","AuthorsString":"Simakov, O. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":368509,"RR":"(2023). Depth zonation of reef fish is predictable but disrupted on contemporary coral reefs. <i>Nature Ecology & Evolution 7(11)<\/i>: 1759-1760. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02202-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02202-w<\/a>","StandardTitle":"Depth zonation of reef fish is predictable but disrupted on contemporary coral reefs","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":327887,"RR":"<b>Peart, Claire R.; Tusso, Sergio; Pophaly, Saurabh D.; Botero-Castro, Fidel; Wu, Chi-Chih; Aurioles-Gamboa, David; Baird, Amy B.; Bickham, John W.; Forcada, Jaume; Galimberti, Filippo; Gemmell, Neil J.; Hoffman, Joseph I.; Kovacs, Kit M.; Kunnasranta, Mervi; Lydersen, Christian; Nyman, Tommi; de Oliveira, Larissa Rosa; Orr, Anthony J.; Sanvito, Simona; Valtonen, Mia; Shafer, Aaron B. A.; Wolf, Jochen B. W.<\/b> (2020). Determinants of genetic variation across eco-evolutionary scales in pinnipeds. <i>Nature Ecology & Evolution 4(8)<\/i>: 1095-1104. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1215-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1215-5<\/a>","StandardTitle":"Determinants of genetic variation across eco-evolutionary scales in pinnipeds","AuthorsString":"Peart, Claire R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":321967,"RR":"<b>Marshall, D.J.; Pettersen, A.K.; Bode, M.; White, C.R.<\/b> (2020). Developmental cost theory predicts thermal environment and vulnerability to global warming. <i>Nature Ecology & Evolution 4(3)<\/i>: 406-411. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1114-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1114-9<\/a>","StandardTitle":"Developmental cost theory predicts thermal environment and vulnerability to global warming","AuthorsString":"Marshall, D.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":435816,"RR":"<b>Liang, D.; Mu, T.; Yang, Z.; Wang, Y.; Li, J.; Huang, M.; Liu, Y.; Song, L.; Cai, S.; Zhang, X.; Wang, Y.; Liao, Z.; Fan, S.; Noon, B.R.; Giam, X.; Liu, Y.; Wilcove, D.S.<\/b> (2025). Direct mortality due to humans threatens migratory shorebirds. <i>Nature Ecology & Evolution 9(11)<\/i>: 2080-2091. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02848-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02848-8<\/a>","StandardTitle":"Direct mortality due to humans threatens migratory shorebirds","AuthorsString":"Liang, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":286011,"RR":"<b>Rindi, L.; dal Bello, M.; Dai, L.; Gore, J.; Benedetti-Cecchi, L.<\/b> (2017). Direct observation of increasing recovery length before collapse of a marine benthic ecosystem. <i>Nature Ecology & Evolution 1(6)<\/i>: 7 pp. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0153\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0153<\/a>","StandardTitle":"Direct observation of increasing recovery length before collapse of a marine benthic ecosystem","AuthorsString":"Rindi, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":392716,"RR":"<b>Goetze, Jordan S.; Heithaus, Michael R.; MacNeil, M. Aaron; Harvey, Euan; Simpfendorfer, Colin A.; Heupel, Michelle R.; Meekan, Mark; Wilson, Shaun; Bond, Mark E.; Speed, Conrad W.; Currey-Randall, Leanne M.; Fisher, Rebecca; Sherman, C. Samantha; Kiszka, Jeremy J.; Rees, Matthew J.; Udyawer, Vinay; Flowers, Kathryn I.; Clementi, Gina M.; Asher, Jacob; Beaufort, Oc\u00e9ane; Bernard, Anthony T. F.; Berumen, Michael L.; Bierwagen, Stacy L.; Boslogo, Tracey; Brooks, Edward J.; Brown, J. Jed; Buddo, Dayne; C\u00e1ceres, Camila; Casareto, Sara; Charloo, Venkatesh; Cinner, Joshua E.; Clua, Eric E. G.; Cochran, Jesse E. M.; Cook, Neil; D\u2019Alberto, Brooke M.; de Graaf, Martin; Dornhege-Lazaroff, Mareike C.; Fanovich, Lanya; Farabaugh, Naomi F.; Fernando, Daniel; Ferreira, Carlos Eduardo Leite; Fields, Candace Y. A.; Flam, Anna L.; Floros, Camilla; Fourqurean, Virginia; Barcia, Laura Garc\u00eda; Garla, Ricardo; Gastrich, Kirk; George, Lachlan; Graham, Rory; Hagan, Valerie; Hardenstine, Royale S.; Heck, Stephen M.; Heithaus, Patricia; Henderson, Aaron C.; Hertler, Heidi; Hueter, Robert E.; Johnson, Mohini; Jupiter, Stacy D.; Kaimuddin, Muslimin; Kasana, Devanshi; Kelley, Megan; Kessel, Steven T.; Kiilu, Benedict; Kyne, Fabian; Langlois, Tim; Lawe, Jaedon; L\u00e9d\u00e9e, Elodie J. I.; Lindfield, Steve; Maggs, Jade Q.; Manjaji-Matsumoto, B. Mabel; Marshall, Andrea; Matich, Philip; McCombs, Erin; McLean, Dianne; Meggs, Llewelyn; Moore, Stephen; Mukherji, Sushmita; Murray, Ryan; Newman, Stephen J.; O\u2019Shea, Owen R.; Osuka, Kennedy E.; Papastamatiou, Yannis P.; Perera, Nishan; Peterson, Bradley J.; Pina-Amarg\u00f3s, Fabi\u00e1n; Ponzo, Alessandro; Prasetyo, Andhika; Quamar, L. M. Sjamsul; Quinlan, Jessica R.; Razafindrakoto, Christelle F.; Rolim, Fernanda A.; Ruiz-Abierno, Alexei; Ruiz, Hector; Samoilys, Melita A.; Sala, Enric; Sample, William R.; Sch\u00e4rer-Umpierre, Michelle; Schoen, Sara N.; Schlaff, Audrey M.; Smith, Adam N. H.; Sparks, Lauren; Stoffers, Twan; Tanna, Akshay; Torres, Rub\u00e9n; Travers, Michael J.; Valentin-Albanese, Jasmine; Warren, Joseph D.; Watts, Alexandra M.; Wen, Colin K.; Whitman, Elizabeth R.; Wirsing, Aaron J.; Zarza-Gonz\u00e1lez, Esteban; Chapman, Demian D.<\/b> (2024). Directed conservation of the world\u2019s reef sharks and rays. <i>Nature Ecology & Evolution 8(6)<\/i>: 1118-1128. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02386-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02386-9<\/a>","StandardTitle":"Directed conservation of the world\u2019s reef sharks and rays","AuthorsString":"Goetze, Jordan S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":436578,"RR":"<b>Sim\u00f5es, T.R.<\/b> (2025). Diversification dynamics at scale. <i>Nature Ecology & Evolution 9(12)<\/i>: 2183-2184. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02870-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02870-w<\/a>","StandardTitle":"Diversification dynamics at scale","AuthorsString":"Sim\u00f5es, T.R.","BibLvlCode":"AS"},{"BRefID":311919,"RR":"<b>Weil, A.; Kirchner, J.W.<\/b> (2019). Diversity on the rebound. <i>Nature Ecology & Evolution 3(6)<\/i>: 873-874. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0883-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0883-5<\/a>","StandardTitle":"Diversity on the rebound","AuthorsString":"Weil, A.; Kirchner, J.W.","BibLvlCode":"AS"},{"BRefID":393130,"RR":"<b>G\u00f3mez-Serrano, M.A.<\/b> (2024). Dune restoration must consider species that need open and early successional dune habitats. <i>Nature Ecology & Evolution 8(7)<\/i>: 1201-1202. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02441-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02441-5<\/a>","StandardTitle":"Dune restoration must consider species that need open and early successional dune habitats","AuthorsString":"G\u00f3mez-Serrano, M.A.","BibLvlCode":"AS"},{"BRefID":350421,"RR":"<b>Cole, S.R.<\/b> (2022). Early echinoderms decouple form and function. <i>Nature Ecology & Evolution 6(3)<\/i>: 247-248. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01664-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01664-8<\/a>","StandardTitle":"Early echinoderms decouple form and function","AuthorsString":"Cole, S.R.","BibLvlCode":"AS"},{"BRefID":321968,"RR":"<b>Chaparro-Pedraza, P.C.; de Roos, A.M.<\/b> (2020). Ecological changes with minor effect initiate evolution to delayed regime shifts. <i>Nature Ecology & Evolution 4(3)<\/i>: 412-418. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1110-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1110-0<\/a>","StandardTitle":"Ecological changes with minor effect initiate evolution to delayed regime shifts","AuthorsString":"Chaparro-Pedraza, P.C.; de Roos, A.M.","BibLvlCode":"AS"},{"BRefID":350426,"RR":"<b>Galiana, N\u00faria; Lurgi, Miguel; Bastazini, Vinicius A. G.; Bosch, Jordi; Cagnolo, Luciano; Cazelles, Kevin; Claramunt-L\u00f3pez, Bernat; Emer, Carine; Fortin, Marie-Jos\u00e9e; Grass, Ingo; Hern\u00e1ndez-Castellano, Carlos; Jauker, Frank; Leroux, Shawn J.; McCann, Kevin; McLeod, Anne M.; Montoya, Daniel; Mulder, Christian; Osorio-Canadas, Sergio; Revert\u00e9, Sara; Rodrigo, Anselm; Steffan-Dewenter, Ingolf; Traveset, Anna; Valverde, Sergi; V\u00e1zquez, Diego P.; Wood, Spencer A.; Gravel, Dominique; Roslin, Tomas; Thuiller, Wilfried; Montoya, Jos\u00e9 M.<\/b> (2022). Ecological network complexity scales with area. <i>Nature Ecology & Evolution 6(3)<\/i>: 307-314. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01644-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01644-4<\/a>","StandardTitle":"Ecological network complexity scales with area","AuthorsString":"Galiana, N\u00faria <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391792,"RR":"<b>Qiao, H.; Peterson, A.T.; Myers, C.E.; Yang, Q.; Saupe, E.E.<\/b> (2024). Ecological niche conservatism spurs diversification in response to climate change. <i>Nature Ecology & Evolution 8(4)<\/i>: 729-738. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02344-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02344-5<\/a>","StandardTitle":"Ecological niche conservatism spurs diversification in response to climate change","AuthorsString":"Qiao, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":331199,"RR":"<b>Ingels, Jeroen; Vanreusel, Ann; Pape, Ellen; Pasotti, Francesca; Macheriotou, Lara; Arbizu, Pedro Mart\u00ednez; S\u00f8rensen, Martin Vinther; Edgcomb, Virginia P.; Sharma, Jyotsna; S\u00e1nchez, Nuria; Homoky, William B.; Woulds, Clare; Leduc, Daniel; Gooday, Andrew J.; Pawlowski, Jan; Dolan, John R.; Schratzberger, Michaela; Gollner, Sabine; Schoenle, Alexandra; Arndt, Hartmut; Zeppilli, Daniela<\/b> (2021). Ecological variables for deep-ocean monitoring must include microbiota and meiofauna for effective conservation. <i>Nature Ecology & Evolution 5(1)<\/i>: 27-29. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01335-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01335-6<\/a>","StandardTitle":"Ecological variables for deep-ocean monitoring must include microbiota and meiofauna for effective conservation","AuthorsString":"Ingels, Jeroen <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":321487,"RR":"<b>Danovaro, R.; Fanelli, E.; Aguzzi, J.; Billett, D.; Carugati, L.; Corinaldesi, C.; Dell\u2019Anno, A.; Gjerde, K.M.; Jamieson, A.J.; Kark, S.; McClain, C.; Levin; Levin; Ramirez-Llodra; Ruhl; Smith; Snelgrove; Thomsen; Van Dover; Yasuhara<\/b> (2020). Ecological variables for developing a global deep-ocean monitoring and conservation strategy. <i>Nature Ecology & Evolution 4(2)<\/i>: 181-192. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1091-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1091-z<\/a>","StandardTitle":"Ecological variables for developing a global deep-ocean monitoring and conservation strategy","AuthorsString":"Danovaro, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":332604,"RR":"<b>Levy, S.; Brekhman, V.; Bakhman, A.; Malik, A.; Seb\u00e9-Pedr\u00f3s, A.; Kosloff, M.; Lotan, T.<\/b> (2021). Ectopic activation of GABA<sub>B<\/sub> receptors inhibits neurogenesis and metamorphosis in the cnidarian <i>Nematostella vectensis<\/i>. <i>Nature Ecology & Evolution 5(1)<\/i>: 111-121. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01338-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01338-3<\/a>","StandardTitle":"Ectopic activation of GABA<sub>B<\/sub> receptors inhibits neurogenesis and metamorphosis in the cnidarian <i>Nematostella vectensis<\/i>","AuthorsString":"Levy, S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":406050,"RR":"<b>Runting, R.K.; Wells, J.A.<\/b> (2025). Effects of extreme events on nature\u2019s benefits to people. <i>Nature Ecology & Evolution 9(3)<\/i>: 370-371. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02620-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02620-4<\/a>","StandardTitle":"Effects of extreme events on nature\u2019s benefits to people","AuthorsString":"Runting, R.K.; Wells, J.A.","BibLvlCode":"AS"},{"BRefID":311928,"RR":"<b>Cline, T.J.; Ohlberger, J.; Schindler, D.E.<\/b> (2019). Effects of warming climate and competition in the ocean for life-histories of Pacific salmon. <i>Nature Ecology & Evolution 3(6)<\/i>: 935-942. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0901-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0901-7<\/a>","StandardTitle":"Effects of warming climate and competition in the ocean for life-histories of Pacific salmon","AuthorsString":"Cline, T.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":419024,"RR":"<b>Carter, Z.T.; Bode, M.; Chown, S.L.; Burrows, J.L.; Shaw, J.D.; Walsh, J.C.; Burgman, M.A.; Cassey, P.; Wilson, K.A.<\/b> (2025). Emerging threats to Antarctic conservation. <i>Nature Ecology & Evolution 9(10)<\/i>: 1885-1896. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02814-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02814-4<\/a>","StandardTitle":"Emerging threats to Antarctic conservation","AuthorsString":"Carter, Z.T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":366748,"RR":"<b>Kimmel, K.; Avolio, M.L.; Ferraro, P.J.<\/b> (2023). Empirical evidence of widespread exaggeration bias and selective reporting in ecology. <i>Nature Ecology & Evolution 7(9)<\/i>: 1525-1536. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02144-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02144-3<\/a>","StandardTitle":"Empirical evidence of widespread exaggeration bias and selective reporting in ecology","AuthorsString":"Kimmel, K.; Avolio, M.L.; Ferraro, P.J.","BibLvlCode":"AS"},{"BRefID":285995,"RR":"<b>Ye, Y.; Guti\u00e9rrez, N.L.<\/b> (2017). Ending fishery overexploitation by expanding from local successes to globalized solutions. <i>Nature Ecology & Evolution 1<\/i>: 0179. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0179\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0179<\/a>","StandardTitle":"Ending fishery overexploitation by expanding from local successes to globalized solutions","AuthorsString":"Ye, Y.; Guti\u00e9rrez, N.L.","BibLvlCode":"AS"},{"BRefID":336529,"RR":"<b>Xu, H.; Cao, Y.; Yu, D.; Cao, M.; He, Y.; Gill, M.; Pereira, H.M.<\/b> (2021). Ensuring effective implementation of the post-2020 global biodiversity targets. <i>Nature Ecology & Evolution 5(4)<\/i>: 411-418. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01375-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01375-y<\/a>","StandardTitle":"Ensuring effective implementation of the post-2020 global biodiversity targets","AuthorsString":"Xu, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":405768,"RR":"<b>Cai, L.; Kreft, H.; Denelle, P.; Taylor, A.; Craven, D.; Dawson, W.; Essl, F.; van Kleunen, M.; Pergl, J.; Pysek, P.; Winter, M.; Cabezas, F.J.; Wagner, V.; Pelser, P.B.; Wieringa, J.J.; Weigelt, P.<\/b> (2025). Environmental filtering, not dispersal history, explains global patterns of phylogenetic turnover in seed plants at deep evolutionary timescales. <i>Nature Ecology & Evolution 9(2)<\/i>: 314-324. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02599-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02599-y<\/a>","StandardTitle":"Environmental filtering, not dispersal history, explains global patterns of phylogenetic turnover in seed plants at deep evolutionary timescales","AuthorsString":"Cai, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334806,"RR":"<b>Lovell, R.S.L.; Blackburn, T.M.; Dyer, E.E.; Pigot, A.L.<\/b> (2021). Environmental resistance predicts the spread of alien species. <i>Nature Ecology & Evolution 5(3)<\/i>: 322-329. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01376-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01376-x<\/a>","StandardTitle":"Environmental resistance predicts the spread of alien species","AuthorsString":"Lovell, R.S.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291207,"RR":"<b>Boyce, D.G.; Petrie, B.; Frank, K.T.; Worm, B.; Leggett, W.C.<\/b> (2017). Environmental structuring of marine plankton phenology. <i>Nature Ecology & Evolution 1(10)<\/i>: 1484-1494. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0287-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0287-3<\/a>","StandardTitle":"Environmental structuring of marine plankton phenology","AuthorsString":"Boyce, D.G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":366036,"RR":"<b>Guedes, P.; Alves-Martins, F.; Arribas, J.M.; Chatterjee, S.; Santos, A.M.C.; Lewin, A.; Bako, L.; Webala, P.W.; Correia, R.A.; Rocha, R.; Ladle, R.J.<\/b> (2023). Eponyms have no place in 21st-century biological nomenclature. <i>Nature Ecology & Evolution 7(8)<\/i>: 1157-1160. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02022-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02022-y<\/a>","StandardTitle":"Eponyms have no place in 21st-century biological nomenclature","AuthorsString":"Guedes, P. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":415307,"RR":"<b>Jetz, W.; McGeoch, M.A.; Guralnick, R.; Ferrier, S.; Beck, J.; Costello, M.J.; Fern\u00e1ndez, M.; Geller, G.N.; Keil, P.; Merow, C.; Meyer, C.; M\u00fcller-Karger, F.E.; Pereira, H.M.; Regan, E.C.; Schmeller, D.S.; Turak, E.<\/b> (2019). Essential biodiversity variables for mapping and monitoring species populations. <i>Nature Ecology & Evolution 3(4)<\/i>: 539-551. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0826-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0826-1<\/a>","StandardTitle":"Essential biodiversity variables for mapping and monitoring species populations","AuthorsString":"Jetz, W. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":405232,"RR":"<b>Davidson, Sarah C.; Cagnacci, Francesca; Newman, Peggy; Dettki, Holger; Urbano, Ferdinando; Desmet, Peter; Bajona, Lenore; Bryant, Edmund; Carneiro, Ana P. B.; Dias, Maria P.; Fujioka, Ei; Gambin, David; Hoenner, Xavier; Hunter, Colin; Kato, Akiko; Kot, Connie Y.; Kranstauber, Bart; Lam, Chi Hin; Lepage, Denis; Naik, Hemal; Pye, Jonathan D.; Sequeira, Ana M. M.; Tsontos, Vardis M.; van Loon, Emiel; Vo, Danny; Rutz, Christian<\/b> (2025). Establishing bio-logging data collections as dynamic archives of animal life on Earth. <i>Nature Ecology & Evolution 9(2)<\/i>: 204\u2013213. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02585-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02585-4<\/a>","StandardTitle":"Establishing bio-logging data collections as dynamic archives of animal life on Earth","AuthorsString":"Davidson, Sarah C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351869,"RR":"<b>Mills, D.B.; Boyle, R.A.; Daines, S.J.; Sperling, E.A.; Pisani, D.; Donoghue, P.C.J.; Lenton, T.M.<\/b> (2022). Eukaryogenesis and oxygen in Earth history. <i>Nature Ecology & Evolution 6(5)<\/i>: 520-532. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01733-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01733-y<\/a>","StandardTitle":"Eukaryogenesis and oxygen in Earth history","AuthorsString":"Mills, D.B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":355334,"RR":"<b>Speijer, D.<\/b> (2022). Eukaryotes were shaped by oxygen. <i>Nature Ecology & Evolution 6(9)<\/i>: 1242. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01819-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01819-7<\/a>","StandardTitle":"Eukaryotes were shaped by oxygen","AuthorsString":"Speijer, D.","BibLvlCode":"AS"},{"BRefID":383511,"RR":"(2024). European monitoring of genetic diversity must expand to detect impacts of climate change. <i>Nature Ecology & Evolution 8(2)<\/i>: 194-195. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02261-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02261-z<\/a>","StandardTitle":"European monitoring of genetic diversity must expand to detect impacts of climate change","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":365648,"RR":"<b>Arkema, K.K.; Delevaux, J.M.S.; Silver, J.M.; Winder, S.G.; Schile-Beers, L.M.; Bood, N.; Crooks, S.; Douthwaite, K.; Durham, C.; Hawthorne, P.L.; Hickey, T.; Mattis, C.; Rosado, A.; Ruckelshaus, M.; von Unger, M.; Young, A.<\/b> (2023). Evidence-based target setting informs blue carbon strategies for nationally determined contributions. <i>Nature Ecology & Evolution 7(7)<\/i>: 1045-1059. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02081-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02081-1<\/a>","StandardTitle":"Evidence-based target setting informs blue carbon strategies for nationally determined contributions","AuthorsString":"Arkema, K.K. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":404801,"RR":"<b>Chaparro-Pedraza, P.C.<\/b> (2024). Evolution alters ecological resilience. <i>Nature Ecology & Evolution 8(12)<\/i>: 2155-2156. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02542-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02542-1<\/a>","StandardTitle":"Evolution alters ecological resilience","AuthorsString":"Chaparro-Pedraza, P.C.","BibLvlCode":"AS"},{"BRefID":352699,"RR":"<b>He, Ziwen; Feng, Xiao; Chen, Qipian; Li, Liangwei; Li, Sen; Han, Kai; Guo, Zixiao; Wang, Jiayan; Liu, Min; Shi, Chengcheng; Xu, Shaohua; Shao, Shao; Liu, Xin; Mao, Xiaomeng; Xie, Wei; Wang, Xinfeng; Zhang, Rufan; Li, Guohong; Wu, Weihong; Zheng, Zheng; Zhong, Cairong; Duke, Norman C.; Boufford, David E.; Fan, Guangyi; Wu, Chung-I; Ricklefs, Robert E.; Shi, Suhua<\/b> (2022). Evolution of coastal forests based on a full set of mangrove genomes. <i>Nature Ecology & Evolution 6(6)<\/i>: 738-749. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01744-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01744-9<\/a>","StandardTitle":"Evolution of coastal forests based on a full set of mangrove genomes","AuthorsString":"He, Ziwen <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351411,"RR":"<b>Tigano, A.<\/b> (2022). Evolution of cod supergenes. <i>Nature Ecology & Evolution 6(4)<\/i>: 355-356. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01662-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01662-w<\/a>","StandardTitle":"Evolution of cod supergenes","AuthorsString":"Tigano, A.","BibLvlCode":"AS"},{"BRefID":311921,"RR":"<b>Visser, M.E.; Gienapp, P.<\/b> (2019). Evolutionary and demographic consequences of phenological mismatches. <i>Nature Ecology & Evolution 3(6)<\/i>: 879-885. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0880-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0880-8<\/a>","StandardTitle":"Evolutionary and demographic consequences of phenological mismatches","AuthorsString":"Visser, M.E.; Gienapp, P.","BibLvlCode":"AS"},{"BRefID":395749,"RR":"<b>Dai, Y.; Zhong, Y.; Pan, R.; Yuan, L.; Fu, Y.; Chen, Y.; Du, J.; Li, M.; Wang, X.; Liu, H.; Shi, C.; Liu, G.; Zhu, P.; Shimeld, S.; Zhou, X.; Li, G.<\/b> (2024). Evolutionary origin of the chordate nervous system revealed by amphioxus developmental trajectories. <i>Nature Ecology & Evolution 8(9)<\/i>: 1693-1710. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02469-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02469-7<\/a>","StandardTitle":"Evolutionary origin of the chordate nervous system revealed by amphioxus developmental trajectories","AuthorsString":"Dai, Y. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":327886,"RR":"<b>Stern, D.B.; Lee, C.E.<\/b> (2020). Evolutionary origins of genomic adaptations in an invasive copepod. <i>Nature Ecology & Evolution 4(8)<\/i>: 1084-1094. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1201-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1201-y<\/a>","StandardTitle":"Evolutionary origins of genomic adaptations in an invasive copepod","AuthorsString":"Stern, D.B.; Lee, C.E.","BibLvlCode":"AS"},{"BRefID":323997,"RR":"<b>Wang, Jing; Zhang, Lingling; Lian, Shanshan; Qin, Zhenkui; Zhu, Xuan; Dai, Xiaoting; Huang, Zekun; Ke, Caihuan; Zhou, Zunchun; Wei, Jiankai; Liu, Pingping; Hu, Naina; Zeng, Qifan; Dong, Bo; Dong, Ying; Kong, Dexu; Zhang, Zhifeng; Liu, Sinuo; Xia, Yu; Li, Yangping; Zhao, Liang; Xing, Qiang; Huang, Xiaoting; Hu, Xiaoli; Bao, Zhenmin; Wang, Shi<\/b> (2020). Evolutionary transcriptomics of metazoan biphasic life cycle supports a single intercalation origin of metazoan larvae. <i>Nature Ecology & Evolution 4(5)<\/i>: 725-736. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1138-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1138-1<\/a>","StandardTitle":"Evolutionary transcriptomics of metazoan biphasic life cycle supports a single intercalation origin of metazoan larvae","AuthorsString":"Wang, Jing <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":366747,"RR":"<b>Parker, T.H.; Yang, Y.<\/b> (2023). Exaggerated effects in ecology. <i>Nature Ecology & Evolution 7(9)<\/i>: 1356-1357. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02156-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02156-z<\/a>","StandardTitle":"Exaggerated effects in ecology","AuthorsString":"Parker, T.H.; Yang, Y.","BibLvlCode":"AS"},{"BRefID":283760,"RR":"<b>Harvey, T.H.P.; Butterfield, N.J.<\/b> (2017). Exceptionally preserved Cambrian loriciferans and the early animal invasion of the meiobenthos. <i>Nature Ecology & Evolution 1(3)<\/i>: 0022. <a href=\"http:\/\/dx.doi.org\/10.1038\/s41559-016-0022\" target=\"_blank\">http:\/\/dx.doi.org\/10.1038\/s41559-016-0022<\/a>","StandardTitle":"Exceptionally preserved Cambrian loriciferans and the early animal invasion of the meiobenthos","AuthorsString":"Harvey, T.H.P.; Butterfield, N.J.","BibLvlCode":"AS"},{"BRefID":364397,"RR":"<b>Haram, L.E.; Carlton, J.T.; Centurioni, L.; Choong, H.; Cornwell, B.; Crowley, M.; Egger, M.; Hafner, J.; Hormann, V.; Lebreton, L.; Maximenko, N.; McCuller, M.I.; Murray, C.; Par, J.; Shcherbina, A.; Wright, C.; Ruiz, G.M.<\/b> (2023). Extent and reproduction of coastal species on plastic debris in the North Pacific Subtropical Gyre. <i>Nature Ecology & Evolution 7(5)<\/i>: 687-697. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-01997-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-01997-y<\/a>","StandardTitle":"Extent and reproduction of coastal species on plastic debris in the North Pacific Subtropical Gyre","AuthorsString":"Haram, L.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334805,"RR":"<b>Mathes, G.H.; van Dijk, J.; Kiessling, W.; Steinbauer, M.J.<\/b> (2021). Extinction risk controlled by interaction of long-term and short-term climate change. <i>Nature Ecology & Evolution 5(3)<\/i>: 304-310. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01377-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01377-w<\/a>","StandardTitle":"Extinction risk controlled by interaction of long-term and short-term climate change","AuthorsString":"Mathes, G.H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":341575,"RR":"<b>Kahrl, A.F.; Snook, R.R.; Fitzpatrick, J.L.<\/b> (2021). Fertilization mode drives sperm length evolution across the animal tree of life. <i>Nature Ecology & Evolution 5(8)<\/i>: 1153-1164. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01488-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01488-y<\/a>","StandardTitle":"Fertilization mode drives sperm length evolution across the animal tree of life","AuthorsString":"Kahrl, A.F.; Snook, R.R.; Fitzpatrick, J.L.","BibLvlCode":"AS"},{"BRefID":393140,"RR":"<b>Venu, V.; Harjunmaa, E.; Dreau, A.; Brady, S.; Absher, D.; Kingsley, D.M.; Jones, F.C.<\/b> (2024). Fine-scale contemporary recombination variation and its fitness consequences in adaptively diverging stickleback fish. <i>Nature Ecology & Evolution 8(7)<\/i>: 1337-1352. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02434-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02434-4<\/a>","StandardTitle":"Fine-scale contemporary recombination variation and its fitness consequences in adaptively diverging stickleback fish","AuthorsString":"Venu, V. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":324841,"RR":"<b>Audzijonyte, A.; Richards, S.A.; Stuart-Smith, R.D.; Pecl, G.T.; Edgar, G.J.; Barrett, N.S.; Payne, N.; Blanchard, J.L.<\/b> (2020). Fish body sizes change with temperature but not all species shrink with warming. <i>Nature Ecology & Evolution 4(6)<\/i>: 809-814. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1171-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1171-0<\/a>","StandardTitle":"Fish body sizes change with temperature but not all species shrink with warming","AuthorsString":"Audzijonyte, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359129,"RR":"<b>Cline, T.J.; Allgeier, J.E.<\/b> (2022). Fish community structure and dynamics are insufficient to mediate coral resilience. <i>Nature Ecology & Evolution 6(11)<\/i>: 1700-1709. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01882-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01882-0<\/a>","StandardTitle":"Fish community structure and dynamics are insufficient to mediate coral resilience","AuthorsString":"Cline, T.J.; Allgeier, J.E.","BibLvlCode":"AS"},{"BRefID":415709,"RR":"<b>Andriuzzi, W.<\/b> (2025). Fish without borders. <i>Nature Ecology & Evolution 9(9)<\/i>: 1545-1545. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02852-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02852-y<\/a>","StandardTitle":"Fish without borders","AuthorsString":"Andriuzzi, W.","BibLvlCode":"AS"},{"BRefID":364391,"RR":"<b>Antonelli, A.<\/b> (2023). Five essentials for area-based biodiversity protection. <i>Nature Ecology & Evolution 7(5)<\/i>: 630-631. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02023-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02023-x<\/a>","StandardTitle":"Five essentials for area-based biodiversity protection","AuthorsString":"Antonelli, A.","BibLvlCode":"AS"},{"BRefID":396181,"RR":"<b>Pienkowski, T.; Jagadish, A.; Battista, W.; Blaise, G.C.; Christie, A.P.; Clark, M.; Emenyu, A.P.; Joglekar, A.; Nielsen, K.S.; Powell, T.; White, T.; Mills, M.<\/b> (2024). Five lessons for avoiding failure when scaling in conservation. <i>Nature Ecology & Evolution 8(10)<\/i>: 1804-1814. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02507-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02507-4<\/a>","StandardTitle":"Five lessons for avoiding failure when scaling in conservation","AuthorsString":"Pienkowski, T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359245,"RR":"<b>Sswat, M.; Stiasny, M.H.; Taucher, J.; Alguer\u00f3 Mu\u00f1iz, M.; Bach, L.T.; Jutfelt, F.; Riebesell, U.; Clemmesen, C.<\/b> (2018). Food web changes under ocean acidification promote herring larvae survival. <i>Nature Ecology & Evolution 2(5)<\/i>: 836-840. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-018-0514-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-018-0514-6<\/a>","StandardTitle":"Food web changes under ocean acidification promote herring larvae survival","AuthorsString":"Sswat, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":356150,"RR":"<b>Burns, A.; Woodward, J.; Conneller, C.; Reimer, P.J.<\/b> (2022). Footprint beds record Holocene decline in large mammal diversity on the Irish Sea coast of Britain. <i>Nature Ecology & Evolution 6(10)<\/i>: 1553-1563. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01856-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01856-2<\/a>","StandardTitle":"Footprint beds record Holocene decline in large mammal diversity on the Irish Sea coast of Britain","AuthorsString":"Burns, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":380816,"RR":"<b>Corral-Lopez, A.; Bloch, N.I.; van der Bijl, W.; Cortazar-Chinarro, M.; Szorkovszky, A.; Kotrschal, A.; Darolti, I.; Buechel, S.D.; Romenskyy, M.; Kolm, N.; Mank, J.E.<\/b> (2024). Functional convergence of genomic and transcriptomic architecture underlies schooling behaviour in a live-bearing fish. <i>Nature Ecology & Evolution 8(1)<\/i>: 98-110. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02249-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02249-9<\/a>","StandardTitle":"Functional convergence of genomic and transcriptomic architecture underlies schooling behaviour in a live-bearing fish","AuthorsString":"Corral-Lopez, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":352694,"RR":"<b>McLean, M.<\/b> (2022). Functional trade-offs in fish communities. <i>Nature Ecology & Evolution 6(6)<\/i>: 669-670. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01706-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01706-1<\/a>","StandardTitle":"Functional trade-offs in fish communities","AuthorsString":"McLean, M.","BibLvlCode":"AS"},{"BRefID":407999,"RR":"<b>Brooks, G.C.; Uyeda, J.C.; Bone, N.J.; Conrad, H.M.; Mull, C.G.; Kindsvater, H.K.<\/b> (2025). Fundamental constraints on vertebrate life history are shaped by aquatic\u2013terrestrial transitions and reproductive mode. <i>Nature Ecology & Evolution 9(5)<\/i>: 857-866. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02663-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02663-1<\/a>","StandardTitle":"Fundamental constraints on vertebrate life history are shaped by aquatic\u2013terrestrial transitions and reproductive mode","AuthorsString":"Brooks, G.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":393141,"RR":"<b>Frans, V.F.; Liu, J.<\/b> (2024). Gaps and opportunities in modelling human influence on species distributions in the Anthropocene. <i>Nature Ecology & Evolution 8(7)<\/i>: 1365-1377. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02435-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02435-3<\/a>","StandardTitle":"Gaps and opportunities in modelling human influence on species distributions in the Anthropocene","AuthorsString":"Frans, V.F.; Liu, J.","BibLvlCode":"AS"},{"BRefID":404803,"RR":"(2024). Gene expression in developing hemichordates gives insights into deuterostome evolution. <i>Nature Ecology & Evolution 8(12)<\/i>: 2161-2162. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02563-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02563-w<\/a>","StandardTitle":"Gene expression in developing hemichordates gives insights into deuterostome evolution","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":322679,"RR":"<b>Fern\u00e1ndez, R.; Gabald\u00f3n, T.<\/b> (2020). Gene gain and loss across the metazoan tree of life. <i>Nature Ecology & Evolution 4(4)<\/i>: 524-533. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1069-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1069-x<\/a>","StandardTitle":"Gene gain and loss across the metazoan tree of life","AuthorsString":"Fern\u00e1ndez, R.; Gabald\u00f3n, T.","BibLvlCode":"AS"},{"BRefID":324847,"RR":"<b>Wang, L.; Israel, J.W.; Edgar, A.; Raff, R.A.; Raff, E.C.; Byrne, M.; Wray, G.A.<\/b> (2020). Genetic basis for divergence in developmental gene expression in two closely related sea urchins. <i>Nature Ecology & Evolution 4(6)<\/i>: 831\u2013840. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1165-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1165-y<\/a>","StandardTitle":"Genetic basis for divergence in developmental gene expression in two closely related sea urchins","AuthorsString":"Wang, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":282836,"RR":"<b>Creer, S.; Seymour, M.<\/b> (2017). Genetics from a drop in the ocean. <i>Nature Ecology & Evolution 1(1)<\/i>: 0037. <a href=\"http:\/\/dx.doi.org\/10.1038\/s41559-016-0037\" target=\"_blank\">http:\/\/dx.doi.org\/10.1038\/s41559-016-0037<\/a>","StandardTitle":"Genetics from a drop in the ocean","AuthorsString":"Creer, S.; Seymour, M.","BibLvlCode":"AS"},{"BRefID":404799,"RR":"<b>Hoffman, J.I.; Vendrami, D.L.J.; Hench, K.; Chen, R.S.; Stoffel, M.A.; Kardos, M.; Amos, W.; Kalinowski, J.; Rickert, D.; K\u00f6hrer, K.; Wachtmeister, T.; Goebel, M.E.; Bonin, C.A.; Gulland, F.M.D.; Dasmahapatra, K.K.<\/b> (2024). Genomic and fitness consequences of a near-extinction event in the northern elephant seal. <i>Nature Ecology & Evolution 8(12)<\/i>: 2309-2324. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02533-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02533-2<\/a>","StandardTitle":"Genomic and fitness consequences of a near-extinction event in the northern elephant seal","AuthorsString":"Hoffman, J.I. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391791,"RR":"<b>Hoelzel, A.R.; Gkafas, G.A.; Kang, H.; Sarigol, F.; Le Boeuf, B.; Costa, D.P.; Beltran, R.S.; Reiter, J.; Robinson, P.W.; McInerney, N.; Seim, I.; Sun, S.; Fan, G.; Li, S.<\/b> (2024). Genomics of post-bottleneck recovery in the northern elephant seal. <i>Nature Ecology & Evolution 8(4)<\/i>: 686-694. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02337-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02337-4<\/a>","StandardTitle":"Genomics of post-bottleneck recovery in the northern elephant seal","AuthorsString":"Hoelzel, A.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":333772,"RR":"<b>van Maldegem, L.M.; Nettersheim, B.J.; Leider, A.; Brocks, J.J.; Adam, P.; Schaeffer, P.; Hallmann, C.<\/b> (2021). Geological alteration of Precambrian steroids mimics early animal signatures. <i>Nature Ecology & Evolution 5(2)<\/i>: 169-173. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01336-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01336-5<\/a>","StandardTitle":"Geological alteration of Precambrian steroids mimics early animal signatures","AuthorsString":"van Maldegem, L.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":329208,"RR":"<b>\u00c1lvarez-Noriega, M.; Burgess, S.C.; Byers, J.E.; Pringle, J.M.; Wares, J.P.; Marshall, D.J.<\/b> (2020). Global biogeography of marine dispersal potential. <i>Nature Ecology & Evolution 4(9)<\/i>: 1196-1203. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1238-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1238-y<\/a>","StandardTitle":"Global biogeography of marine dispersal potential","AuthorsString":"\u00c1lvarez-Noriega, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":301385,"RR":"<b>Froehlich, H.E.; Gentry, R.R.; Halpern, B.S.<\/b> (2018). Global change in marine aquaculture production potential under climate change. <i>Nature Ecology & Evolution 2<\/i>: 1745-1750. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-018-0669-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-018-0669-1<\/a>","StandardTitle":"Global change in marine aquaculture production potential under climate change","AuthorsString":"Froehlich, H.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":310812,"RR":"<b>Anton, A.; Geraldi, N.R.; Lovelock, C.E.; Apostolaki, E.T.; Bennett, S.; Cebrian, J.; Krause-Jensen, D.; Marb\u00e0, N.; Martinetto, P.; Pandolfi, J.M.; Santana-Garcon, J.; Duarte, C.M.<\/b> (2019). Global ecological impacts of marine exotic species. <i>Nature Ecology & Evolution 3(5)<\/i>: 787-800. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0851-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0851-0<\/a>","StandardTitle":"Global ecological impacts of marine exotic species","AuthorsString":"Anton, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":283025,"RR":"<b>Davidson, L.N.K.; Dulvy, N.K.<\/b> (2017). Global marine protected areas to prevent extinctions. <i>Nature Ecology & Evolution 1(2)<\/i>: 0040. <a href=\"http:\/\/dx.doi.org\/10.1038\/s41559-016-0040\" target=\"_blank\">http:\/\/dx.doi.org\/10.1038\/s41559-016-0040<\/a>","StandardTitle":"Global marine protected areas to prevent extinctions","AuthorsString":"Davidson, L.N.K.; Dulvy, N.K.","BibLvlCode":"AS"},{"BRefID":320657,"RR":"<b>Garc\u00eda\u00a0Molinos, J.<\/b> (2020). Global marine warming in a new dimension. <i>Nature Ecology & Evolution 4(1)<\/i>: 16-17. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1037-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1037-5<\/a>","StandardTitle":"Global marine warming in a new dimension","AuthorsString":"Garc\u00eda\u00a0Molinos, J.","BibLvlCode":"AS"},{"BRefID":356149,"RR":"<b>Jamy, M.; Biwer, C.; Vaulot, D.; Obiol, A.; Jing, H.; Peura, S.; Massana, R.; Burki, F.<\/b> (2022). Global patterns and rates of habitat transitions across the eukaryotic tree of life. <i>Nature Ecology & Evolution 6(10)<\/i>: 1458-1470. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01838-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01838-4<\/a>","StandardTitle":"Global patterns and rates of habitat transitions across the eukaryotic tree of life","AuthorsString":"Jamy, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291542,"RR":"<b>van Denderen, P.D.; Lindegren, M.; MacKenzie, B.R.; Watson, R.A.; Andersen, K.H.<\/b> (2017). Global patterns in marine predatory fish. <i>Nature Ecology & Evolution 2(1)<\/i>: 65-70. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0388-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0388-z<\/a>","StandardTitle":"Global patterns in marine predatory fish","AuthorsString":"van Denderen, P.D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":297164,"RR":"<b>Stein, R.W.; Mull, C.G.; Kuhn, T.S.; Aschliman, N.C.; Davidson, L.N.K.; Joy, J.B.; Smith, G.J.; Dulvy, N.K.; Mooers, A.O.<\/b> (2018). Global priorities for conserving the evolutionary history of sharks, rays and chimaeras. <i>Nature Ecology & Evolution 2(2)<\/i>: 288-298. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0448-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0448-4<\/a>","StandardTitle":"Global priorities for conserving the evolutionary history of sharks, rays and chimaeras","AuthorsString":"Stein, R.W. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":327871,"RR":"<b>Reyers, B.; Selig, E.R.<\/b> (2020). Global targets that reveal the social\u2013ecological interdependencies of sustainable development. <i>Nature Ecology & Evolution 4(8)<\/i>: 1011-1019. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1230-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1230-6<\/a>","StandardTitle":"Global targets that reveal the social\u2013ecological interdependencies of sustainable development","AuthorsString":"Reyers, B.; Selig, E.R.","BibLvlCode":"AS"},{"BRefID":352692,"RR":"<b>Camacho, C.; Negro, J.J.; Elmberg, J.; Fox, A.D.; Nagy, S.; Pain, D.J.; Green, A.J.<\/b> (2022). Groundwater extraction poses extreme threat to Do\u00f1ana World Heritage Site. <i>Nature Ecology & Evolution 6(6)<\/i>: 654-655. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01763-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01763-6<\/a>","StandardTitle":"Groundwater extraction poses extreme threat to Do\u00f1ana World Heritage Site","AuthorsString":"Camacho, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338295,"RR":"<b>Stuart-Smith, R.D.; Mellin, C.; Bates, A.E.; Edgar, G.J.<\/b> (2021). Habitat loss and range shifts contribute to ecological generalization among reef fishes. <i>Nature Ecology & Evolution 5(5)<\/i>: 656-662. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-020-01342-7\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-020-01342-7<\/a>","StandardTitle":"Habitat loss and range shifts contribute to ecological generalization among reef fishes","AuthorsString":"Stuart-Smith, R.D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391162,"RR":"<b>Yu, Daqi; Ren, Yandong; Uesaka, Masahiro; Beavan, Alan J. S.; Muffato, Matthieu; Shen, Jieyu; Li, Yongxin; Sato, Iori; Wan, Wenting; Clark, James W.; Keating, Joseph N.; Carlisle, Emily M.; Dearden, Richard P.; Giles, Sam; Randle, Emma; Sansom, Robert S.; Feuda, Roberto; Fleming, James F.; Sugahara, Fumiaki; Cummins, Carla; Patricio, Mateus; Akanni, Wasiu; D\u2019Aniello, Salvatore; Bertolucci, Cristiano; Irie, Naoki; Alev, Cantas; Sheng, Guojun; de Mendoza, Alex; Maeso, Ignacio; Irimia, Manuel; Fromm, Bastian; Peterson, Kevin J.; Das, Sabyasachi; Hirano, Masayuki; Rast, Jonathan P.; Cooper, Max D.; Paps, Jordi; Pisani, Davide; Kuratani, Shigeru; Martin, Fergal J.; Wang, Wen; Donoghue, Philip C. J.; Zhang, Yong E.; Pascual-Anaya, Juan<\/b> (2024). Hagfish genome elucidates vertebrate whole-genome duplication events and their evolutionary consequences. <i>Nature Ecology & Evolution 8(3)<\/i>: 519-535. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02299-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02299-z<\/a>","StandardTitle":"Hagfish genome elucidates vertebrate whole-genome duplication events and their evolutionary consequences","AuthorsString":"Yu, Daqi <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391161,"RR":"(2024). Hagfish genome sequence sheds light on early vertebrate genome evolution. <i>Nature Ecology & Evolution 8(3)<\/i>: 372-373. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02302-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02302-7<\/a>","StandardTitle":"Hagfish genome sequence sheds light on early vertebrate genome evolution","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":380809,"RR":"<b>Bhaumik, V.<\/b> (2024). Heat-proofing corals. <i>Nature Ecology & Evolution 8(1)<\/i>: 6. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02283-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02283-7<\/a>","StandardTitle":"Heat-proofing corals","AuthorsString":"Bhaumik, V.","BibLvlCode":"AS"},{"BRefID":404804,"RR":"<b>P\u00e9rez-Posada, A.; Lin, C.-Y.; Fan, T.-P.; Lin, C.-Y.; Chen, Y.-C.; G\u00f3mez-Skarmeta, J.L.; Yu, J.-K.; Su, Y.-H.; Tena, J.J.<\/b> (2024). Hemichordate cis-regulatory genomics and the gene expression dynamics of deuterostomes. <i>Nature Ecology & Evolution 8(12)<\/i>: 2213-2227. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02562-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02562-x<\/a>","StandardTitle":"Hemichordate cis-regulatory genomics and the gene expression dynamics of deuterostomes","AuthorsString":"P\u00e9rez-Posada, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391785,"RR":"<b>Campbell, Justin E.; Kennedy Rhoades, O.; Munson, Calvin J.; Altieri, Andrew H.; Douglass, James G.; Heck, Kenneth L.; Paul, Valerie J.; Armitage, Anna R.; Barry, Savanna C.; Bethel, Enrique; Christ, Lindsey; Christianen, Marjolijn J. A.; Dodillet, Grace; Dutton, Katrina; Fourqurean, James W.; Frazer, Thomas K.; Gaffey, Bethany M.; Glazner, Rachael; Goeke, Janelle A.; Grana-Valdes, Rancel; Jenkins, Victoria J.; Kramer, Olivier A. A.; Linhardt, Samantha T.; Martin, Charles W.; Martinez Lopez, Isis G.; McDonald, Ashley M.; Main, Vivienne A.; Manuel, Sarah A.; Marco-M\u00e9ndez, Candela; O\u2019Brien, Duncan A.; O\u2019Shea, Owen R.; Patrick, Christopher J.; Peabody, Clare; Reynolds, Laura K.; Rodriguez, Alex; Rodriguez Bravo, Lucia M.; Sang, Amanda; Sawall, Yvonne; Smith, Khalil; Smulders, Fee O. H.; Sun, Uriah; Thompson, Jamie E.; van Tussenbroek, Brigitta; Wied, William L.<\/b> (2024). Herbivore effects increase with latitude across the extent of a foundational seagrass. <i>Nature Ecology & Evolution 8(4)<\/i>: 663-675. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02336-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02336-5<\/a>","StandardTitle":"Herbivore effects increase with latitude across the extent of a foundational seagrass","AuthorsString":"Campbell, Justin E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":363724,"RR":"<b>Turner, M.<\/b> (2023). Heritable trait variation for climate resilience. <i>Nature Ecology & Evolution 7(4)<\/i>: 492. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02004-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02004-0<\/a>","StandardTitle":"Heritable trait variation for climate resilience","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":332603,"RR":"<b>Cooney, C.R.; Thomas, G.H.<\/b> (2021). Heterogeneous relationships between rates of speciation and body size evolution across vertebrate clades. <i>Nature Ecology & Evolution 5(1)<\/i>: 101-110. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01321-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01321-y<\/a>","StandardTitle":"Heterogeneous relationships between rates of speciation and body size evolution across vertebrate clades","AuthorsString":"Cooney, C.R.; Thomas, G.H.","BibLvlCode":"AS"},{"BRefID":393135,"RR":"<b>Liu, X.; Song, H.; Chu, D.; Dai, X.; Wang, F.; Silvestro, D.<\/b> (2024). Heterogeneous selectivity and morphological evolution of marine clades during the Permian\u2013Triassic mass extinction. <i>Nature Ecology & Evolution 8(7)<\/i>: 1248-1258. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02438-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02438-0<\/a>","StandardTitle":"Heterogeneous selectivity and morphological evolution of marine clades during the Permian\u2013Triassic mass extinction","AuthorsString":"Liu, X. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":283761,"RR":"<b>Louca, S.; Jacques, S.M.S.; Pires, A.P.F.; Leal, J.S.; Srivastava, D.S.; Parfrey, L.W.; Farjalla, V.F.; Doebeli, M.<\/b> (2016). High taxonomic variability despite stable functional structure across microbial communities. <i>Nature Ecology & Evolution 1(1)<\/i>: 0015. <a href=\"http:\/\/dx.doi.org\/10.1038\/s41559-016-0015\" target=\"_blank\">http:\/\/dx.doi.org\/10.1038\/s41559-016-0015<\/a>","StandardTitle":"High taxonomic variability despite stable functional structure across microbial communities","AuthorsString":"Louca, S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":316652,"RR":"<b>Crespo, G.O.; Dunn, D.; Gjerde, K.M.; Wright, G.; Halpin, P.N.<\/b> (2019). High-seas fish biodiversity is slipping through the governance net. <i>Nature Ecology & Evolution 3(9)<\/i>: 1273-1276. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0981-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0981-4<\/a>","StandardTitle":"High-seas fish biodiversity is slipping through the governance net","AuthorsString":"Crespo, G.O. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":312358,"RR":"<b>Daane, J.M.; Dornburg, A.; Smits, P.; MacGuigan, D.J.; Hawkins, B; Near, T.J.; Detrich III, H.W.; Harris, M.P.<\/b> (2019). Historical contingency shapes adaptive radiation in Antarctic fishes. <i>Nature Ecology & Evolution 3(7)<\/i>: 1102-1109. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0914-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0914-2<\/a>","StandardTitle":"Historical contingency shapes adaptive radiation in Antarctic fishes","AuthorsString":"Daane, J.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":352693,"RR":"<b>Goyal, A.<\/b> (2022). How diverse ecosystems remain stable. <i>Nature Ecology & Evolution 6(6)<\/i>: 667-668. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01758-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01758-3<\/a>","StandardTitle":"How diverse ecosystems remain stable","AuthorsString":"Goyal, A.","BibLvlCode":"AS"},{"BRefID":404802,"RR":"<b>Aub\u00e9, S.; Landry, C.R.<\/b> (2024). How genotype-by-environment interactions on fitness emerge. <i>Nature Ecology & Evolution 8(12)<\/i>: 2157-2158. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02577-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02577-4<\/a>","StandardTitle":"How genotype-by-environment interactions on fitness emerge","AuthorsString":"Aub\u00e9, S.; Landry, C.R.","BibLvlCode":"AS"},{"BRefID":395676,"RR":"<b>Turner, M.<\/b> (2024). Hurricane effects on coral health. <i>Nature Ecology & Evolution 8(9)<\/i>: 1566-1566. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02495-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02495-5<\/a>","StandardTitle":"Hurricane effects on coral health","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":364395,"RR":"(2023). Identifying microbial guilds on the basis of ecological patterns. <i>Nature Ecology & Evolution 7(5)<\/i>: 651-652. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02030-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02030-y<\/a>","StandardTitle":"Identifying microbial guilds on the basis of ecological patterns","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":368529,"RR":"<b>Challender, D.W.S.; Cremona, P.J.; Malsch, K.; Robinson, J.E.; Pavitt, A.T.; Scott, J.; Hoffmann, R.; Joolia, A.; Oldfield, T.E.E.; Jenkins, R.K.B.; Conde, D.A.; Hilton-Taylor, C.; Hoffmann, M.<\/b> (2023). Identifying species likely threatened by international trade on the IUCN Red List can inform CITES trade measures. <i>Nature Ecology & Evolution 7(8)<\/i>: 1211-1220. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02115-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02115-8<\/a>","StandardTitle":"Identifying species likely threatened by international trade on the IUCN Red List can inform CITES trade measures","AuthorsString":"Challender, D.W.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":282831,"RR":"<b>Moran, D.; Kanemoto, K.<\/b> (2017). Identifying species threat hotspots from global supply chains. <i>Nature Ecology & Evolution 1(1)<\/i>: 0023. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-016-0023\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-016-0023<\/a>","StandardTitle":"Identifying species threat hotspots from global supply chains","AuthorsString":"Moran, D.; Kanemoto, K.","BibLvlCode":"AS"},{"BRefID":436449,"RR":"<b>Stewart, E.C.D.; Wiklund, H.; Neal, L.; Bribiesca-Contreras, G.; Drennan, R.; Boolukos, C.M.B.; King, L.D.; Rabone, M.; Valls Domedel, G.; Serpell-Stevens, A.; Arias, M.B.; Dahlgren, T.G.; Horton, T.; Glover, A.G.<\/b> (2026). Impacts of an industrial deep-sea mining trial on macrofaunal biodiversity. <i>Nature Ecology & Evolution 10(2)<\/i>: 318-329. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02911-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02911-4<\/a>","StandardTitle":"Impacts of an industrial deep-sea mining trial on macrofaunal biodiversity","AuthorsString":"Stewart, E.C.D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334814,"RR":"<b>Sampaio, E.; Santos, C.; Rosa, I.C.; Ferreira, V.; P\u00f6rtner, H.-O.; Duarte, C.M.; Levin, L.A.; Rosa, R.<\/b> (2021). Impacts of hypoxic events surpass those of future ocean warming and acidification. <i>Nature Ecology & Evolution 5(3)<\/i>: 311-321. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01370-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01370-3<\/a>","StandardTitle":"Impacts of hypoxic events surpass those of future ocean warming and acidification","AuthorsString":"Sampaio, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359781,"RR":"<b>Spake, R.; O\u2019Dea, R.E.; Nakagawa, S.; Doncaster, C.P.; Ryo, M.; Callaghan, C.T.; Bullock, J.M.<\/b> (2022). Improving quantitative synthesis to achieve generality in ecology. <i>Nature Ecology & Evolution 6(12)<\/i>: 1818-1828. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01891-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01891-z<\/a>","StandardTitle":"Improving quantitative synthesis to achieve generality in ecology","AuthorsString":"Spake, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364389,"RR":"<b>Kardos, M.; Zhang, Y.; Parsons, K.M.; Yunga, A.; Kang, H.; Xu, X.; Liu, X.; Matkin, C.O.; Zhang, P.; Ward, E.J.; Hanson, M.B.; Emmons, C.; Ford, M.J.; Fan, G.; Li, S.<\/b> (2023). Inbreeding depression explains killer whale population dynamics. <i>Nature Ecology & Evolution 7(5)<\/i>: 675-686. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-01995-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-01995-0<\/a>","StandardTitle":"Inbreeding depression explains killer whale population dynamics","AuthorsString":"Kardos, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364390,"RR":"<b>Robinson, J.A.<\/b> (2023). Inbreeding threatens iconic killer whales. <i>Nature Ecology & Evolution 7(5)<\/i>: 647-648. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02024-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02024-w<\/a>","StandardTitle":"Inbreeding threatens iconic killer whales","AuthorsString":"Robinson, J.A.","BibLvlCode":"AS"},{"BRefID":349709,"RR":"<b>Jetz, W.; McGowan, J.; Rinnan, D.S.; Possingham, H.P.; Visconti, P.; O\u2019Donnell, B.; Londo\u00f1o-Murcia, M.C.<\/b> (2022). Include biodiversity representation indicators in area-based conservation targets. <i>Nature Ecology & Evolution 6(2)<\/i>: 123-126. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01620-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01620-y<\/a>","StandardTitle":"Include biodiversity representation indicators in area-based conservation targets","AuthorsString":"Jetz, W. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":321964,"RR":"<b>Solgaard Thomsen, M.<\/b> (2020). Indiscriminate data aggregation in ecological meta-analysis underestimates impacts of invasive species. <i>Nature Ecology & Evolution 4(3)<\/i>: 312-314. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1117-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1117-6<\/a>","StandardTitle":"Indiscriminate data aggregation in ecological meta-analysis underestimates impacts of invasive species","AuthorsString":"Solgaard Thomsen, M.","BibLvlCode":"AS"},{"BRefID":331720,"RR":"<b>White, L.; O'Connor, N.E.; Yang, Q.; Emmerson, M.C.; Donohue, I.<\/b> (2020). Individual species provide multifaceted contributions to the stability of ecosystems. <i>Nature Ecology & Evolution 4(12)<\/i>: 1594-1601. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01315-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01315-w<\/a>","StandardTitle":"Individual species provide multifaceted contributions to the stability of ecosystems","AuthorsString":"White, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330703,"RR":"<b>Stuart, Y.E.; Travis, M.P.; Bell, M.A.<\/b> (2020). Inferred genetic architecture underlying evolution in a fossil stickleback lineage. <i>Nature Ecology & Evolution 4(11)<\/i>: 1549-1557. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01287-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01287-x<\/a>","StandardTitle":"Inferred genetic architecture underlying evolution in a fossil stickleback lineage","AuthorsString":"Stuart, Y.E.; Travis, M.P.; Bell, M.A.","BibLvlCode":"AS"},{"BRefID":354407,"RR":"<b>Khelifa, R.; Mahdjoub, H.<\/b> (2021). Integrate geographic scales in equity, diversity and inclusion. <i>Nature Ecology & Evolution 6(1)<\/i>: 4-5. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01609-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01609-7<\/a>","StandardTitle":"Integrate geographic scales in equity, diversity and inclusion","AuthorsString":"Khelifa, R.; Mahdjoub, H.","BibLvlCode":"AS"},{"BRefID":330696,"RR":"<b>Winther, J.-G.; Dai, M.; Rist, T.; Hoel, A.H.; Li, Y.; Trice, A.; Morrissey, K.; Juinio-Me\u00f1ez, M.A.; Fernandes, L.; Unger, S.; Scarano, F.R.; Halpin, P.; Whitehouse, S.<\/b> (2020). Integrated ocean management for a sustainable ocean economy. <i>Nature Ecology & Evolution 4(11)<\/i>: 1451-1458. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1259-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1259-6<\/a>","StandardTitle":"Integrated ocean management for a sustainable ocean economy","AuthorsString":"Winther, J.-G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391788,"RR":"<b>Grupstra, C.G.B.; G\u00f3mez-Corrales, M.; Fifer, J.E.; Aichelman, H.E.; Meyer-Kaiser, K.S.; Prada, C.; Davies, S.W.<\/b> (2024). Integrating cryptic diversity into coral evolution, symbiosis and conservation. <i>Nature Ecology & Evolution 8(4)<\/i>: 622-636. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02319-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02319-y<\/a>","StandardTitle":"Integrating cryptic diversity into coral evolution, symbiosis and conservation","AuthorsString":"Grupstra, C.G.B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351868,"RR":"<b>Cavender-Bares, J.; Schneider, F.D.; Santos, M.J.; Armstrong, A.; Carnaval, A.; Dahlin, K.M.; Fatoyinbo, L.; Hurtt, G.C.; Schimel, D.; Townsend, P.A.; Ustin, S.L.; Wang, Z.; Wilson, A.M.<\/b> (2022). Integrating remote sensing with ecology and evolution to advance biodiversity conservation. <i>Nature Ecology & Evolution 6(5)<\/i>: 506-519. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01702-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01702-5<\/a>","StandardTitle":"Integrating remote sensing with ecology and evolution to advance biodiversity conservation","AuthorsString":"Cavender-Bares, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338305,"RR":"<b>McNeil, M.; Firn, J.; Nothdurft, L.D.; Pearse, A.R.; Webster, J.M.; Roland Pitcher, C.<\/b> (2021). Inter-reef <i>Halimeda<\/i> algal habitats within the Great Barrier Reef support a distinct biotic community and high biodiversity. <i>Nature Ecology & Evolution 5(5)<\/i>: 647-655. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01400-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01400-8<\/a>. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-021-01400-8\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-021-01400-8<\/a>","StandardTitle":"Inter-reef <i>Halimeda<\/i> algal habitats within the Great Barrier Reef support a distinct biotic community and high biodiversity","AuthorsString":"McNeil, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":284855,"RR":"<b>Galloway, T.S.; Cole, M.; Lewis, C.<\/b> (2017). Interactions of microplastic debris throughout the marine ecosystem. <i>Nature Ecology & Evolution 1(5)<\/i>: 0116. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0116\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0116<\/a>","StandardTitle":"Interactions of microplastic debris throughout the marine ecosystem","AuthorsString":"Galloway, T.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":333775,"RR":"<b>Magalhaes, I.S.; Whiting, J.R.; D\u2019Agostino, D.; Hohenlohe, P.A.; Mahmud, M.; Bell, M.A.; Sk\u00falason, S.; MacColl, A.D.C.<\/b> (2021). Intercontinental genomic parallelism in multiple three-spined stickleback adaptive radiations. <i>Nature Ecology & Evolution 5(2)<\/i>: 251-261. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01341-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01341-8<\/a>","StandardTitle":"Intercontinental genomic parallelism in multiple three-spined stickleback adaptive radiations","AuthorsString":"Magalhaes, I.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":355335,"RR":"<b>McKay, A.<\/b> (2022). Interpreting intertidal invasions. <i>Nature Ecology & Evolution 6(9)<\/i>: 1249-1249. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01852-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01852-6<\/a>","StandardTitle":"Interpreting intertidal invasions","AuthorsString":"McKay, A.","BibLvlCode":"AS"},{"BRefID":331726,"RR":"<b>Smith, F.W.; Jockusch, E.J.<\/b> (2020). Into the body wall and back out again. <i>Nature Ecology & Evolution 4(12)<\/i>: 1580\u20131581. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01350-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01350-7<\/a>","StandardTitle":"Into the body wall and back out again","AuthorsString":"Smith, F.W.; Jockusch, E.J.","BibLvlCode":"AS"},{"BRefID":392773,"RR":"<b>Peller, T.; Altermatt, F.<\/b> (2024). Invasive species drive cross-ecosystem effects worldwide. <i>Nature Ecology & Evolution 8(6)<\/i>: 1087-1097. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02380-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02380-1<\/a>","StandardTitle":"Invasive species drive cross-ecosystem effects worldwide","AuthorsString":"Peller, T.; Altermatt, F.","BibLvlCode":"AS"},{"BRefID":405767,"RR":"<b>Samarra, F.I.P.<\/b> (2025). Killer whale (<i>Orcinus orca<\/i>). <i>Nature Ecology & Evolution 9(2)<\/i>: 364-364. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02634-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02634-y<\/a>","StandardTitle":"Killer whale (<i>Orcinus orca<\/i>)","AuthorsString":"Samarra, F.I.P.","BibLvlCode":"AS"},{"BRefID":331724,"RR":"<b>Bruce, H.S.; Patel, N.H.<\/b> (2020). Knockout of crustacean leg patterning genes suggests that insect wings and body walls evolved from ancient leg segments. <i>Nature Ecology & Evolution 4(12)<\/i>: 1703\u20131712. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01349-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01349-0<\/a>","StandardTitle":"Knockout of crustacean leg patterning genes suggests that insect wings and body walls evolved from ancient leg segments","AuthorsString":"Bruce, H.S.; Patel, N.H.","BibLvlCode":"AS"},{"BRefID":408323,"RR":"<b>Cao, H.; Zhang, L.; Ge\u00dfner, J.; Congiu, L.; Gao, X.; Kynard, B.; Wei, Q.; Xie, P.<\/b> (2025). Learn from Chinese examples to save endangered sturgeons from hydropower dams. <i>Nature Ecology & Evolution 9(6)<\/i>: 880-882. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02709-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02709-4<\/a>","StandardTitle":"Learn from Chinese examples to save endangered sturgeons from hydropower dams","AuthorsString":"Cao, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291210,"RR":"<b>Blanchard, J.L.; Watson, R.A.; Fulton, E.A.; Cottrell, R.S.; Nash, K.L.; Bryndum-Buchholz, A.; B\u00fcchner, M.; Carozza, D.A.; Cheung, W.W.L.; Elliott, J.; Davidson, L.N.K.; Dulvy, N.K.; Dunne, J.P.; Eddy, T.D.; Galbraith, E.D.; Lotze, H.K.; Maury, O.; M\u00fcller, C.; Tittensor, D.P.; Jennings, S.<\/b> (2017). Linked sustainability challenges and trade-offs among fisheries, aquaculture and agriculture. <i>Nature Ecology & Evolution 1(9)<\/i>: 1240-1249. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0258-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0258-8<\/a>","StandardTitle":"Linked sustainability challenges and trade-offs among fisheries, aquaculture and agriculture","AuthorsString":"Blanchard, J.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":320666,"RR":"<b>Kline, D.I.; Teneva, L.; Okamoto, D.K.; Schneider, K.; Caldeira, K.; Miard, T.; Chai, A.; Marker, M.; Dunbar, R.B.; Mitchell, B.G.; Dove, S.; Hoegh-Guldberg, O.<\/b> (2019). Living coral tissue slows skeletal dissolution related to ocean acidification. <i>Nature Ecology & Evolution 3(10)<\/i>: 1438-1444. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0988-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0988-x<\/a>","StandardTitle":"Living coral tissue slows skeletal dissolution related to ocean acidification","AuthorsString":"Kline, D.I. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":368512,"RR":"<b>Richardson, L.E.; Heenan, A.; Delargy, A.J.; Neubauer, P.; Lecky, J.; Gove, J.M.; Green, J.A.M.; Kindinger, T.L.; Ingeman, K.E.; Williams, G.J.<\/b> (2023). Local human impacts disrupt depth-dependent zonation of tropical reef fish communities. <i>Nature Ecology & Evolution 7(11)<\/i>: 1844-1855. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02201-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02201-x<\/a>","StandardTitle":"Local human impacts disrupt depth-dependent zonation of tropical reef fish communities","AuthorsString":"Richardson, L.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":437754,"RR":"<b>Valenzuela-S\u00e1nchez, A.; Delgado-Oyarz\u00fan, S.; Azat, C.; Schmidt, B.R.; Sentenac, H.; Haddow, N.; Santana, B.; Solano-Iguaran, J.J.; Cunningham, A.A.; Bacigalupe, L.D.<\/b> (2026). Localized transmission of an aquatic pathogen drives hidden epidemics and population collapse in a terrestrial host. <i>Nature Ecology & Evolution 10(2)<\/i>: 308-317. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02930-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02930-1<\/a>","StandardTitle":"Localized transmission of an aquatic pathogen drives hidden epidemics and population collapse in a terrestrial host","AuthorsString":"Valenzuela-S\u00e1nchez, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":366746,"RR":"<b>Roe, D.; Holland, E.; Nisi, N.; Mitchell, T.; Tasnim, T.<\/b> (2023). Loss and damage finance should apply to biodiversity loss. <i>Nature Ecology & Evolution 7(9)<\/i>: 1336-1338. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02088-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02088-8<\/a>","StandardTitle":"Loss and damage finance should apply to biodiversity loss","AuthorsString":"Roe, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396178,"RR":"<b>Haag, C.R.<\/b> (2024). Loss of sex in brown algae. <i>Nature Ecology & Evolution 8(10)<\/i>: 1786-1787. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02497-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02497-3<\/a>","StandardTitle":"Loss of sex in brown algae","AuthorsString":"Haag, C.R.","BibLvlCode":"AS"},{"BRefID":363723,"RR":"<b>Blasiak, R.; Jouffray, J.-B.; Amon, D.J.; Claudet, J.; Dunshirn, P.; S\u00f8gaard J\u00f8rgensen, P.; Pranindita, A.; Wabnitz, C.C.C.; Zhivkoplias, E.; \u00d6sterblom, H.<\/b> (2023). Making marine biotechnology work for people and nature. <i>Nature Ecology & Evolution 7(4)<\/i>: 482-485. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01976-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01976-9<\/a>","StandardTitle":"Making marine biotechnology work for people and nature","AuthorsString":"Blasiak, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":356147,"RR":"<b>Stuart-Fox, D.<\/b> (2022). Making sense of animal senses. <i>Nature Ecology & Evolution 6(10)<\/i>: 1408-1408. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01851-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01851-7<\/a>","StandardTitle":"Making sense of animal senses","AuthorsString":"Stuart-Fox, D.","BibLvlCode":"AS"},{"BRefID":283026,"RR":"<b>Golden, J.S.; Virdin, J.; Nowacek, D.P.; Halpin, P.; Bennear, L.; Patil, P.G.<\/b> (2017). Making sure the blue economy is green. <i>Nature Ecology & Evolution 1(2)<\/i>: 0017. <a href=\"https:\/\/doi.org\/10.1038\/s41559-016-0017\" target=\"_blank\">https:\/\/doi.org\/10.1038\/s41559-016-0017<\/a>","StandardTitle":"Making sure the blue economy is green","AuthorsString":"Golden, J.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":405608,"RR":"<b>Burton, A. Cole; Beirne, Christopher; Gaynor, Kaitlyn M.; Sun, Catherine; Granados, Alys; Allen, Maximilian L.; Alston, Jesse M.; Alvarenga, Guilherme C.; Calder\u00f3n, Francisco Samuel \u00c1lvarez; Amir, Zachary; Anhalt-Depies, Christine; Appel, Cara; Arroyo-Arce, Stephanny; Balme, Guy; Bar-Massada, Avi; Barcelos, Daniele; Barr, Evan; Barthelmess, Erika L.; Baruzzi, Carolina; Basak, Sayantani M.; Beenaerts, Natalie; Belmaker, Jonathan; Belova, Olgirda; Bezarevi\u0107, Branko; Bird, Tori; Bogan, Daniel A.; Bogdanovi\u0107, Neda; Boyce, Andy; Boyce, Mark; Brandt, LaRoy; Brodie, Jedediah F.; Brooke, Jarred; Bubnicki, Jakub W.; Cagnacci, Francesca; Carr, Benjamin Scott; Carvalho, Jo\u00e3o; Casaer, Jim; \u010cerne, Rok; Chen, Ron; Chow, Emily; Churski, Marcin; Cincotta, Connor; \u0106irovi\u0107, Du\u0161ko; Coates, T. D.; Compton, Justin; Coon, Courtney; Cove, Michael V.; Crupi, Anthony P.; Farra, Simone Dal; Darracq, Andrea K.; Davis, Miranda; Dawe, Kimberly; De Waele, Valerie; Descalzo, Esther; Diserens, Tom A.; Drimaj, Jakub; Du\u013ea, Martin; Ellis-Felege, Susan; Ellison, Caroline; Ert\u00fcrk, Alper; Fantle-Lepczyk, Jean; Favreau, Jorie; Fennell, Mitch; Ferreras, Pablo; Ferretti, Francesco; Fiderer, Christian; Finnegan, Laura; Fisher, Jason T.; Fisher-Reid, M. Caitlin; Flaherty, Elizabeth A.; Fle\u017ear, Ur\u0161a; Flousek, Ji\u0159\u00ed; Foca, Jennifer M.; Ford, Adam; Franzetti, Barbara; Frey, Sandra; Fritts, Sarah; Fr\u00fdbov\u00e1, \u0160\u00e1rka; Furnas, Brett; Gerber, Brian; Geyle, Hayley M.; Gim\u00e9nez, Diego G.; Giordano, Anthony J.; Gomercic, Tomislav; Gompper, Matthew E.; Gr\u00e4bin, Diogo Maia; Gray, Morgan; Green, Austin; Hagen, Robert; Hagen, Robert; Hammerich, Steven; Hanekom, Catharine; Hansen, Christopher; Hasstedt, Steven; Hebblewhite, Mark; Heurich, Marco; Hofmeester, Tim R.; Hubbard, Tru; Jachowski, David; Jansen, Patrick A.; Jaspers, Kodi Jo; Jensen, Alex; Jordan, Mark; Kaizer, Mariane C.; Kelly, Marcella J.; Kohl, Michel T.; Kramer-Schadt, Stephanie; Krofel, Miha; Krug, Andrea; Kuhn, Kellie M.; Kuijper, Dries P. J.; Kuprewicz, Erin K.; Kusak, Josip; Kutal, Miroslav; Lafferty, Diana J. R.; LaRose, Summer; Lashley, Marcus; Lathrop, Richard; Lee, Thomas E.; Lepczyk, Christopher; Lesmeister, Damon B.; Licoppe, Alain; Linnell, Marco; Loch, Jan; Long, Robert; Lonsinger, Robert C.; Louvrier, Julie; Luskin, Matthew Scott; MacKay, Paula; Maher, Sean; Manet, Beno\u00eet; Mann, Gareth K. H.; Marshall, Andrew J.; Mason, David; McDonald, Zara; McKay, Tracy; McShea, William J.; Mechler, Matt; Miaud, Claude; Millspaugh, Joshua J.; Monteza-Moreno, Claudio M.; Moreira-Arce, Dario; Mullen, Kayleigh; Nagy, Christopher; Naidoo, Robin; Namir, Itai; Nelson, Carrie; O\u2019Neill, Brian; O\u2019Mara, M. Teague; Oberosler, Valentina; Osorio, Christian; Ossi, Federico; Palencia, Pablo; Pearson, Kimberly; Pedrotti, Luca; Pekins, Charles E.; Pendergast, Mary; Pinho, Fernando F.; Plhal, Radim; Pocasangre-Orellana, Xochilt; Price, Melissa; Procko, Michael; Proctor, Mike D.; Ramalho, Emiliano Esterci; Ranc, Nathan; Reljic, Slaven; Remine, Katie; Rentz, Michael; Revord, Ronald; Reyna-Hurtado, Rafael; Risch, Derek; Ritchie, Euan G.; Romero, Andrea; Rota, Christopher; Rovero, Francesco; Rowe, Helen; Rutz, Christian; Salvatori, Marco; Sandow, Derek; Schalk, Christopher M.; Scherger, Jenna; Schipper, Jan; Scognamillo, Daniel G.; \u015eekercio\u011flu, \u00c7a\u011fan H.; Semenzato, Paola; Sevin, Jennifer; Shamon, Hila; Shier, Catherine; Silva-Rodr\u00edguez, Eduardo A.; Sindicic, Magda; Smyth, Lucy K.; Soyumert, Anil; Sprague, Tiffany; St. Clair, Colleen Cassady; Stenglein, Jennifer; Stephens, Philip A.; St\u0119pniak, Kinga Magdalena; Stevens, Michael; Stevenson, Cassondra; Ternyik, B\u00e1lint; Thomson, Ian; Torres, Rita T.; Tremblay, Joan; Urrutia, Tomas; Vacher, Jean-Pierre; Visscher, Darcy; Webb, Stephen L.; Weber, Julian; Weiss, Katherine C. B.; Whipple, Laura S.; Whittier, Christopher A.; Whittington, Jesse; Wierzbowska, Izabela; Wikelski, Martin; Williamson, Jacque; Wilmers, Christopher C.; Windle, Todd; Wittmer, Heiko U.; Zharikov, Yuri; Zorn, Adam; Kays, Roland<\/b> (20","StandardTitle":"Mammal responses to global changes in human activity vary by trophic group and landscape","AuthorsString":"Burton, A. Cole <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334793,"RR":"<b>Francis, T.B.; Abbott, K.C.; Cuddington, K.; Gellner, G.; Hastings, A.; Lai, Y.-C.; Morozov, A.; Petrovskii, S.; Zeeman, M.L.<\/b> (2021). Management implications of long transients in ecological systems. <i>Nature Ecology & Evolution 5(3)<\/i>: 285-294. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01365-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01365-0<\/a>","StandardTitle":"Management implications of long transients in ecological systems","AuthorsString":"Francis, T.B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291208,"RR":"<b>Gentry, R.R.; Froehlich, H.E.; Grimm, D.; Kareiva, P.; Parke, M.; Rust, M.; Gaines, S.D.; Halpen, B.S.<\/b> (2017). Mapping the global potential for marine aquaculture. <i>Nature Ecology & Evolution 1(9)<\/i>: 1317-1324. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0257-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0257-9<\/a>","StandardTitle":"Mapping the global potential for marine aquaculture","AuthorsString":"Gentry, R.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":437126,"RR":"<b>Harold, S.<\/b> (2026). Mapping where marine megafauna move. <i>Nature Ecology & Evolution 10(1)<\/i>: 11-11. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02951-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02951-w<\/a>","StandardTitle":"Mapping where marine megafauna move","AuthorsString":"Harold, S.","BibLvlCode":"AS"},{"BRefID":344770,"RR":"<b>Krueck, N.C.<\/b> (2021). Marine conservation across protected area boundaries. <i>Nature Ecology & Evolution 5(9)<\/i>: 1203-1204. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01503-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01503-2<\/a>","StandardTitle":"Marine conservation across protected area boundaries","AuthorsString":"Krueck, N.C.","BibLvlCode":"AS"},{"BRefID":392289,"RR":"<b>Chaikin, S.; Riva, F.; Marshall, K.E.; Lessard, J.-P.; Belmaker, J.<\/b> (2024). Marine fishes experiencing high-velocity range shifts may not be climate change winners. <i>Nature Ecology & Evolution 8(5)<\/i>: 936-946. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02350-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02350-7<\/a>","StandardTitle":"Marine fishes experiencing high-velocity range shifts may not be climate change winners","AuthorsString":"Chaikin, S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":435815,"RR":"<b>Martin, R.<\/b> (2025). Marine muses: Book review \u201cOcean art: From the shore to the deep\u201d. <i>Nature Ecology & Evolution 9(11)<\/i>: 1970-1970. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02867-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02867-5<\/a>","StandardTitle":"Marine muses: Book review \u201cOcean art: From the shore to the deep\u201d","AuthorsString":"Martin, R.","BibLvlCode":"AS"},{"BRefID":437127,"RR":"<b>Browning, C.; Gabbott, S.E.; M\u00e1ngano, M.G.; Buatois, L.A.; El Albani, A.; Mazurier, A.; Bordy, E.M.<\/b> (2026). Marine snow fuels an opportunistic small food web in the Late Ordovician Soom Shale Lagerst\u00e4tte. <i>Nature Ecology & Evolution 10(1)<\/i>: 34-43. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02923-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02923-0<\/a>","StandardTitle":"Marine snow fuels an opportunistic small food web in the Late Ordovician Soom Shale Lagerst\u00e4tte","AuthorsString":"Browning, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":356148,"RR":"<b>Hayakawa, E.; Guzman, C.; Horiguchi, O.; Kawano, C.; Shiraishi, A.; Mohri, K.; Lin, M.-F.; Nakamura, R.; Nakamura, R.; Kawai, E.; Komoto, S.; Jokura, K.; Shiba, K.; Shigenobu, S.; Satake, H.; Inaba, K.; Watanabe, H.<\/b> (2022). Mass spectrometry of short peptides reveals common features of metazoan peptidergic neurons. <i>Nature Ecology & Evolution 6(10)<\/i>: 1438-1448. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01835-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01835-7<\/a>","StandardTitle":"Mass spectrometry of short peptides reveals common features of metazoan peptidergic neurons","AuthorsString":"Hayakawa, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":310816,"RR":"<b>Khalturin, K.; Shinzato, C.; Khalturina, M.; Hamada, M.; Fujie, M.; Koyanagi, R.; Kanda, M.; Goto, H.; Anton-Erxleben, F.; Toyokawa, M.; Toshino, S.; Satoh, N.<\/b> (2019). Medusozoan genomes inform the evolution of the jellyfish body plan. <i>Nature Ecology & Evolution 3(5)<\/i>: 811-822. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0853-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0853-y<\/a>","StandardTitle":"Medusozoan genomes inform the evolution of the jellyfish body plan","AuthorsString":"Khalturin, K. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338309,"RR":"<b>Dougherty, L.R.<\/b> (2021). Meta-analysis reveals that animal sexual signalling behaviour is honest and resource based. <i>Nature Ecology & Evolution 5(5)<\/i>: 688-699. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-021-01409-z\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-021-01409-z<\/a>","StandardTitle":"Meta-analysis reveals that animal sexual signalling behaviour is honest and resource based","AuthorsString":"Dougherty, L.R.","BibLvlCode":"AS"},{"BRefID":391790,"RR":"<b>Muruga, P.; Siqueira, A.C.; Bellwood, D.R.<\/b> (2024). Meta-analysis reveals weak associations between reef fishes and corals. <i>Nature Ecology & Evolution 8(4)<\/i>: 676-685. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02334-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02334-7<\/a>","StandardTitle":"Meta-analysis reveals weak associations between reef fishes and corals","AuthorsString":"Muruga, P.; Siqueira, A.C.; Bellwood, D.R.","BibLvlCode":"AS"},{"BRefID":336531,"RR":"<b>Roach, T.N.F.; Dilworth, J.; Martin H, C.; Jones, A.D.; Quinn, R.A.; Drury, C.<\/b> (2021). Metabolomic signatures of coral bleaching history. <i>Nature Ecology & Evolution 5(4)<\/i>: 495-503. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01388-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01388-7<\/a>","StandardTitle":"Metabolomic signatures of coral bleaching history","AuthorsString":"Roach, T.N.F. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":414077,"RR":"<b>Andriuzzi, W.<\/b> (2025). Methane fuel for sea spiders. <i>Nature Ecology & Evolution 9(8)<\/i>: 1308-1308. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02820-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02820-6<\/a>","StandardTitle":"Methane fuel for sea spiders","AuthorsString":"Andriuzzi, W.","BibLvlCode":"AS"},{"BRefID":393909,"RR":"<b>Danovaro, R.; Levin, L.A.; Fanelli, G.; Scenna, L.; Corinaldesi, C.<\/b> (2024). Microbes as marine habitat formers and ecosystem engineers. <i>Nature Ecology & Evolution 8(8)<\/i>: 1407-1419. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02407-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02407-7<\/a>","StandardTitle":"Microbes as marine habitat formers and ecosystem engineers","AuthorsString":"Danovaro, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":354963,"RR":"<b>Domingues, V.<\/b> (2022). Microbes of tiny invertebrates. <i>Nature Ecology & Evolution 6(8)<\/i>: 1055-1055. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01821-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01821-z<\/a>","StandardTitle":"Microbes of tiny invertebrates","AuthorsString":"Domingues, V.","BibLvlCode":"AS"},{"BRefID":297162,"RR":"<b>Okamoto, E.; Kusakabe, R.; Kuraku, S.; Hyodo, S.; Robert-Moreno, A.; Onimaru, K.; Sharpe, J.; Kuratani, S.; Tanaka, M.<\/b> (2017). Migratory appendicular muscles precursor cells in the common ancestor to all vertebrates. <i>Nature Ecology & Evolution 1(11)<\/i>: 1731-1736. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0330-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0330-4<\/a>","StandardTitle":"Migratory appendicular muscles precursor cells in the common ancestor to all vertebrates","AuthorsString":"Okamoto, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":363721,"RR":"<b>Cade, D.E.; Kahane-Rapport, S.R.; Gough, W.T.; Bierlich, K.C.; Linsky, J.M.J.; Calambokidis, J.; Johnston, D.W.; Goldbogen, J.A.; Friedlaender, A.S.<\/b> (2023). Minke whale feeding rate limitations suggest constraints on the minimum body size for engulfment filtration feeding. <i>Nature Ecology & Evolution 7(4)<\/i>: 535-546. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-01993-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-01993-2<\/a>","StandardTitle":"Minke whale feeding rate limitations suggest constraints on the minimum body size for engulfment filtration feeding","AuthorsString":"Cade, D.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":392715,"RR":"<b>Jacoby, D.M.P.<\/b> (2024). Mixed management boosts reef shark abundance. <i>Nature Ecology & Evolution 8(6)<\/i>: 1066-1067. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02393-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02393-w<\/a>","StandardTitle":"Mixed management boosts reef shark abundance","AuthorsString":"Jacoby, D.M.P.","BibLvlCode":"AS"},{"BRefID":334790,"RR":"<b>Boivin, N.; Crowther, A.<\/b> (2021). Mobilizing the past to shape a better Anthropocene. <i>Nature Ecology & Evolution 5(3)<\/i>: 273-284. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01361-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01361-4<\/a>","StandardTitle":"Mobilizing the past to shape a better Anthropocene","AuthorsString":"Boivin, N.; Crowther, A.","BibLvlCode":"AS"},{"BRefID":383514,"RR":"<b>Pearman, Peter B.; Broennimann, Olivier; Aavik, Tsipe; Albayrak, Tamer; Alves, Paulo C.; Aravanopoulos, F. A.; Bertola, Laura D.; Biedrzycka, Aleksandra; Buzan, Elena; Cubric-Curik, Vlatka; Djan, Mihajla; Fedorca, Ancuta; Fuentes-Pardo, Angela P.; Fussi, Barbara; Godoy, Jos\u00e9 A.; Gugerli, Felix; Hoban, Sean; Holderegger, Rolf; Hvilsom, Christina; Iacolina, Laura; Kalamujic Stroil, Belma; Klinga, Peter; Konopi\u0144ski, Maciej K.; Kopatz, Alexander; Laikre, Linda; Lopes-Fernandes, Margarida; McMahon, Barry John; Mergeay, Joachim; Neophytou, Charalambos; P\u00e1lsson, Sn\u00e6bj\u00f6rn; Paz-Vinas, Ivan; Posledovich, Diana; Primmer, Craig R.; Raeymaekers, Joost A. M.; Rinkevich, Baruch; Role\u010dkov\u00e1, Barbora; Ru\u0146\u0123is, Dainis; Schuerz, Laura; Segelbacher, Gernot; Kav\u010di\u010d Sonnenschein, Katja; Stefanovic, Milomir; Thurfjell, Henrik; Tr\u00e4ger, Sabrina; Tsvetkov, Ivaylo N.; Velickovic, Nevena; Vergeer, Philippine; Vernesi, Cristiano; Vil\u00e0, Carles; Westergren, Marjana; Zachos, Frank E.; Guisan, Antoine; Bruford, Michael<\/b> (2024). Monitoring of species\u2019 genetic diversity in Europe varies greatly and overlooks potential climate change impacts. <i>Nature Ecology & Evolution 8(2)<\/i>: 267-281. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02260-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02260-0<\/a>","StandardTitle":"Monitoring of species\u2019 genetic diversity in Europe varies greatly and overlooks potential climate change impacts","AuthorsString":"Pearman, Peter B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":415731,"RR":"<b>Flynn, Kevin J.; Atkinson, Angus; Beardall, John; Berges, John A.; Boersma, Maarten; Brunet, Christophe; Calbet, Albert; Caron, Dave A.; Dam, Hans G.; Glibert, Patricia M.; Hansen, Per Juel; Jin, Peng; L\u00f8nborg, Christian; Mayor, Daniel J.; Menden-Deuer, Susanne; Mock, Thomas; Mulholland, Margaret R.; Needham, David M.; Polimene, Luca; Poulton, Alex J.; Robinson, Carol; Rokitta, Sebastian D.; Rost, Bj\u00f6rn; Saiz, Enric; Scanlan, David J.; Schmidt, Katrin; Sherr, Evelyn; Stoecker, Diane K.; Svensen, Camilla; Thiele, Stefan; Thingstad, Tron F.; V\u00e5ge, Selina<\/b> (2025). More realistic plankton simulation models will improve projections of ocean ecosystem responses to global change. <i>Nature Ecology & Evolution 9(9)<\/i>: 1562-1570. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02788-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02788-3<\/a>","StandardTitle":"More realistic plankton simulation models will improve projections of ocean ecosystem responses to global change","AuthorsString":"Flynn, Kevin J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396183,"RR":"<b>Guo, Z.; Benton, M.J.; Stubbs, T.L.; Chen, Z.-Q.<\/b> (2024). Morphological innovation did not drive diversification in Mesozoic\u2013Cenozoic brachiopods. <i>Nature Ecology & Evolution 8(10)<\/i>: 1948-1958. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02491-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02491-9<\/a>","StandardTitle":"Morphological innovation did not drive diversification in Mesozoic\u2013Cenozoic brachiopods","AuthorsString":"Guo, Z. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":350422,"RR":"<b>Novack-Gottshall, P.M.; Sultan, A.; Smith, N.S.; Purcell, J.; Hanson, K.E.; Lively, R.; Ranjha, I.; Collins, C.; Parker, R.; Sumrall, C.D.; Deline, B.<\/b> (2022). Morphological volatility precedes ecological innovation in early echinoderms. <i>Nature Ecology & Evolution 6(3)<\/i>: 263-272. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01656-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01656-0<\/a>","StandardTitle":"Morphological volatility precedes ecological innovation in early echinoderms","AuthorsString":"Novack-Gottshall, P.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":310819,"RR":"<b>Wang, K.; Shen, Y.; Yang, Y.; Gan, X.; Liu, G.; Hu, K.; Li, Y.; Gao, Z.; Zhu, L.; Yan, G.; Zhang, L.; Shan, X.; Yang, L.; Lu, S.; Zeng, H.; Pan, X.; Liu, C.; Yuan, Y.; Feng, C.; Xu, W.; Zhu, C.; Xiao, W.; Dong, Y.; Wang, W.; Qiu, Q.; He, S.<\/b> (2019). Morphology and genome of a snailfish from the Mariana Trench provide insights into deep-sea adaptation. <i>Nature Ecology & Evolution 3(5)<\/i>: 823-833. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0864-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0864-8<\/a>","StandardTitle":"Morphology and genome of a snailfish from the Mariana Trench provide insights into deep-sea adaptation","AuthorsString":"Wang, K. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":311923,"RR":"<b>Lowery, C.M.; Fraass, A.J.<\/b> (2019). Morphospace expansion paces taxonomic diversification after end Cretaceous mass extinction. <i>Nature Ecology & Evolution 3(6)<\/i>: 900-904. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0835-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0835-0<\/a>","StandardTitle":"Morphospace expansion paces taxonomic diversification after end Cretaceous mass extinction","AuthorsString":"Lowery, C.M.; Fraass, A.J.","BibLvlCode":"AS"},{"BRefID":391163,"RR":"<b>Sinclair, James S.; Welti, Ellen A. R.; Altermatt, Florian; \u00c1lvarez-Cabria, Mario; Aroviita, Jukka; Baker, Nathan J.; Bare\u0161ov\u00e1, Libu\u0161e; Barqu\u00edn, Jos\u00e9; Bonacina, Luca; Bonada, N\u00faria; Ca\u00f1edo-Arg\u00fcelles, Miguel; Csabai, Zolt\u00e1n; de Eyto, Elvira; Dohet, Alain; D\u00f6rflinger, Gerald; Eriksen, Tor E.; Evtimova, Vesela; Feio, Maria J.; Ferr\u00e9ol, Martial; Floury, Mathieu; Forio, Marie Anne Eurie; Fornaroli, Riccardo; Goethals, Peter L. M.; Heino, Jani; Hering, Daniel; Huttunen, Kaisa-Leena; J\u00e4hnig, Sonja C.; Johnson, Richard K.; Kuglerov\u00e1, Lenka; Kupilas, Benjamin; L\u2019Hoste, Lionel; Larra\u00f1aga, Aitor; Leitner, Patrick; Lorenz, Armin W.; McKie, Brendan G.; Muotka, Timo; Osad\u010daja, Diana; Paavola, Riku; Palinauskas, Vaidas; Pa\u0159il, Petr; Pilotto, Francesca; Pol\u00e1\u0161ek, Marek; Rasmussen, Jes J.; Sch\u00e4fer, Ralf B.; Schmidt-Kloiber, Astrid; Scotti, Alberto; Skuja, Agnija; Straka, Michal; Stubbington, Rachel; Timm, Henn; Tyufekchieva, Violeta; Tziortzis, Iakovos; Vannevel, Rudy; V\u00e1rb\u00edr\u00f3, G\u00e1bor; Velle, Gaute; Verdonschot, Ralf C. M.; Vray, Sarah; Haase, Peter<\/b> (2024). Multi-decadal improvements in the ecological quality of European rivers are not consistently reflected in biodiversity metrics. <i>Nature Ecology & Evolution 8(3)<\/i>: 430-441. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02305-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02305-4<\/a>","StandardTitle":"Multi-decadal improvements in the ecological quality of European rivers are not consistently reflected in biodiversity metrics","AuthorsString":"Sinclair, James S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396649,"RR":"<b>Sampaio, E.; Sridhar, V.H.; Francisco, F.A.; Nagy, M.; Sacchi, A.; Strandburg-Peshkin, A.; N\u00fchrenberg, P.; Rosa, R.; Couzin, I.D.; Gingins, S.<\/b> (2024). Multidimensional social influence drives leadership and composition-dependent success in octopus\u2013fish hunting groups. <i>Nature Ecology & Evolution 8(11)<\/i>: 2072-2084. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02525-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02525-2<\/a>","StandardTitle":"Multidimensional social influence drives leadership and composition-dependent success in octopus\u2013fish hunting groups","AuthorsString":"Sampaio, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":365446,"RR":"(2023). Multiple ocean threats. <i>Nature Ecology & Evolution 7(6)<\/i>: 783. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02099-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02099-5<\/a>","StandardTitle":"Multiple ocean threats","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":320659,"RR":"<b>Dakos, V.<\/b> (2019). Nature\u2019s dynamical complexity. <i>Nature Ecology & Evolution 4(1)<\/i>: 12-13. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1077-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1077-x<\/a>","StandardTitle":"Nature\u2019s dynamical complexity","AuthorsString":"Dakos, V.","BibLvlCode":"AS"},{"BRefID":392286,"RR":"<b>Boivin, N.; Braje, T.; Rick, T.<\/b> (2024). New opportunities emerge as the Anthropocene epoch vote falls short. <i>Nature Ecology & Evolution 8(5)<\/i>: 844-845. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02392-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02392-x<\/a>","StandardTitle":"New opportunities emerge as the Anthropocene epoch vote falls short","AuthorsString":"Boivin, N.; Braje, T.; Rick, T.","BibLvlCode":"AS"},{"BRefID":393132,"RR":"<b>Nogu\u00e9s-Bravo, D.<\/b> (2024). Niches beyond borders. <i>Nature Ecology & Evolution 8(7)<\/i>: 1210-1211. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02416-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02416-6<\/a>","StandardTitle":"Niches beyond borders","AuthorsString":"Nogu\u00e9s-Bravo, D.","BibLvlCode":"AS"},{"BRefID":348518,"RR":"<b>Terry, J.C.D.; O\u2019Sullivan, J.D.; Rossberg, A.G.<\/b> (2022). No pervasive relationship between species size and local abundance trends. <i>Nature Ecology & Evolution 6<\/i>: 140-144. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01624-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01624-8<\/a>","StandardTitle":"No pervasive relationship between species size and local abundance trends","AuthorsString":"Terry, J.C.D.; O\u2019Sullivan, J.D.; Rossberg, A.G.","BibLvlCode":"AS"},{"BRefID":311924,"RR":"<b>Cenci, S.; Saavedra, S.<\/b> (2019). Non-parametric estimation of the structural stability of non-equilibrium community dynamics. <i>Nature Ecology & Evolution 3(6)<\/i>: 912-918. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0879-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0879-1<\/a>","StandardTitle":"Non-parametric estimation of the structural stability of non-equilibrium community dynamics","AuthorsString":"Cenci, S.; Saavedra, S.","BibLvlCode":"AS"},{"BRefID":320660,"RR":"<b>Clark, T.J.; Luis, A.D.<\/b> (2019). Nonlinear population dynamics are ubiquitous in animals. <i>Nature Ecology & Evolution 4(1)<\/i>: 75-81. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1052-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1052-6<\/a>","StandardTitle":"Nonlinear population dynamics are ubiquitous in animals","AuthorsString":"Clark, T.J.; Luis, A.D.","BibLvlCode":"AS"},{"BRefID":348944,"RR":"<b>Turner, M.<\/b> (2022). Ocean blooms. <i>Nature Ecology & Evolution 6(1)<\/i>: 12-12. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01610-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01610-0<\/a>","StandardTitle":"Ocean blooms","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":338968,"RR":"<b>Belhabib, D.<\/b> (2021). Ocean science and advocacy work better when decolonized. <i>Nature Ecology & Evolution 5(6)<\/i>: 709-710. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01477-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01477-1<\/a>","StandardTitle":"Ocean science and advocacy work better when decolonized","AuthorsString":"Belhabib, D.","BibLvlCode":"AS"},{"BRefID":320662,"RR":"<b>Jorda, G.; Marb\u00e0, N.; Bennett, S.; Santana-Garcon, J.; Agusti, S.; Duarte, C. M.<\/b> (2020). Ocean warming compresses the three-dimensional habitat of marine life. <i>Nature Ecology & Evolution 4(1)<\/i>: 109-114. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1058-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1058-0<\/a>","StandardTitle":"Ocean warming compresses the three-dimensional habitat of marine life","AuthorsString":"Jorda, G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364392,"RR":"<b>Domingues, V.<\/b> (2023). Old fish debate settled. <i>Nature Ecology & Evolution 7(5)<\/i>: 644. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02016-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02016-w<\/a>","StandardTitle":"Old fish debate settled","AuthorsString":"Domingues, V.","BibLvlCode":"AS"},{"BRefID":327888,"RR":"<b>Fang, B.; Kemppainen, P.; Momigliano, P.; Feng, X.; Meril\u00e4, J.<\/b> (2020). On the causes of geographically heterogeneous parallel evolution in sticklebacks. <i>Nature Ecology & Evolution 4(8)<\/i>: 1105-1115. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1222-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1222-6<\/a>","StandardTitle":"On the causes of geographically heterogeneous parallel evolution in sticklebacks","AuthorsString":"Fang, B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":435817,"RR":"<b>Barrera-Redondo, Josu\u00e9; Lipinska, Agnieszka P.; Liu, Pengfei; Dinatale, Erica; Cossard, Guillaume; Bogaert, Kenny; Hoshino, Masakazu; Craig, Rory J.; Avia, Komlan; Leiria, Goncalo; Avdievich, Elena; Liesner, Daniel; Luthringer, R\u00e9my; Godfroy, Olivier; Heesch, Svenja; Nehr, Zofia; Brillet-Gu\u00e9guen, Loraine; Peters, Akira F.; Hoarau, Galice; Pearson, Gareth; Aury, Jean-Marc; Wincker, Patrick; Denoeud, France; Cock, J. Mark; Haas, Fabian B.; Coelho, Susana M.<\/b> (2025). Origin and evolutionary trajectories of brown algal sex chromosomes. <i>Nature Ecology & Evolution 9(11)<\/i>: 2127-2144. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02838-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02838-w<\/a>","StandardTitle":"Origin and evolutionary trajectories of brown algal sex chromosomes","AuthorsString":"Barrera-Redondo, Josu\u00e9 <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":406596,"RR":"<b>Li, Y.; Hu, M.; Zhang, Z.; Wu, B.; Zheng, J.; Zhang, F.; Hao, J.; Xue, T.; Li, Z.; Zhu, C.; Liu, Y.; Zhao, L.; Xu, W.; Xin, P.; Feng, C.; Wang, W.; Zhao, Y.; Qiu, Q.; Wang, K.<\/b> (2025). Origin and stepwise evolution of vertebrate lungs. <i>Nature Ecology & Evolution 9(4)<\/i>: 672-691. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02642-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02642-6<\/a>","StandardTitle":"Origin and stepwise evolution of vertebrate lungs","AuthorsString":"Li, Y. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":361151,"RR":"<b>Iwama, R.E.; Moran, Y.<\/b> (2023). Origins and diversification of animal innate immune responses against viral infections. <i>Nature Ecology & Evolution 7(2)<\/i>: 182\u2013193. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01951-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01951-4<\/a>","StandardTitle":"Origins and diversification of animal innate immune responses against viral infections","AuthorsString":"Iwama, R.E.; Moran, Y.","BibLvlCode":"AS"},{"BRefID":286008,"RR":"<b>Stewart Lowndes, J.S.; Best, B.D.; Scarborough, C.; Afflerbach, J.C.; Frazier, M.R.; O\u2019Hara, C.C.; Jiang, N.; Halpern, B.S.<\/b> (2017). Our path to better science in less time using open data science tools. <i>Nature Ecology & Evolution 1(6)<\/i>: 7 pp. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0160\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0160<\/a>","StandardTitle":"Our path to better science in less time using open data science tools","AuthorsString":"Stewart Lowndes, J.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330702,"RR":"<b>Quattrini, A.M.; Rodriguez, E.; Faircloth, B.C.; Cowman, P.F.; Brugler, M.R.; Farfan, G.A.; Hellberg, M.E.; Kitahara, M.V.; Morrison, C.L.; Paz-Garc\u00eda, D.A.; Reimer, J.D.; McFadden, C.S.<\/b> (2020). Palaeoclimate ocean conditions shaped the evolution of corals and their skeletons through deep time. <i>Nature Ecology & Evolution 4(11)<\/i>: 1531-1538. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01291-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01291-1<\/a>","StandardTitle":"Palaeoclimate ocean conditions shaped the evolution of corals and their skeletons through deep time","AuthorsString":"Quattrini, A.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351865,"RR":"<b>Coelho-Junior, M.G.; Diele-Viegas, L.M.; Calheiros, D.F.; Silva Neto, E.C.; Fearnside, P.M.; Ferrante, L.<\/b> (2022). Pantanal port licence would threaten the world\u2019s largest tropical wetland. <i>Nature Ecology & Evolution 6(5)<\/i>: 484-485. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01724-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01724-z<\/a>","StandardTitle":"Pantanal port licence would threaten the world\u2019s largest tropical wetland","AuthorsString":"Coelho-Junior, M.G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396179,"RR":"<b>Hoshino, M.; Cossard, G.; Haas, F.B.; Kane, E.I.; Kogame, K.; Jomori, T.; Wakimoto, T.; Glemin, S.; Coelho, S.M.<\/b> (2024). Parallel loss of sexual reproduction in field populations of a brown alga sheds light on the mechanisms underlying the emergence of asexuality. <i>Nature Ecology & Evolution 8(10)<\/i>: 1916-1932. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02490-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02490-w<\/a>","StandardTitle":"Parallel loss of sexual reproduction in field populations of a brown alga sheds light on the mechanisms underlying the emergence of asexuality","AuthorsString":"Hoshino, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391165,"RR":"<b>Danet, A.; Giam, X.; Olden, J.D.; Comte, L.<\/b> (2024). Past and recent anthropogenic pressures drive rapid changes in riverine fish communities. <i>Nature Ecology & Evolution 8(3)<\/i>: 442-453. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02271-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02271-x<\/a>","StandardTitle":"Past and recent anthropogenic pressures drive rapid changes in riverine fish communities","AuthorsString":"Danet, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359132,"RR":"<b>Ellis, Samuel; Johnstone, Rufus A.; Cant, Michael A.; Franks, Daniel W.; Weiss, Michael N.; Alberts, Susan C.; Balcomb, Kenneth C.; Benton, Claire H.; Brent, Lauren J. N.; Crockford, Catherine; Davidian, Eve; Delahay, Richard J.; Ellifrit, David K.; H\u00f6ner, Oliver P.; Meniri, Magali; McDonald, Robbie A.; Nichols, Hazel J.; Thompson, Faye J.; Vigilant, Linda; Wittig, Roman M.; Croft, Darren P.<\/b> (2022). Patterns and consequences of age-linked change in local relatedness in animal societies. <i>Nature Ecology & Evolution 6(11)<\/i>: 1766-1776. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01872-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01872-2<\/a>","StandardTitle":"Patterns and consequences of age-linked change in local relatedness in animal societies","AuthorsString":"Ellis, Samuel <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":365448,"RR":"<b>Wilson, S.M.; Moore, J.W.; Ward, E.J.; Kinsel, C.W.; Anderson, J.H.; Buehrens, T.W.; Carr-Harris, C.N.; Cochran, P.C.; Davies, T.D.; Downen, M.R.; Godbout, L.; Lisi, P.J.; Litz, M.N.C.; Patterson, D.A.; Selbie, D.T.; Sloat, M.R.; Suring, E.J.; Tattam, I.A.; Wyatt, G.J.<\/b> (2023). Phenological shifts and mismatch with marine productivity vary among Pacific salmon species and populations. <i>Nature Ecology & Evolution 7(6)<\/i>: 852-861. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02057-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02057-1<\/a>","StandardTitle":"Phenological shifts and mismatch with marine productivity vary among Pacific salmon species and populations","AuthorsString":"Wilson, S.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396182,"RR":"<b>Loughnan, D.; Joly, S.; Legault, G.; Kharouba, H.M.; Betancourt, M.; Wolkovich, E.M.<\/b> (2024). Phenology varies with phylogeny but not by trophic level with climate change. <i>Nature Ecology & Evolution 8(10)<\/i>: 1889-1896. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02499-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02499-1<\/a>","StandardTitle":"Phenology varies with phylogeny but not by trophic level with climate change","AuthorsString":"Loughnan, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":321488,"RR":"<b>Rescan, M.; Grulois, D.; Ortega-Aboud, E.; Chevin, L.M.<\/b> (2020). Phenotypic memory drives population growth and extinction risk in a noisy environment. <i>Nature Ecology & Evolution 4(2)<\/i>: 193-201. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1089-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1089-6<\/a>","StandardTitle":"Phenotypic memory drives population growth and extinction risk in a noisy environment","AuthorsString":"Rescan, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359573,"RR":"<b>Martijn, J.; Vosseberg, J.; Guy, L.; Offre, P.; Ettema, T.J.G.<\/b> (2022). Phylogenetic affiliation of mitochondria with Alpha-II and Rickettsiales is an artefact. <i>Nature Ecology & Evolution 6<\/i>: 1829-1831. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01871-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01871-3<\/a>","StandardTitle":"Phylogenetic affiliation of mitochondria with Alpha-II and Rickettsiales is an artefact","AuthorsString":"Martijn, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":345673,"RR":"<b>Goymer, P.<\/b> (2021). Phytoplankton resilience. <i>Nature Ecology & Evolution 5(10)<\/i>: 1330-1330. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01558-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01558-1<\/a>","StandardTitle":"Phytoplankton resilience","AuthorsString":"Goymer, P.","BibLvlCode":"AS"},{"BRefID":297160,"RR":"<b>Nash, K.L.; Cvitanovic, C.; Fulton, E.A.; Halpern, B.S.; Milner-Gulland, E.J.; Watson, R.A.; Blanchard, J.L.<\/b> (2017). Planetary boundaries for a blue planet. <i>Nature Ecology & Evolution 1(11)<\/i>: 1625-1634. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0319-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0319-z<\/a>","StandardTitle":"Planetary boundaries for a blue planet","AuthorsString":"Nash, K.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359782,"RR":"<b>Strack, A.; Jonkers, L.; Rillo, M.C.; Hillebrand, H.; Kucera, M.<\/b> (2022). Plankton response to global warming is characterized by non-uniform shifts in assemblage composition since the last ice age. <i>Nature Ecology & Evolution 6(12)<\/i>: 1871-1880. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01888-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01888-8<\/a>","StandardTitle":"Plankton response to global warming is characterized by non-uniform shifts in assemblage composition since the last ice age","AuthorsString":"Strack, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":407897,"RR":"<b>Haney, J.; Rochman, C.M.<\/b> (2025). Plastic pollution has the potential to alter ecological and evolutionary processes in aquatic ecosystems. <i>Nature Ecology & Evolution 9(5)<\/i>: 762\u2013768. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02678-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02678-8<\/a>","StandardTitle":"Plastic pollution has the potential to alter ecological and evolutionary processes in aquatic ecosystems","AuthorsString":"Haney, J.; Rochman, C.M.","BibLvlCode":"AS"},{"BRefID":404810,"RR":"<b>Siddiq, M.A.; Duveau, F.; Wittkopp, P.J.<\/b> (2024). Plasticity and environment-specific relationships between gene expression and fitness in <i>Saccharomyces cerevisiae<\/i>. <i>Nature Ecology & Evolution 8(12)<\/i>: 2184-2194. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02582-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02582-7<\/a>","StandardTitle":"Plasticity and environment-specific relationships between gene expression and fitness in <i>Saccharomyces cerevisiae<\/i>","AuthorsString":"Siddiq, M.A.; Duveau, F.; Wittkopp, P.J.","BibLvlCode":"AS"},{"BRefID":353946,"RR":"<b>Blaby-Haas, C.E.<\/b> (2022). Polar algae flaunt their zinc assets. <i>Nature Ecology & Evolution 6(7)<\/i>: 851-852. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01721-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01721-2<\/a>","StandardTitle":"Polar algae flaunt their zinc assets","AuthorsString":"Blaby-Haas, C.E.","BibLvlCode":"AS"},{"BRefID":283411,"RR":"<b>Dafforn, K.<\/b> (2017). Pollutants plumb the depths. <i>Nature Ecology & Evolution 1<\/i>: 0075. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-017-0075\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-017-0075<\/a>","StandardTitle":"Pollutants plumb the depths","AuthorsString":"Dafforn, K.","BibLvlCode":"AS"},{"BRefID":282835,"RR":"<b>Sigsgaard, E.E.<\/b> (2016). Population characteristics of a large whale shark aggregation inferred from seawater environmental DNA. <i>Nature Ecology & Evolution 1(1)<\/i>: 0004. <a href=\"http:\/\/dx.doi.org\/10.1038\/s41559-016-0004\" target=\"_blank\">http:\/\/dx.doi.org\/10.1038\/s41559-016-0004<\/a>","StandardTitle":"Population characteristics of a large whale shark aggregation inferred from seawater environmental DNA","AuthorsString":"Sigsgaard, E.E.","BibLvlCode":"AS"},{"BRefID":352696,"RR":"<b>Boyd, P.W.; Bach, L.T.; Hurd, C.L.; Paine, E.; Raven, J.A.; Tamsitt, V.<\/b> (2022). Potential negative effects of ocean afforestation on offshore ecosystems. <i>Nature Ecology & Evolution 6(6)<\/i>: 675-683. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01722-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01722-1<\/a>","StandardTitle":"Potential negative effects of ocean afforestation on offshore ecosystems","AuthorsString":"Boyd, P.W. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":348072,"RR":"<b>Turner, M.<\/b> (2021). Predation drives diversity. <i>Nature Ecology & Evolution 5(12)<\/i>: 1569-1569. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01598-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01598-7<\/a>","StandardTitle":"Predation drives diversity","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":311925,"RR":"<b>Brose, U.; Archambault, P.; Barnes, A.D.; Bersier, L.-F.; Boy, T.; Canning-Clode, J.; Conti, E.; Dias, M.; Digel, C.; Dissanayake, A.; Flores, A.A.V.; Fussmann, K.; Gauzens, B.; Gray, C.; H\u00e4ussler, J.; Hirt, M.R.; Jacob, U.; Jochum, M.; K\u00e9fi, S.; McLaughlin, O.; MacPherson, M.M.; Latz, E.; Layer-Dobra, K.; Legagneux, P.; Li, Y.; Madeira, C.; Martinez, N.D.; Mendon\u00e7a, V.; Mulder, C.; Navarrete, S.A.; O\u2019Gorman, E.J.; Ott, D.; Paula, J.; Perkins, D.; Piechnik, D.; Pokrovsky, I.; Raffaelli, D.; Rall, B.C.; Rosenbaum, B.; Ryser, R.; Silva, A.; Sohlstr\u00f6m, E.H.; Sokolova, N.; Thompson, M.S.A.; Vermandele, F.; Vinagre, C.; Wang, S.; Wefer, J.M.; Williams, R.J.; Wieters, E.A.; Woodward, G.; Iles, A.C.<\/b> (2019). Predator traits determine food-web architecture across ecosystems. <i>Nature Ecology & Evolution 3(6)<\/i>: 919-927. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0899-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0899-x<\/a>","StandardTitle":"Predator traits determine food-web architecture across ecosystems","AuthorsString":"Brose, U. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":408325,"RR":"<b>Olson, L.J.<\/b> (2025). Predicting invasion costs from sparse data. <i>Nature Ecology & Evolution 9(6)<\/i>: 894-895. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02700-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02700-z<\/a>","StandardTitle":"Predicting invasion costs from sparse data","AuthorsString":"Olson, L.J.","BibLvlCode":"AS"},{"BRefID":367916,"RR":"<b>Lubchenco, J.; Camp, E.F.; Vargas, C.A.; Belhabib, D.; Anna, Z.; Amon, D.J.; Metaxas, A.; Harden-Davies, H.<\/b> (2023). Priorities for progress towards Sustainable Development Goal 14 \u2018Life below water\u2019. <i>Nature Ecology & Evolution 7(10)<\/i>: 1564-1569. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02208-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02208-4<\/a>","StandardTitle":"Priorities for progress towards Sustainable Development Goal 14 \u2018Life below water\u2019","AuthorsString":"Lubchenco, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":304463,"RR":"<b>Robinson, J.P.W.; Wilson, S. K.; Robinson, J.; Gerry, C.; Lucas, J.; Assan, C.; Govinden, R.; Jennings, S.; Graham, A. J.<\/b> (2019). Productive instability of coral reef fisheries after climate-driven regime shifts. <i>Nature Ecology & Evolution 3<\/i>: 183-190. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-018-0715-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-018-0715-z<\/a>","StandardTitle":"Productive instability of coral reef fisheries after climate-driven regime shifts","AuthorsString":"Robinson, J.P.W. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":404805,"RR":"<b>Affinito, F.; Williams, J.M.; Campbell, J.E.; Londono, M.C.; Gonzalez, A.<\/b> (2024). Progress in developing and operationalizing the Monitoring Framework of the Global Biodiversity Framework. <i>Nature Ecology & Evolution 8(12)<\/i>: 2163-2171. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02566-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02566-7<\/a>","StandardTitle":"Progress in developing and operationalizing the Monitoring Framework of the Global Biodiversity Framework","AuthorsString":"Affinito, F. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":354965,"RR":"<b>Ghezelayagh, A.; Harrington, R.C.; Burress, E.D.; Campbell, M.A.; Buckner, J.C.; Chakrabarty, P.; Glass, J.R.; McCraney, W.T.; Unmack, P.J.; Thacker, C.E.; Alfaro, M.E.; Friedman, S.T.; Ludt, W.B.; Cowman, P.F.; Friedman, M.; Price, S.A.; Dornburg, A.; Faircloth, B.C.; Wainwright, P.C.; Near, T.J.<\/b> (2022). Prolonged morphological expansion of spiny-rayed fishes following the end-Cretaceous. <i>Nature Ecology & Evolution 6(8)<\/i>: 1211-1220. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01801-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01801-3<\/a>","StandardTitle":"Prolonged morphological expansion of spiny-rayed fishes following the end-Cretaceous","AuthorsString":"Ghezelayagh, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":320664,"RR":"<b>Jordan, S.F.; Rammu, H.; Zheludev, I.N.; Hartley, A.M.; Mar\u00e9chal, A.; Lane, N.<\/b> (2019). Promotion of protocell self-assembly from mixed amphiphiles at the origin of life. <i>Nature Ecology & Evolution 3(12)<\/i>: 1705-1714. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-1015-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-1015-y<\/a>","StandardTitle":"Promotion of protocell self-assembly from mixed amphiphiles at the origin of life","AuthorsString":"Jordan, S.F. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":407996,"RR":"<b>Williams, G.J.<\/b> (2025). Protecting existing coral reefs must be our priority. <i>Nature Ecology & Evolution 9(5)<\/i>: 754-755. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02673-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02673-z<\/a>","StandardTitle":"Protecting existing coral reefs must be our priority","AuthorsString":"Williams, G.J.","BibLvlCode":"AS"},{"BRefID":360372,"RR":"<b>Turner, M.<\/b> (2023). Protection for migratory species. <i>Nature Ecology & Evolution 7(1)<\/i>: 7. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01966-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01966-x<\/a>","StandardTitle":"Protection for migratory species","AuthorsString":"Turner, M.","BibLvlCode":"AS"},{"BRefID":437128,"RR":"<b>Condie, S.A.; Barneche, D.R.; Currey-Randall, L.M.; Kroon, F.J.; Porobic, J.; Ceccarelli, D.M.<\/b> (2026). Protection of coral reef fish delivers ecosystem-critical biocontrol of coral-eating starfish across the Great Barrier Reef. <i>Nature Ecology & Evolution 10(1)<\/i>: 117-127. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02916-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02916-z<\/a>","StandardTitle":"Protection of coral reef fish delivers ecosystem-critical biocontrol of coral-eating starfish across the Great Barrier Reef","AuthorsString":"Condie, S.A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":419025,"RR":"<b>Richardson, L.E.; Williams, G.J.; Dunne, A.; Jackson-Bu\u00e9, T.; Green, J.A.M.; Morrison, T.H.; Fox, M.D.<\/b> (2025). Quantifying coral reef\u2013ocean interactions is critical for predicting reef futures under climate change. <i>Nature Ecology & Evolution 9(10)<\/i>: 1754-1756. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02839-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02839-9<\/a>","StandardTitle":"Quantifying coral reef\u2013ocean interactions is critical for predicting reef futures under climate change","AuthorsString":"Richardson, L.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":406052,"RR":"<b>Dee, L.E.; Miller, S.J.; Helmstedt, K.J.; Boersma, K.S.; Polasky, S.; Reich, P.B.<\/b> (2025). Quantifying disturbance effects on ecosystem services in a changing climate. <i>Nature Ecology & Evolution 9(3)<\/i>: 436-447. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02626-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02626-y<\/a>","StandardTitle":"Quantifying disturbance effects on ecosystem services in a changing climate","AuthorsString":"Dee, L.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":297167,"RR":"<b>Kimmerling, N.; Zuqert, O.; Amitai, G.; Gurevich, T.; Armoza-Zvuloni, R.; Kolesnikov, I.; Berenshtein, I.; Melamed, S.; Gilad, S.; Benjamin, S.; Rivlin, A.; Ohavia, M.; Paris, C.B.; Holzman, R.; Kiflawi, M.; Sorek, R.<\/b> (2017). Quantitative species-level ecology of reef fish larvae via metabarcoding. <i>Nature Ecology & Evolution 2(2)<\/i>: 306-316. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0413-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0413-2<\/a>","StandardTitle":"Quantitative species-level ecology of reef fish larvae via metabarcoding","AuthorsString":"Kimmerling, N. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":341565,"RR":"<b>Buschke, F.T.; Hagan, J.G.; Santini, L.; Coetzee, B.W.T.<\/b> (2021). Random population fluctuations bias the Living Planet Index. <i>Nature Ecology & Evolution 5(8)<\/i>: 1145-1152. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01494-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01494-0<\/a>","StandardTitle":"Random population fluctuations bias the Living Planet Index","AuthorsString":"Buschke, F.T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":383510,"RR":"<b>Chen, Y.; Kirwan, M.L.<\/b> (2024). Rapid greening in mangroves. <i>Nature Ecology & Evolution 8(2)<\/i>: 186-187. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02247-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02247-x<\/a>","StandardTitle":"Rapid greening in mangroves","AuthorsString":"Chen, Y.; Kirwan, M.L.","BibLvlCode":"AS"},{"BRefID":392288,"RR":"<b>Lenoir, J.; Comte, L.<\/b> (2024). Rapid range shifters show unexpected population dynamics. <i>Nature Ecology & Evolution 8(5)<\/i>: 850-851. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02354-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02354-3<\/a>","StandardTitle":"Rapid range shifters show unexpected population dynamics","AuthorsString":"Lenoir, J.; Comte, L.","BibLvlCode":"AS"},{"BRefID":359783,"RR":"<b>Davidson, P.L.; Guo, H.; Swart, J.S.; Massri, A.J.; Edgar, A.; Wang, L.; Berrio, A.; Devens, H.R.; Koop, D.; Cisternas, P.; Zhang, H.; Zhang, Y.; Byrne, M.; Fan, G.; Wray, G.A.<\/b> (2022). Recent reconfiguration of an ancient developmental gene regulatory network in <i>Heliocidaris<\/i> sea urchins. <i>Nature Ecology & Evolution 6(12)<\/i>: 1907-1920. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01906-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01906-9<\/a>","StandardTitle":"Recent reconfiguration of an ancient developmental gene regulatory network in <i>Heliocidaris<\/i> sea urchins","AuthorsString":"Davidson, P.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":324842,"RR":"<b>Buschke, F.; Brownlie, S.<\/b> (2020). Reduced ecological resilience jeopardizes zero loss of biodiversity using the mitigation hierarchy. <i>Nature Ecology & Evolution 4(6)<\/i>: 815-819. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1177-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1177-7<\/a>","StandardTitle":"Reduced ecological resilience jeopardizes zero loss of biodiversity using the mitigation hierarchy","AuthorsString":"Buschke, F.; Brownlie, S.","BibLvlCode":"AS"},{"BRefID":406049,"RR":"<b>Miller, E.C.; Faucher, R.; Hart, P.B.; Rinc\u00f3n-Sandoval, M.; Santaquiteria, A.; White, W.T.; Baldwin, C.C.; Miya, M.; Betancur-R, R.; Tornabene, L.; Evans, K.; Arcila, D.<\/b> (2024). Reduced evolutionary constraint accompanies ongoing radiation in deep-sea anglerfishes. <i>Nature Ecology & Evolution 9(3)<\/i>: 474-490. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02586-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02586-3<\/a>","StandardTitle":"Reduced evolutionary constraint accompanies ongoing radiation in deep-sea anglerfishes","AuthorsString":"Miller, E.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":347559,"RR":"<b>Simmons, B.I.; Blyth, P.S.A.; Blanchard, J.L.; Clegg, T.; Delmas, E.; Garnier, A.; Griffiths, C.A.; Jacob, U.; Pennekamp, F.; Petchey, O.L.; Poisot, T.; Webb, T.J.; Beckerman, A.P.<\/b> (2021). Refocusing multiple stressor research around the targets and scales of ecological impacts. <i>Nature Ecology & Evolution 5(11)<\/i>: 1478-1489. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01547-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01547-4<\/a>","StandardTitle":"Refocusing multiple stressor research around the targets and scales of ecological impacts","AuthorsString":"Simmons, B.I. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":393137,"RR":"<b>Meunier, Z.D.; Hacker, S.D.; Menge, B.A.<\/b> (2024). Regime shifts in rocky intertidal communities associated with a marine heatwave and disease outbreak. <i>Nature Ecology & Evolution 8(7)<\/i>: 1285-1297. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02425-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02425-5<\/a>","StandardTitle":"Regime shifts in rocky intertidal communities associated with a marine heatwave and disease outbreak","AuthorsString":"Meunier, Z.D.; Hacker, S.D.; Menge, B.A.","BibLvlCode":"AS"},{"BRefID":351408,"RR":"<b>Dietzel, A.; Bode, M.; Connolly, S.R.; Hughes, T.P.<\/b> (2022). Reply to: Conclusions of low extinction risk for most species of reef-building corals are premature. <i>Nature Ecology & Evolution 6(4)<\/i>: 359-360. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01660-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01660-y<\/a>","StandardTitle":"Reply to: Conclusions of low extinction risk for most species of reef-building corals are premature","AuthorsString":"Dietzel, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":316657,"RR":"<b>Craine, J.M.; Elmore, A.J.; Wang, L.; Boeckx, P.; Delzon?, S.; Fang, F.; Gray, A.; Guerrieri, R.; Gundale, M.J.; Hietz, P.; Nelson, D.M.; Peri, P.L.; Templer, P.; Werner, C.<\/b> (2019). Reply to: Data do not support large-scale oligotrophication of terrestrial ecosystems. <i>Nature Ecology & Evolution 3(9)<\/i>: 1287\u20131288. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0949-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0949-4<\/a>","StandardTitle":"Reply to: Data do not support large-scale oligotrophication of terrestrial ecosystems","AuthorsString":"Craine, J.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":332601,"RR":"<b>Danovaro, R.; Fanelli, E.; Aguzzi, J.; Billett, D.; Carugati, L.; Corinaldesi, C.; Dell\u2019Anno, A.; Gjerde, K.; Jamieson, A.J.; Kark, S.; McClain, C.; Levin, L.A.; Levin, N.; Ramirez-Llodra, E.; Ruhl, H.A.; Smith, C.R.; Snelgrove, P.V.R.; Thomsen, L.; Van Dover, C.L.; Yasuhara, M.<\/b> (2021). Reply to: Ecological variables for deep-ocean monitoring must include microbiota and meiofauna for effective conservation. <i>Nature Ecology & Evolution 5(1)<\/i>: 30-31. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01337-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01337-4<\/a>","StandardTitle":"Reply to: Ecological variables for deep-ocean monitoring must include microbiota and meiofauna for effective conservation","AuthorsString":"Danovaro, R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":321965,"RR":"<b>Anton, A.; Geraldi, N.R.; Lovelock, C.E.; Apostolaki, E.; Bennett, S.; Cebrian, J.; Krause-Jensen, D.; Marb\u00e0, N.; Martinetto, P.; Pandolfi, J.M.; Santana-Garcon, J.; Duarte, C.M.<\/b> (2020). Reply to: Indiscriminate data aggregation in ecological meta-analysis underestimates impacts of invasive species. <i>Nature Ecology & Evolution 4(3)<\/i>: 315-317. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1118-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1118-5<\/a>","StandardTitle":"Reply to: Indiscriminate data aggregation in ecological meta-analysis underestimates impacts of invasive species","AuthorsString":"Anton, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":404807,"RR":"<b>Saleh, Farid; Lustri, Lorenzo; Gueriau, Pierre; Potin, Ga\u00ebtan J.-M.; P\u00e9rez-Peris, Francesc; Laibl, Luk\u00e1\u0161; Jamart, Valentin; Vite, Antoine; Antcliffe, Jonathan B.; Daley, Allison C.; Nohejlov\u00e1, Martina; Dupichaud, Christophe; Sch\u00f6der, Sebastian; B\u00e9rard, Emilie; Lynch, Sin\u00e9ad; Drage, Harriet B.; Vaucher, Romain; Vidal, Muriel; Monceret, Eric; Monceret, Sylvie; Kundura, Jean-Paul; Kundura, Marie-H\u00e9l\u00e8ne; Gougeon, Romain; Lefebvre, Bertrand<\/b> (2024). Reply to: The Cabri\u00e8res Biota is not a Konservat-Lagerst\u00e4tte. <i>Nature Ecology & Evolution 8(12)<\/i>: 2175-2178. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02560-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02560-z<\/a>","StandardTitle":"Reply to: The Cabri\u00e8res Biota is not a Konservat-Lagerst\u00e4tte","AuthorsString":"Saleh, Farid <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":407997,"RR":"<b>Mul\u00e0, C.; Bradshaw, C.J.A.; Cabeza, M.; Manca, F.; Montano, S.; Strona, G.<\/b> (2025). Restoration cannot be scaled up globally to save reefs from loss and degradation. <i>Nature Ecology & Evolution 9(5)<\/i>: 822-832. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02667-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02667-x<\/a>","StandardTitle":"Restoration cannot be scaled up globally to save reefs from loss and degradation","AuthorsString":"Mul\u00e0, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391787,"RR":"<b>Nicholson, Emily; Andrade, Angela; Brooks, Thomas M.; Driver, Amanda; Ferrer-Paris, Jos\u00e9 R.; Grantham, Hedley; Gudka, Mishal; Keith, David A.; Kontula, Tytti; Lindgaard, Arild; Londono-Murcia, Maria Cecilia; Murray, Nicholas; Raunio, Anne; Rowland, Jessica A.; Sievers, Michael; Skowno, Andrew L.; Stevenson, Simone L.; Valderrabano, Marcos; Vernon, Clare M.; Zager, Irene; Obura, David<\/b> (2024). Roles of the Red List of Ecosystems in the Kunming-Montreal Global Biodiversity Framework. <i>Nature Ecology & Evolution 8(4)<\/i>: 614-621. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02320-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02320-5<\/a>","StandardTitle":"Roles of the Red List of Ecosystems in the Kunming-Montreal Global Biodiversity Framework","AuthorsString":"Nicholson, Emily <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":436577,"RR":"<b>Harold, S.; Blanco, S.<\/b> (2025). Safeguarding long-term research in ecology and evolution. <i>Nature Ecology & Evolution 9(12)<\/i>: 2178-2180. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02897-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02897-z<\/a>","StandardTitle":"Safeguarding long-term research in ecology and evolution","AuthorsString":"Harold, S.; Blanco, S.","BibLvlCode":"AS"},{"BRefID":359780,"RR":"<b>Mellin, C.; Hicks, C.C.; Fordham, D.A.; Golden, C.D.; Kjellevold, M.; MacNeil, M.A.; Maire, E.; Mangubhai, S.; Mouillot, D.; Nash, K.L.; Omukoto, J.O.; Robinson, J.P.W.; Stuart-Smith, R.D.; Zamborain-Mason, J.; Edgar, G.J.; Graham, N.A.J.<\/b> (2022). Safeguarding nutrients from coral reefs under climate change. <i>Nature Ecology & Evolution 6(12)<\/i>: 1808-1817. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01878-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01878-w<\/a>","StandardTitle":"Safeguarding nutrients from coral reefs under climate change","AuthorsString":"Mellin, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":345676,"RR":"<b>Nicholson, E.; Watermeyer, K.E.; Rowland, J.A.; Sato, C.F.; Stevenson, S.L.; Andrade, A.; Brooks, T.M; Burgess, N.D.; Cheng, S.-T.; Grantham, H.S.; Hill, S.L.; Keith, D.A.; Maron, M.; Metzke, D.; Murray, N.J.; Nelson, C.R.; Obura, D.; Plumptre, A.; Skowno, A.L.; Watson, J.E.M.<\/b> (2021). Scientific foundations for an ecosystem goal, milestones and indicators for the post-2020 global biodiversity framework. <i>Nature Ecology & Evolution 5(10)<\/i>: 1338-1349. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01538-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01538-5<\/a>","StandardTitle":"Scientific foundations for an ecosystem goal, milestones and indicators for the post-2020 global biodiversity framework","AuthorsString":"Nicholson, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":347553,"RR":"<b>Rillig, M.C.; Lehmann, A.; Bank, M.S.; Gould, K.A.; Heekeren, H.R.<\/b> (2021). Scientists need to better communicate the links between pandemics and global environmental change. <i>Nature Ecology & Evolution 5(11)<\/i>: 1466-1467. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01552-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01552-7<\/a>","StandardTitle":"Scientists need to better communicate the links between pandemics and global environmental change","AuthorsString":"Rillig, M.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":363722,"RR":"(2023). Sea change. <i>Nature Ecology & Evolution 7(4)<\/i>: 477. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02042-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02042-8<\/a>","StandardTitle":"Sea change","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":415723,"RR":"<b>Lafferty, K.D.<\/b> (2025). Sea star wasting disease mystery finally solved. <i>Nature Ecology & Evolution 9(9)<\/i>: 1552-1553. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02789-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02789-2<\/a>","StandardTitle":"Sea star wasting disease mystery finally solved","AuthorsString":"Lafferty, K.D.","BibLvlCode":"AS"},{"BRefID":407930,"RR":"(2025). Seafood for thought. <i>Nature Ecology & Evolution 9(4)<\/i>: 527-528. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02684-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02684-w<\/a>","StandardTitle":"Seafood for thought","AuthorsString":null,"BibLvlCode":"AS"},{"BRefID":391786,"RR":"<b>Longo, G.O.<\/b> (2024). Seagrass vulnerability to tropicalization-induced herbivory. <i>Nature Ecology & Evolution 8(4)<\/i>: 600-601. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02345-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02345-4<\/a>","StandardTitle":"Seagrass vulnerability to tropicalization-induced herbivory","AuthorsString":"Longo, G.O.","BibLvlCode":"AS"},{"BRefID":333773,"RR":"<b>Veedin Rajan, V.B.; H\u00e4fker, N.S.; Arboleda, E.; Poehn, B.; Gossenreiter, T.; Gerrard, E.; Hofbauer, M.; M\u00fchlestein, C.; Bileck, A.; Gerner, C.; Ribera d\u2019Alcal\u00e0, M.; Buia, M.C.; Hartl, M.; Lucas, R.J.; Tessmar-Raible, K.<\/b> (2021). Seasonal variation in UVA light drives hormonal and behavioural changes in a marine annelid via a ciliary opsin. <i>Nature Ecology & Evolution 5(2)<\/i>: 204-218. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01356-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01356-1<\/a>","StandardTitle":"Seasonal variation in UVA light drives hormonal and behavioural changes in a marine annelid via a ciliary opsin","AuthorsString":"Veedin Rajan, V.B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396650,"RR":"<b>Hoffmann, S.<\/b> (2024). Shared leadership beneath the waves. <i>Nature Ecology & Evolution 8(11)<\/i>: 2010-2012. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02534-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02534-1<\/a>","StandardTitle":"Shared leadership beneath the waves","AuthorsString":"Hoffmann, S.","BibLvlCode":"AS"},{"BRefID":407998,"RR":"<b>Helmbrecht, V.; Reichelt, R.; Grohmann, D.; Orsi, W.D.<\/b> (2025). Simulated early Earth geochemistry fuels a hydrogen-dependent primordial metabolism. <i>Nature Ecology & Evolution 9(5)<\/i>: 769-778. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02676-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02676-w<\/a>","StandardTitle":"Simulated early Earth geochemistry fuels a hydrogen-dependent primordial metabolism","AuthorsString":"Helmbrecht, V. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":350424,"RR":"<b>Mu\u00f1oz-G\u00f3mez, S.A.; Susko, E.; Williamson, K.; Eme, L.; Slamovits, C.H.; Moreira, D.; L\u00f3pez-Garc\u00eca, P.; Roger, A.J.<\/b> (2022). Site-and-branch-heterogeneous analyses of an expanded dataset favour mitochondria as sister to known Alphaproteobacteria. <i>Nature Ecology & Evolution 6(3)<\/i>: 253-262. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01638-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01638-2<\/a>","StandardTitle":"Site-and-branch-heterogeneous analyses of an expanded dataset favour mitochondria as sister to known Alphaproteobacteria","AuthorsString":"Mu\u00f1oz-G\u00f3mez, S.A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":310811,"RR":"<b>Bingham, H.C.; Juffe-Bignoli, D.; Lewis, E.; Macsharry, B.; Burgess, N.D.; Visconti, P.; Deguignet, M.; Misrachi, M.; Walpole, M.; Stewart, J.L.; Brooks, T.M; Kingston, N.<\/b> (2019). Sixty years of tracking conservation progress using the World Database on Protected Areas. <i>Nature Ecology & Evolution 3(5)<\/i>: 737-743. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0869-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0869-3<\/a>","StandardTitle":"Sixty years of tracking conservation progress using the World Database on Protected Areas","AuthorsString":"Bingham, H.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330006,"RR":"<b>Kr\u00f6ger, B.; Penny, A.<\/b> (2020). Skeletal marine animal biodiversity is built by families with long macroevolutionary lag times. <i>Nature Ecology & Evolution 4(10)<\/i>: 1410-1415. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1265-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1265-8<\/a>","StandardTitle":"Skeletal marine animal biodiversity is built by families with long macroevolutionary lag times","AuthorsString":"Kr\u00f6ger, B.; Penny, A.","BibLvlCode":"AS"},{"BRefID":349714,"RR":"<b>Leung, B.<\/b> (2022). Smaller species are not better off. <i>Nature Ecology & Evolution 6(2)<\/i>: 134-135. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01636-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01636-4<\/a>","StandardTitle":"Smaller species are not better off","AuthorsString":"Leung, B.","BibLvlCode":"AS"},{"BRefID":365447,"RR":"<b>Sandbrook, Chris; Albury-Smith, Shenique; Allan, James R.; Bhola, Nina; Bingham, Heather C.; Brockington, Dan; Byaruhanga, Achilles B.; Fajardo, Javier; Fitzsimons, James; Franks, Phil; Fleischman, Forrest; Frechette, Alain; Kakuyo, Kagumaho; Kaptoyo, Edna; Kuemmerle, Tobias; Kalunda, Pauline Nantongo; Nuvunga, Milagre; O\u2019Donnell, Brian; Onyai, Fred; Pfeifer, Marion; Pritchard, Rose; Ramos, Ameyali; Rao, Madhu; Ryan, Casey M.; Shyamsundar, Priya; Tauli, Josefa; Tumusiime, David Mwesigye; Vila\u00e7a, M\u00f4nica; Watmough, Gary R.; Worsdell, Thomas; Zaehringer, Julie G.<\/b> (2023). Social considerations are crucial to success in implementing the 30\u00d730 global conservation target. <i>Nature Ecology & Evolution 7(6)<\/i>: 784-785. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02048-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02048-2<\/a>","StandardTitle":"Social considerations are crucial to success in implementing the 30\u00d730 global conservation target","AuthorsString":"Sandbrook, Chris <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":316660,"RR":"<b>Darling, E.S.; McClanahan, T.; Maina, J.; Gurney, G.G.; Graham, N.A.J.; Januchowski-Hartley, F.; Cinner, J.E.; Mora, C.; Hicks, C.C.; Maire, E.; Puotinen, M.; Skirving, W.J.; Adjeroud, M.; Ahmadia, G.; Arthur, R.; Bauman, A.G.; Beger, M.; Berumen, M.L.; Bigot, L.; Bouwmeester, J.; Brenier, A.; Bridge, T.C.L.; Brown, E.K.; Campbell, S.J.; Cannon, S.; Cauvin, B.; Chen, C.A.; Claudet, J.; Denis, V.; Donner, S.; Fadli, N.; Feary, D.A.; Fenner, D.; Fox, H.E.; Franklin, E.C.; Friedlander, A.; Gilmour, J.P.; Goiran, C.; Guest, J.; Hobbs, J.-P.A.; Hoey, A.S.; Houk, P.; Johnson, S.; Jupiter, S.D.; Kayal, M.; Kuo, C.-Y.; Lamb, J.; Lee, M.A.C.; Low, J.; Muthiga, N. A.; Muttaqin, E.; Nand, Y.; Nash, K.L.; Nedlic, O.; Pandolfi, J.M.; Pardede, S.; Patankar, V.; Penin, L.; Ribas-Deulofeu, L.; Richards, Z.T.; Rioberts, E.T.; Rodgers, K.S.; Mohd Safuan, C.D.; Salathe, E.P.; Shedrawl, G.; Min Sin, T.; Smallhorn-West, P.; Smith, J.E.; Sommer, B.; Steinberg, P.D.; Sutthacheep, M.; Tan, C.H.J.; Williams, G.J.; Wilson, S.K.; Yeemin, T.; Bruno, J.F.; Fortin, M.-J.; Krkosek, M.; Mouillot, D.<\/b> (2019). Social\u2013environmental drivers inform strategic management of coral reefs in the Anthropocene. <i>Nature Ecology & Evolution 3(9)<\/i>: 1341-1350. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0953-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0953-8<\/a>","StandardTitle":"Social\u2013environmental drivers inform strategic management of coral reefs in the Anthropocene","AuthorsString":"Darling, E.S. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":325369,"RR":"<b>Yu, L.; Bostr\u00f6m, C.; Franzenburg, S.; Bayer, T.; Dagan, T.; Reusch, T.B.H.<\/b> (2020). Somatic genetic drift and multilevel selection in a clonal seagrass. <i>Nature Ecology & Evolution 4(7)<\/i>: 952-962. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1196-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1196-4<\/a>","StandardTitle":"Somatic genetic drift and multilevel selection in a clonal seagrass","AuthorsString":"Yu, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":395747,"RR":"<b>Carroll, G.; Abrahms, B.; Brodie, S.; Cimino, M.A.<\/b> (2024). Spatial match\u2013mismatch between predators and prey under climate change. <i>Nature Ecology & Evolution 8(9)<\/i>: 1593-1601. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02454-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02454-0<\/a>","StandardTitle":"Spatial match\u2013mismatch between predators and prey under climate change","AuthorsString":"Carroll, G. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":361618,"RR":"<b>Heathcote, R.J.P.; Whiteside, M.A.; Beardsworth, C.E; Van Horik, J.O.; Laker, P.R.; Toledo, S.; Orchan, Y.; Nathan, R.; Madden, J.R.<\/b> (2023). Spatial memory predicts home range size and predation risk in pheasants. <i>Nature Ecology & Evolution 7<\/i>: 461-471. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01950-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01950-5<\/a>","StandardTitle":"Spatial memory predicts home range size and predation risk in pheasants","AuthorsString":"Heathcote, R.J.P. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":327877,"RR":"<b>Lenoir, J.; Bertrand, R.; Comte, L.; Bourgeaud, L.; Hattab, T.; Murienne, J.; Grenouillet, G.<\/b> (2020). Species better track climate warming in the oceans than on land. <i>Nature Ecology & Evolution 4(8)<\/i>: 1044-1059. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1198-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1198-2<\/a>","StandardTitle":"Species better track climate warming in the oceans than on land","AuthorsString":"Lenoir, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":324840,"RR":"<b>Carlson, C.J.; Chipperfield, J.D.; Benito, B.M.; Telford, R.J.; O'Hara, R.B.<\/b> (2020). Species distribution models are inappropriate for COVID-19. <i>Nature Ecology & Evolution 4(6)<\/i>: 770-771. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1212-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1212-8<\/a>","StandardTitle":"Species distribution models are inappropriate for COVID-19","AuthorsString":"Carlson, C.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":327874,"RR":"<b>Tabi, A.; Pennekamp, F.; Altermatt, F.; Alther, R.; Fronhofer, E.A.; Horgan, K.; M\u00e4chler, E.; Pontarp, M.; Petchey, O.L.; Saavedra, S.<\/b> (2020). Species multidimensional effects explain idiosyncratic responses of communities to environmental change. <i>Nature Ecology & Evolution 4(8)<\/i>: 1036-1043. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1206-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1206-6<\/a>","StandardTitle":"Species multidimensional effects explain idiosyncratic responses of communities to environmental change","AuthorsString":"Tabi, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":368530,"RR":"<b>Scheffers, B.R.<\/b> (2023). Species risk assessment informs trade regulation. <i>Nature Ecology & Evolution 7(8)<\/i>: 1175-1176. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02097-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02097-7<\/a>","StandardTitle":"Species risk assessment informs trade regulation","AuthorsString":"Scheffers, B.R.","BibLvlCode":"AS"},{"BRefID":316659,"RR":"<b>Troia, M.J.; Kaz, A.L.; Niemeyer, J.C.; Giam, X.<\/b> (2019). Species traits and reduced habitat suitability limit efficacy of climate change refugia in streams. <i>Nature Ecology & Evolution 3(9)<\/i>: 1321-1330. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0970-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0970-7<\/a>","StandardTitle":"Species traits and reduced habitat suitability limit efficacy of climate change refugia in streams","AuthorsString":"Troia, M.J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":316648,"RR":"<b>Stadler, T.<\/b> (2019). Species-specific diversification. <i>Nature Ecology & Evolution 3(7)<\/i>: 1003-1004. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0923-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0923-1<\/a>","StandardTitle":"Species-specific diversification","AuthorsString":"Stadler, T.","BibLvlCode":"AS"},{"BRefID":283991,"RR":"<b>Vargas, C.A.; Lagos, N.A.; Lardies, M.A.; Duarte, C.; Manriquez, P.H.; Aguilera, V.M.; Broitman, B.; Widdicombe, S.; Dupont, S.<\/b> (2017). Species-specific responses to ocean acidification should account for local adaptation and adaptive plasticity. <i>Nature Ecology & Evolution 1<\/i>: 0084. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-017-0084\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-017-0084<\/a>","StandardTitle":"Species-specific responses to ocean acidification should account for local adaptation and adaptive plasticity","AuthorsString":"Vargas, C.A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":341580,"RR":"<b>Gage, M.J.G.<\/b> (2021). Sperm size evolution. <i>Nature Ecology & Evolution 5(8)<\/i>: 1064-1065. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01501-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01501-4<\/a>","StandardTitle":"Sperm size evolution","AuthorsString":"Gage, M.J.G.","BibLvlCode":"AS"},{"BRefID":406593,"RR":"<b>Ma, D.; Halpern, B.S.; Abrahms, B.; Allgeier, J.; Garc\u00eda\u00a0Molinos, J.; Free, C.M.; Frazier, M.; Kaschner, K.; Weeks, B.C.; Carter, N.H.<\/b> (2025). Strategic planning could reduce farm-scale mariculture impacts on marine biodiversity while expanding seafood production. <i>Nature Ecology & Evolution 9(4)<\/i>: 565-575. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02650-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02650-6<\/a>","StandardTitle":"Strategic planning could reduce farm-scale mariculture impacts on marine biodiversity while expanding seafood production","AuthorsString":"Ma, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":333770,"RR":"<b>Samplonius, Jelmer M.; Atkinson, Angus; Hassall, Christopher; Keogan, Katharine; Thackeray, Stephen J.; Assmann, Jakob J.; Burgess, Malcolm D.; Johansson, Jacob; Macphie, Kirsty H.; Pearce-Higgins, James W.; Simmonds, Emily G.; Varpe, \u00d8ystein; Weir, Jamie C.; Childs, Dylan Z.; Cole, Ella F.; Daunt, Francis; Hart, Tom; Lewis, Owen T.; Pettorelli, Nathalie; Sheldon, Ben C.; Phillimore, Albert B.<\/b> (2020). Strengthening the evidence base for temperature-mediated phenological asynchrony and its impacts. <i>Nature Ecology & Evolution 5(2)<\/i>: 155-164. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01357-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01357-0<\/a>","StandardTitle":"Strengthening the evidence base for temperature-mediated phenological asynchrony and its impacts","AuthorsString":"Samplonius, Jelmer M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":383513,"RR":"<b>Zhang, Z.; Luo, X.; Friess, D.A.; Wang, S.; Li, Y.; Li, Y.<\/b> (2024). Stronger increases but greater variability in global mangrove productivity compared to that of adjacent terrestrial forests. <i>Nature Ecology & Evolution 8(2)<\/i>: 239-250. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02264-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02264-w<\/a>","StandardTitle":"Stronger increases but greater variability in global mangrove productivity compared to that of adjacent terrestrial forests","AuthorsString":"Zhang, Z. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":367914,"RR":"<b>M\u00f6hring, N.; Kanter, D.; Aziz, T.; Castro, I.B.; Maggi, F.; Schulte-Uebbing, L.; Seufert, V.; Tang, F.H.M.; Zhang, X.; Leadley, P.<\/b> (2023). Successful implementation of global targets to reduce nutrient and pesticide pollution requires suitable indicators. <i>Nature Ecology & Evolution 7(10)<\/i>: 1556-1559. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02120-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02120-x<\/a>","StandardTitle":"Successful implementation of global targets to reduce nutrient and pesticide pollution requires suitable indicators","AuthorsString":"M\u00f6hring, N. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":353945,"RR":"<b>Sogin, E.M.; Michellod, D.; Gruber-Vodicka, H.R.; Bourceau, P.; Geier, B.; Meier, D.V.; Seidel, M.; Ahmerkamp, S.; Schorn, S.; D\u2019Angelo, G.; Procaccini, G.; Dubilier, N.; Liebeke, M.<\/b> (2022). Sugars dominate the seagrass rhizosphere. <i>Nature Ecology & Evolution 6(7)<\/i>: 866-877. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01740-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01740-z<\/a>","StandardTitle":"Sugars dominate the seagrass rhizosphere","AuthorsString":"Sogin, E.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":351410,"RR":"<b>Matschiner, M.; Barth, J.M.I.; T\u00f8rresen, O.K.; Star, B.; Baalsrud, H.T.; Brieuc, M.S.O.; Pampoulie, C.; Bradbury, I.; Jakobsen, K.S.; Jentoft, S.<\/b> (2022). Supergene origin and maintenance in Atlantic cod. <i>Nature Ecology & Evolution 6(4)<\/i>: 469-481. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01661-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01661-x<\/a>","StandardTitle":"Supergene origin and maintenance in Atlantic cod","AuthorsString":"Matschiner, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":345678,"RR":"<b>Sim\u00f5es, T.R.; Pierce, S.E.<\/b> (2021). Sustained high rates of morphological evolution during the rise of tetrapods. <i>Nature Ecology & Evolution 5(10)<\/i>: 1403-1414. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01532-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01532-x<\/a>","StandardTitle":"Sustained high rates of morphological evolution during the rise of tetrapods","AuthorsString":"Sim\u00f5es, T.R.; Pierce, S.E.","BibLvlCode":"AS"},{"BRefID":396180,"RR":"<b>Xiao, H.; Driver, A.; Etter, A.; Keith, D.A.; Obst, C.; Traurig, M.J.; Nicholson, E.<\/b> (2024). Synergies and complementarities between ecosystem accounting and the Red List of Ecosystems. <i>Nature Ecology & Evolution 8(10)<\/i>: 1794-1803. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02494-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02494-6<\/a>","StandardTitle":"Synergies and complementarities between ecosystem accounting and the Red List of Ecosystems","AuthorsString":"Xiao, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":332599,"RR":"<b>Orr, M.C.; Ferrari, R.R.; Hughes, A.C.; Chen, J.; Ascher, J.S.; Yan, Y.-H.; Williams, P.H.; Zhou, X.; Bai, M.; Rudoy, A.; Zhang, F.; Ma, K.-P.; Zhu, C.-D.<\/b> (2021). Taxonomy must engage with new technologies and evolve to face future challenges. <i>Nature Ecology & Evolution 5(1)<\/i>: 3-4. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01360-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01360-5<\/a>","StandardTitle":"Taxonomy must engage with new technologies and evolve to face future challenges","AuthorsString":"Orr, M.C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":325368,"RR":"<b>Ant\u00e3o, L.H.; Bates, A.E.; Blowes, S.A.; Waldock, C.; Supp, S.R.; Magurran, A.E.; Dornelas, M.; Schipper, A.M.<\/b> (2020). Temperature-related biodiversity change across temperate marine and terrestrial systems. <i>Nature Ecology & Evolution 4(7)<\/i>: 927-933. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1185-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1185-7<\/a>","StandardTitle":"Temperature-related biodiversity change across temperate marine and terrestrial systems","AuthorsString":"Ant\u00e3o, L.H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":360376,"RR":"<b>Gunn, R.L.; Benkwitt, C.E.; Graham, A. J.; Hartley, I.R.; Algar, A.C.; Keith, S.A.<\/b> (2023). Terrestrial invasive species alter marine vertebrate behaviour. <i>Nature Ecology & Evolution 7(1)<\/i>: 82-91. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01931-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01931-8<\/a>","StandardTitle":"Terrestrial invasive species alter marine vertebrate behaviour","AuthorsString":"Gunn, R.L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":321966,"RR":"<b>Qian, J.J.; Ak\u00e7ay, E.<\/b> (2020). The balance of interaction types determines the assembly and stability of ecological communities. <i>Nature Ecology & Evolution 4(3)<\/i>: 356-365. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1121-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1121-x<\/a>","StandardTitle":"The balance of interaction types determines the assembly and stability of ecological communities","AuthorsString":"Qian, J.J.; Ak\u00e7ay, E.","BibLvlCode":"AS"},{"BRefID":438082,"RR":"<b>Dowding, Elizabeth M.; Dunne, Emma M.; Collins, Katie S.; Cryer, Katheryn; De Baets, Kenneth; Dimitrijevi\u0107, Danijela; Edie, Stewart M.; Finnegan, Seth; Kiessling, Wolfgang; Lintulaakso, Kari; Liow, Lee Hsiang; Little, Holly; Na, Lin; Peters, Shanan E.; Renaudie, Johan; Saupe, Erin E.; Seuss, Barbara; Sessa, Jocelyn A.; Smith, Jansen A.; Uhen, Mark D.; Williams, John W.; Kocsis, \u00c1d\u00e1m T.<\/b> (2026). The billion-dollar case for sustaining palaeontology\u2019s digital databases. <i>Nature Ecology & Evolution 10(3)<\/i>: 594-605. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-026-02985-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-026-02985-8<\/a>","StandardTitle":"The billion-dollar case for sustaining palaeontology\u2019s digital databases","AuthorsString":"Dowding, Elizabeth M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":393907,"RR":"<b>Parey, E.; Ortega-Martinez, O.; Delroisse, J.; Piovani, L.; Czarkwiani, A.; Dylus, D.; Arya, S.; Dupont, S.; Thorndyke, M.; Larsson, T.; Johannesson, K.; Buckley, K.M.; Martinez, P.; Oliveri, P.; Marl\u00e9taz, F.<\/b> (2024). The brittle star genome illuminates the genetic basis of animal appendage regeneration. <i>Nature Ecology & Evolution 8(8)<\/i>: 1505-1521. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02456-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02456-y<\/a>","StandardTitle":"The brittle star genome illuminates the genetic basis of animal appendage regeneration","AuthorsString":"Parey, E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":391789,"RR":"<b>Saleh, Farid; Lustri, Lorenzo; Gueriau, Pierre; Potin, Ga\u00ebtan J.-M.; P\u00e9rez-Peris, Francesc; Laibl, Luk\u00e1\u0161; Jamart, Valentin; Vite, Antoine; Antcliffe, Jonathan B.; Daley, Allison C.; Nohejlov\u00e1, Martina; Dupichaud, Christophe; Sch\u00f6der, Sebastian; B\u00e9rard, Emilie; Lynch, Sin\u00e9ad; Drage, Harriet B.; Vaucher, Romain; Vidal, Muriel; Monceret, Eric; Monceret, Sylvie; Lefebvre, Bertrand<\/b> (2024). The Cabri\u00e8res Biota (France) provides insights into Ordovician polar ecosystems. <i>Nature Ecology & Evolution 8(4)<\/i>: 651-662. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02331-w\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02331-w<\/a>","StandardTitle":"The Cabri\u00e8res Biota (France) provides insights into Ordovician polar ecosystems","AuthorsString":"Saleh, Farid <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":404806,"RR":"<b>Muir, L.A.; Botting, J.P.<\/b> (2024). The Cabri\u00e8res Biota is not a Konservat-Lagerst\u00e4tte. <i>Nature Ecology & Evolution 8(12)<\/i>: 2172-2174. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02559-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02559-6<\/a>","StandardTitle":"The Cabri\u00e8res Biota is not a Konservat-Lagerst\u00e4tte","AuthorsString":"Muir, L.A.; Botting, J.P.","BibLvlCode":"AS"},{"BRefID":406594,"RR":"<b>Garc\u00eda-Oliva, O.; Wirtz, K.<\/b> (2025). The complex structure of aquatic food webs emerges from a few assembly rules. <i>Nature Ecology & Evolution 9(4)<\/i>: 576-588. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02647-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02647-1<\/a>","StandardTitle":"The complex structure of aquatic food webs emerges from a few assembly rules","AuthorsString":"Garc\u00eda-Oliva, O.; Wirtz, K.","BibLvlCode":"AS"},{"BRefID":356405,"RR":"<b>Wang, W.; Tang, K.; Wang, P.; Zeng, Z.; Xu, T.; Zhan, W.; Liu, T.; Wang, Y.; Wang, X.<\/b> (2022). The coral pathogen <i>Vibrio coralliilyticus<\/i> kills non-pathogenic holobiont competitors by triggering prophage induction. <i>Nature Ecology & Evolution 6(8)<\/i>: 1132-1144. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01795-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01795-y<\/a>","StandardTitle":"The coral pathogen <i>Vibrio coralliilyticus<\/i> kills non-pathogenic holobiont competitors by triggering prophage induction","AuthorsString":"Wang, W. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":406053,"RR":"<b>zu Ermgassen, S.O.S.E.; Hawkins, I.; Lundhede, T.; Liu, Q.; Thorsen, B.J.; Bull, J.W.<\/b> (2025). The current state, opportunities and challenges for upscaling private investment in biodiversity in Europe. <i>Nature Ecology & Evolution 9(3)<\/i>: 515-524. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02632-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02632-0<\/a>","StandardTitle":"The current state, opportunities and challenges for upscaling private investment in biodiversity in Europe","AuthorsString":"zu Ermgassen, S.O.S.E. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":332598,"RR":"<b>Zeppelini, D.; Dal Molin, A.; Lamas, C.J.E.; Sarmiento, C.; Rheims, C.A.; Fernandes, D.R.R.; Lima, E.F.B.; Silva, E.N.; Carvalho-Filho, F.; Kov\u00e1c Lubom\u00edr, L.; Montoya-Lerma, J.; Moldovan, O.T.; Souza-Dias, P.G.B.; Demite, D.R.; Feitosa, R.M.; Boyer, S.L.; Weiner, W.M.; Rodrigues, W.C.<\/b> (2021). The dilemma of self-citation in taxonomy. <i>Nature Ecology & Evolution 5(1)<\/i>: 2-2. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01359-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01359-y<\/a>","StandardTitle":"The dilemma of self-citation in taxonomy","AuthorsString":"Zeppelini, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":356145,"RR":"<b>Fi\u0161er, C.; Borko, S.; Delic, T.; Kos, A.; Premate, E.; Zagmajster, M.; Zak\u0161ek, V.; Altermatt, F.<\/b> (2022). The European Green Deal misses Europe\u2019s subterranean biodiversity hotspots. <i>Nature Ecology & Evolution 6(10)<\/i>: 1403-1404. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01859-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01859-z<\/a>","StandardTitle":"The European Green Deal misses Europe\u2019s subterranean biodiversity hotspots","AuthorsString":"Fi\u0161er, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":345677,"RR":"<b>Aguirre-Liguori, J.A.; Ram\u00edrez-Barahona, S.; Gaut, B.S.<\/b> (2021). The evolutionary genomics of species\u2019 responses to climate change. <i>Nature Ecology & Evolution 5(10)<\/i>: 1350-1360. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01526-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01526-9<\/a>","StandardTitle":"The evolutionary genomics of species\u2019 responses to climate change","AuthorsString":"Aguirre-Liguori, J.A.; Ram\u00edrez-Barahona, S.; Gaut, B.S.","BibLvlCode":"AS"},{"BRefID":322681,"RR":"<b>Suryanarayana, S.M.; P\u00e9rez-Fern\u00e1ndez, J.; Robertson, B.; Grillner, S.<\/b> (2020). The evolutionary origin of visual and somatosensory representation in the vertebrate pallium. <i>Nature Ecology & Evolution 4(4)<\/i>: 639-651. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1137-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1137-2<\/a>","StandardTitle":"The evolutionary origin of visual and somatosensory representation in the vertebrate pallium","AuthorsString":"Suryanarayana, S.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":339817,"RR":"<b>Zhang, Yang; Mao, Fan; Mu, Huawei; Huang, Minwei; Bao, Yongbo; Wang, Lili; Wong, Nai-Kei; Xiao, Shu; Dai, He; Xiang, Zhiming; Ma, Mingli; Xiong, Yuanyan; Zhang, Ziwei; Zhang, Lvping; Song, Xiaoyuan; Wang, Fan; Mu, Xiyu; Li, Jun; Ma, Haitao; Zhang, Yuehuan; Zheng, Hongkun; Simakov, Oleg; Yu, Ziniu<\/b> (2021). The genome of <i>Nautilus pompilius<\/i> illuminates eye evolution and biomineralization. <i>Nature Ecology & Evolution 5(7)<\/i>: 927-938. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01448-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01448-6<\/a>","StandardTitle":"The genome of <i>Nautilus pompilius<\/i> illuminates eye evolution and biomineralization","AuthorsString":"Zhang, Yang <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":329209,"RR":"<b>Li, Linzhou; Wang, Sibo; Wang, Hongli; Sahu, Sunil Kumar; Marin, Birger; Li, Haoyuan; Xu, Yan; Liang, Hongping; Li, Zhen; Cheng, Shifeng; Reder, Tanja; \u00c7ebi, Zehra; Wittek, Sebastian; Petersen, Morten; Melkonian, Barbara; Du, Hongli; Yang, Huanming; Wang, Jian; Wong, Gane Ka-Shu; Xu, Xun; Liu, Xin; Van de Peer, Yves; Melkonian, Michael; Liu, Huan<\/b> (2020). The genome of <i>Prasinoderma coloniale<\/i> unveils the existence of a third phylum within green plants. <i>Nature Ecology & Evolution 4(9)<\/i>: 1220-1231. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1221-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1221-7<\/a>","StandardTitle":"The genome of <i>Prasinoderma coloniale<\/i> unveils the existence of a third phylum within green plants","AuthorsString":"Li, Linzhou <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":310814,"RR":"<b>Lecl\u00e8re, L.; Horin, C.; Chevalier, S.; Lap\u00e9bie, P.; Druart, P.; Peron, S.; Jager, M.; Condamine, T.; Pottin, K.; Romano, S.; Steger, J.; Sinigaglia, C.; Barreau, C.; Quiroga Artigas, G.; Ruggiero, A.; Fourrage, C.; Kraus, J.E.M.; Poulain, J.; Aury, J.-M.; Wincker, P.; Qu\u00e9innec, E.; Technau, U.; Manuel, M.; Momose, T.; Houliston, E.; Copley, R.R.<\/b> (2019). The genome of the jellyfish <i>Clytia hemisphaerica<\/i> and the evolution of the cnidarian life-cycle. <i>Nature Ecology & Evolution 3(5)<\/i>: 801-810. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0833-2\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0833-2<\/a>","StandardTitle":"The genome of the jellyfish <i>Clytia hemisphaerica<\/i> and the evolution of the cnidarian life-cycle","AuthorsString":"Lecl\u00e8re, L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":392285,"RR":"<b>Bell-James, J.; Foster, R.; Shumway, N.; Lovelock, C.E.; Villarreal-Rosas, J.; Brown, C.J.; Andradi-Brown, D.A.; Saunders, M.I.; Waltham, N.J.; Fitzsimons, J.A.<\/b> (2024). The Global Biodiversity Framework\u2019s ecosystem restoration target requires more clarity and careful legal interpretation. <i>Nature Ecology & Evolution 8(5)<\/i>: 840-841. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02389-6\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02389-6<\/a>","StandardTitle":"The Global Biodiversity Framework\u2019s ecosystem restoration target requires more clarity and careful legal interpretation","AuthorsString":"Bell-James, J. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":359119,"RR":"<b>Oestreich, W.K.; Aiu, K.M.; Crowder, L.B.; McKenna, M.F.; Berdahl, A.M.; Abrahms, B.<\/b> (2022). The influence of social cues on timing of animal migrations. <i>Nature Ecology & Evolution 6(11)<\/i>: 1617-1625. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01866-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01866-0<\/a>","StandardTitle":"The influence of social cues on timing of animal migrations","AuthorsString":"Oestreich, W.K. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":323996,"RR":"<b>Moreno-Mateos, D.; Alberdi, A.; Morri\u00ebn, E.; van der Putten, W.H.; Rodr\u00edguez-U\u00f1a, A.; Montoya, D.<\/b> (2020). The long-term restoration of ecosystem complexity. <i>Nature Ecology & Evolution 4(5)<\/i>: 676-685. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1154-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1154-1<\/a>","StandardTitle":"The long-term restoration of ecosystem complexity","AuthorsString":"Moreno-Mateos, D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":317540,"RR":"<b>Albouy, C.; Archambault, P.; Appeltans, W.; Araujo, M.B.; Beauchesne, D.; Cazelles, K.; Cirtwill, A.R.; Fortin, M.-J.; Galiana, N.; Leroux, S.J.; Pellissier, L.; Poisot, T.; Stouffer, D.B.; Wood, S.A.; Gravel, D.<\/b> (2019). The marine fish food web is globally connected. <i>Nature Ecology & Evolution 3(8)<\/i>: 1153-1161. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0950-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0950-y<\/a>","StandardTitle":"The marine fish food web is globally connected","AuthorsString":"Albouy, C. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":404403,"RR":"<b>Moody, E.R.R.; \u00c1lvarez-Carretero, S.; Mahendrarajah, T.A.; Clark, J.W.; Betts, H.C.; Dombrowski, N.; Sz\u00e1nth\u00f3, L.L.; Boyle, R.A.; Daines, S.; Chen, X.; Lane, N.; Yang, Z.; Shields, G.A.; Sz\u00f6llosi, G.J.; Spang, A.; Pisani, D.; Williams, T.A.; Lenton, T.M.; Donoghue, P.C.J.<\/b> (2024). The nature of the last universal common ancestor and its impact on the early Earth system. <i>Nature Ecology & Evolution 8(9)<\/i>: 1654-1666. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02461-1\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02461-1<\/a>","StandardTitle":"The nature of the last universal common ancestor and its impact on the early Earth system","AuthorsString":"Moody, E.R.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":323995,"RR":"<b>Khalturin, K.<\/b> (2020). The origin of metazoan larvae. <i>Nature Ecology & Evolution 4(5)<\/i>: 674-675. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1192-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1192-8<\/a>","StandardTitle":"The origin of metazoan larvae","AuthorsString":"Khalturin, K.","BibLvlCode":"AS"},{"BRefID":300675,"RR":"<b>Harrison, A.-L.; Costa, D.P.; Winship, A.J.; Benson, S.R.; Bograd, S.J.; Antolos, M.; Carlisle, A.B.; Dewar, H.; Dutton, P.H.; Jorgensen, S.J.; Kohin, S.; Mate, B.R.; Robinson, P.W.; Schaefer, K.M.; Shaffer, S.A.; Shillinger, G.L.; Simmons, S.E.; Weng, K.C.; Gjerde, K.M.; Block, B.A.<\/b> (2018). The political biogeography of migratory marine predators. <i>Nature Ecology & Evolution 2<\/i>: 1571-1578. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-018-0646-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-018-0646-8<\/a>","StandardTitle":"The political biogeography of migratory marine predators","AuthorsString":"Harrison, A.-L. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":338306,"RR":"<b>Dietzel, A.; Bode, M.; Connolly, S.R.; Hughes, T.P.<\/b> (2021). The population sizes and global extinction risk of reef-building coral species at biogeographic scales. <i>Nature Ecology & Evolution 5(5)<\/i>: 663-669. <a href=\"https:\/\/hdl.handle.net\/10.1038\/s41559-021-01393-4\" target=\"_blank\">https:\/\/hdl.handle.net\/10.1038\/s41559-021-01393-4<\/a>","StandardTitle":"The population sizes and global extinction risk of reef-building coral species at biogeographic scales","AuthorsString":"Dietzel, A. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396651,"RR":"<b>Gutgesell, M.; McCann, K.; O\u2019Connor, R.; KC, K.; Fraser, E.D.G.; Moore, J.C.; McMeans, B.; Donohue, I.; Bieg, C.; Ward, C.; Pauli, B.; Scott, A.; Gillam, W.; Gedalof, Z.; Hanner, R.H.; Tunney, T.; Rooney, N.<\/b> (2024). The productivity\u2013stability trade-off in global food systems. <i>Nature Ecology & Evolution 8(11)<\/i>: 2135-2149. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02529-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02529-y<\/a>","StandardTitle":"The productivity\u2013stability trade-off in global food systems","AuthorsString":"Gutgesell, M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":334788,"RR":"<b>Bridgewater, P.; Kim, R.E.<\/b> (2021). The Ramsar Convention on Wetlands at 50. <i>Nature Ecology & Evolution 5(3)<\/i>: 268-270. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01392-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01392-5<\/a>","StandardTitle":"The Ramsar Convention on Wetlands at 50","AuthorsString":"Bridgewater, P.; Kim, R.E.","BibLvlCode":"AS"},{"BRefID":355339,"RR":"<b>Schavemaker, P.E.; Mu\u00f1oz-G\u00f3mez, S.A.<\/b> (2022). The role of mitochondrial energetics in the origin and diversification of eukaryotes. <i>Nature Ecology & Evolution 6(9)<\/i>: 1307-1317. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01833-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01833-9<\/a>","StandardTitle":"The role of mitochondrial energetics in the origin and diversification of eukaryotes","AuthorsString":"Schavemaker, P.E.; Mu\u00f1oz-G\u00f3mez, S.A.","BibLvlCode":"AS"},{"BRefID":353947,"RR":"<b>Ye, Naihao; Han, Wentao; Toseland, Andrew; Wang, Yitao; Fan, Xiao; Xu, Dong; van Oosterhout, Cock; Aslam, Shazia N.; Barry, Kerrie; Beszteri, Bank; Brussaard, Corina; Clum, Alicia; Copeland, Alex; Daum, Chris; Duncan, Anthony; Eloe-Fadrosh, Emiley; Fong, Allison; Foster, Brian; Foster, Bryce; Ginzburg, Michael; Huntemann, Marcel; Ivanova, Natalia N.; Kyrpides, Nikos C.; Martin, Kara; Moulton, Vincent; Mukherjee, Supratim; Palaniappan, Krishnaveni; Reddy, T. B. K.; Roux, Simon; Schmidt, Katrin; Strauss, Jan; Timmermans, Klaas; Tringe, Susannah G.; Underwood, Graham J. C.; Valentin, Klaus U.; van de Poll, Willem H.; Varghese, Neha; Grigoriev, Igor V.; Tagliabue, Alessandro; Zhang, Jian; Zhang, Yan; Ma, Jian; Qiu, Huan; Li, Youxun; Zhang, Xiaowen; Mock, Thomas; Sea of Change Consortium<\/b> (2022). The role of zinc in the adaptive evolution of polar phytoplankton. <i>Nature Ecology & Evolution 6(7)<\/i>: 965-978. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-022-01750-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-022-01750-x<\/a>","StandardTitle":"The role of zinc in the adaptive evolution of polar phytoplankton","AuthorsString":"Ye, Naihao <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291547,"RR":"<b>Fox, K.C.R.; Muthukrishna, M.; Shultz, S.<\/b> (2017). The social and cultural roots of whale and dolphin brains. <i>Nature Ecology & Evolution 1(11)<\/i>: 1699-1705. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0336-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0336-y<\/a>","StandardTitle":"The social and cultural roots of whale and dolphin brains","AuthorsString":"Fox, K.C.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":364394,"RR":"<b>Muller, E.M.L.<\/b> (2023). The social dimension of microbial niches. <i>Nature Ecology & Evolution 7(5)<\/i>: 649-650. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02020-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02020-0<\/a>","StandardTitle":"The social dimension of microbial niches","AuthorsString":"Muller, E.M.L.","BibLvlCode":"AS"},{"BRefID":324849,"RR":"<b>Du, Kang; St\u00f6ck, Matthias; Kneitz, Susanne; Klopp, Christophe; Woltering, Joost M.; Adolfi, Mateus Contar; Feron, Romain; Prokopov, Dmitry; Makunin, Alexey; Kichigin, Ilya; Schmidt, Cornelia; Fischer, Petra; Kuhl, Heiner; Wuertz, Sven; Gessner, J\u00f6rn; Kloas, Werner; Cabau, C\u00e9dric; Iampietro, Carole; Parrinello, Hugues; Tomlinson, Chad; Journot, Laurent; Postlethwait, John H.; Braasch, Ingo; Trifonov, Vladimir; Warren, Wesley C.; Meyer, Axel; Guiguen, Yann; Schartl, Manfred<\/b> (2020). The sterlet sturgeon genome sequence and the mechanisms of segmental rediploidization. <i>Nature Ecology & Evolution 4(6)<\/i>: 841-852. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1166-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1166-x<\/a>","StandardTitle":"The sterlet sturgeon genome sequence and the mechanisms of segmental rediploidization","AuthorsString":"Du, Kang <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":291545,"RR":"<b>Meyer, B.; Freier, U.; Grimm, V.; Groeneveld, J.; Hunt, B.P.V.; Kerwath, S.; King, R.; Klaas, C.; Pakhomov, E.; Meiners, K.M.; Melbourne-Thomas, J.; Murphy, E.J.; Thorpe, S.E.; Stammerjohn, S.; Wolf-Gladrow, D.; Auerswald, L.; G\u00f6tz, A.; Halbach, L.; Jarman, S.N.; Kawaguchi, S.; Krumpen, T.; Nehrke, G.; Ricker, R.; Sumner, M.D.; Teschke, M.; Trebilco, R.; Yilmaz, N.I.<\/b> (2017). The winter pack-ice zone provides a sheltered but food-poor habitat for larval Antarctic krill. <i>Nature Ecology & Evolution 1(12)<\/i>: 1853-1861. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0368-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0368-3<\/a>","StandardTitle":"The winter pack-ice zone provides a sheltered but food-poor habitat for larval Antarctic krill","AuthorsString":"Meyer, B. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":341537,"RR":"<b>Hughes, N.C.<\/b> (2021). The young and the vestless. <i>Nature Ecology & Evolution 5(8)<\/i>: 1060-1061. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01489-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01489-x<\/a>","StandardTitle":"The young and the vestless","AuthorsString":"Hughes, N.C.","BibLvlCode":"AS"},{"BRefID":291544,"RR":"<b>Stuart-Smith, R.D.; Edgar, G.J.; Bates, A.E.<\/b> (2017). Thermal limits to the geographic distributions of shallow-water marine species. <i>Nature Ecology & Evolution 1(12)<\/i>: 1846-1852. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-017-0353-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-017-0353-x<\/a>","StandardTitle":"Thermal limits to the geographic distributions of shallow-water marine species","AuthorsString":"Stuart-Smith, R.D. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":330701,"RR":"<b>Hillebrand, H.; Donohue, I.; Harpole, W.S.; Hodapp, D.; Kucera, M.; Lewandowska, A.M.; Merder, J.; Montoya, J.M.; Freund, J.A.<\/b> (2020). Thresholds for ecological responses to global change do not emerge from empirical data. <i>Nature Ecology & Evolution 4(11)<\/i>: 1502\u20131509. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1256-9\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1256-9<\/a>","StandardTitle":"Thresholds for ecological responses to global change do not emerge from empirical data","AuthorsString":"Hillebrand, H. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":367960,"RR":"<b>Yang, Y.; Foster, K.R.; Coyte, K.Z.; Li, A.<\/b> (2023). Time delays modulate the stability of complex ecosystems. <i>Nature Ecology & Evolution 7(10)<\/i>: 1610-1619. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02158-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02158-x<\/a>","StandardTitle":"Time delays modulate the stability of complex ecosystems","AuthorsString":"Yang, Y. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":333769,"RR":"<b>Meyer, B.; H\u00fcppe, L.; Payton, L.<\/b> (2021). Timing requires the right amount and type of light. <i>Nature Ecology & Evolution 5(2)<\/i>: 153-154. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01373-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01373-0<\/a>","StandardTitle":"Timing requires the right amount and type of light","AuthorsString":"Meyer, B.; H\u00fcppe, L.; Payton, L.","BibLvlCode":"AS"},{"BRefID":316646,"RR":"<b>Allison, S.D.<\/b> (2019). Traits track taxonomy. <i>Nature Ecology & Evolution 3(7)<\/i>: 1001-1002. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0937-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0937-8<\/a>","StandardTitle":"Traits track taxonomy","AuthorsString":"Allison, S.D.","BibLvlCode":"AS"},{"BRefID":341530,"RR":"<b>Wehi, P.M.; van Uitregt, V.; Scott, N.J.; Gillies, T.; Beckwith, J.; Rodgers, R.P.; Watene, K.<\/b> (2021). Transforming Antarctic management and policy with an Indigenous M\u0101ori lens. <i>Nature Ecology & Evolution 5(8)<\/i>: 1055-1059. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01466-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01466-4<\/a>","StandardTitle":"Transforming Antarctic management and policy with an Indigenous M\u0101ori lens","AuthorsString":"Wehi, P.M. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":396174,"RR":"<b>Musser, J.M.<\/b> (2024). Tripartite origin of the chordate brain. <i>Nature Ecology & Evolution 8(10)<\/i>: 1782-1783. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02528-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02528-z<\/a>","StandardTitle":"Tripartite origin of the chordate brain","AuthorsString":"Musser, J.M.","BibLvlCode":"AS"},{"BRefID":331721,"RR":"<b>Newbold, T.; Oppenheimer, P.; Etard, A.; Williams, J.J.<\/b> (2020). Tropical and Mediterranean biodiversity is disproportionately sensitive to land-use and climate change. <i>Nature Ecology & Evolution 4(12)<\/i>: 1630-1638. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01303-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01303-0<\/a>","StandardTitle":"Tropical and Mediterranean biodiversity is disproportionately sensitive to land-use and climate change","AuthorsString":"Newbold, T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":436576,"RR":"<b>Smith, R.J.; Matimele, H.<\/b> (2025). Twenty-five years of misinterpreting the biodiversity hotspot approach. <i>Nature Ecology & Evolution 9(12)<\/i>: 2175-2177. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02903-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02903-4<\/a>","StandardTitle":"Twenty-five years of misinterpreting the biodiversity hotspot approach","AuthorsString":"Smith, R.J.; Matimele, H.","BibLvlCode":"AS"},{"BRefID":331723,"RR":"<b>Clark-Hachtel, C.M.; Tomoyasu, Y.<\/b> (2020). Two sets of candidate crustacean wing homologues and their implication for the origin of insect wings. <i>Nature Ecology & Evolution 4(12)<\/i>: 1694-1702. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1257-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1257-8<\/a>","StandardTitle":"Two sets of candidate crustacean wing homologues and their implication for the origin of insect wings","AuthorsString":"Clark-Hachtel, C.M.; Tomoyasu, Y.","BibLvlCode":"AS"},{"BRefID":393136,"RR":"<b>Srednick, G.; Swearer, S.E.<\/b> (2024). Understanding diversity\u2013synchrony\u2013stability relationships in multitrophic communities. <i>Nature Ecology & Evolution 8(7)<\/i>: 1259-1269. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-024-02419-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-024-02419-3<\/a>","StandardTitle":"Understanding diversity\u2013synchrony\u2013stability relationships in multitrophic communities","AuthorsString":"Srednick, G.; Swearer, S.E.","BibLvlCode":"AS"},{"BRefID":415707,"RR":"<b>Gabbott, S.; Boom, A.; Zalasiewicz, J.<\/b> (2025). Understanding environmental impacts of plastic requires a palaeontological lens. <i>Nature Ecology & Evolution 9(9)<\/i>: 1539\u20131541. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02813-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02813-5<\/a>","StandardTitle":"Understanding environmental impacts of plastic requires a palaeontological lens","AuthorsString":"Gabbott, S.; Boom, A.; Zalasiewicz, J.","BibLvlCode":"AS"},{"BRefID":367959,"RR":"<b>Callaghan, C.T.; Borda-de-\u00c1gua, L.; van Klink, R.; Rozzi, R.; Pereira, H.M.<\/b> (2023). Unveiling global species abundance distributions. <i>Nature Ecology & Evolution 7(10)<\/i>: 1600-1609. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-023-02173-y\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-023-02173-y<\/a>","StandardTitle":"Unveiling global species abundance distributions","AuthorsString":"Callaghan, C.T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":411060,"RR":"<b>Gattuso, J.P.; Houllier, H.; Adams, J.; Amon, D.; Bambridge, T.; Cheung, W.; Chiba, S.; Cort\u00e9s, J.; Duarte, C.M.; Fr\u00f6licher, T.; Gelcich, S.; Gjerde, K.; Greaves, D.; Haugan, P.M.; Li, D.; Tuda, A.<\/b> (2025). US federal cuts threaten international ocean science and diplomacy. <i>Nature Ecology & Evolution 9(7)<\/i>: 1079-1080. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02750-3\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02750-3<\/a>","StandardTitle":"US federal cuts threaten international ocean science and diplomacy","AuthorsString":"Gattuso, J.P. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":408326,"RR":"<b>Soto, I.; Courtois, P.; Pili, A.; Tordoni, E.; Manfrini, E.; Angulo, E.; Bellard, C.; Briski, E.; Buric, M.; Cuthbert, R.N.; Kouba, A.; Kourantidou, M.; Mac\u00eado, R.L.; Leroy, B.; Haubrock, P.J.; Courchamp, F.; Leung, B.<\/b> (2025). Using species ranges and macroeconomic data to fill the gap in costs of biological invasions. <i>Nature Ecology & Evolution 9(6)<\/i>: 1021-1030. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02697-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02697-5<\/a>","StandardTitle":"Using species ranges and macroeconomic data to fill the gap in costs of biological invasions","AuthorsString":"Soto, I. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":331011,"RR":"<b>Bj\u00f6rk, J.R.; D\u00edez-Vives, C.; Astudillo-Garc\u00eda, C.; Archie, E.A.; Montoya, J.M.<\/b> (2019). Vertical transmission of sponge microbiota is inconsistent and unfaithful. <i>Nature Ecology & Evolution 3(8)<\/i>: 1172-1183. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0935-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0935-x<\/a>","StandardTitle":"Vertical transmission of sponge microbiota is inconsistent and unfaithful","AuthorsString":"Bj\u00f6rk, J.R. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":332602,"RR":"<b>Holtrop, T.; Huisman, J.; Stomp, M.; Biersteker, L.; Aerts, J.; Gr\u00e9bert, T.; Partensky, F.; Garczarek, L.; Van der Woerd, H.J.<\/b> (2021). Vibrational modes of water predict spectral niches for photosynthesis in lakes and oceans. <i>Nature Ecology & Evolution 5(1)<\/i>: 55-66. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-01330-x\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-01330-x<\/a>","StandardTitle":"Vibrational modes of water predict spectral niches for photosynthesis in lakes and oceans","AuthorsString":"Holtrop, T. <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":349712,"RR":"<b>Goymer, P.<\/b> (2022). Vulnerable reefs. <i>Nature Ecology & Evolution 6(2)<\/i>: 131-131. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01648-0\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01648-0<\/a>","StandardTitle":"Vulnerable reefs","AuthorsString":"Goymer, P.","BibLvlCode":"AS"},{"BRefID":438083,"RR":"<b>Yang, Chao; Qiu, Hongling; Svensson, Sarah L.; Ni, Chengpei; Gao, Song; Jia, Zhizhou; Wen, Huiqi; Xie, Li; Xu, Wenxuan; Qin, Yujiao; Lin, Shuzhu; Wang, Jiancheng; Zhang, Yiquan; Li, Yinghui; Jiang, Min; Shi, Xiaolu; Hu, Qinghua; Zhou, Zhemin; Chao, Yanjie; Yang, Ruifu; Cui, Yujun; Martinez-Urtaza, Jaime; Wang, Hui; Falush, Daniel<\/b> (2025). Wave succession in the pandemic clone of <i>Vibrio parahaemolyticus<\/i> driven by gene loss. <i>Nature Ecology & Evolution 10(3)<\/i>: 416-428. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-025-02827-z\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-025-02827-z<\/a>","StandardTitle":"Wave succession in the pandemic clone of <i>Vibrio parahaemolyticus<\/i> driven by gene loss","AuthorsString":"Yang, Chao <i>et al.<\/i>","BibLvlCode":"AS"},{"BRefID":327870,"RR":"<b>Christiansen, J.S.<\/b> (2020). Whale catches fail to fill quotas. <i>Nature Ecology & Evolution 4(8)<\/i>: 1000-1001. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1223-5\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1223-5<\/a>","StandardTitle":"Whale catches fail to fill quotas","AuthorsString":"Christiansen, J.S.","BibLvlCode":"AS"},{"BRefID":310807,"RR":"<b>Schnitzler, C.E.<\/b> (2019). What makes a jellyfish. <i>Nature Ecology & Evolution 3(5)<\/i>: 724-725. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-019-0872-8\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-019-0872-8<\/a>","StandardTitle":"What makes a jellyfish","AuthorsString":"Schnitzler, C.E.","BibLvlCode":"AS"},{"BRefID":349717,"RR":"<b>Wielgoss, S.<\/b> (2022). When maths meets phytoplankton ecology. <i>Nature Ecology & Evolution 6(2)<\/i>: 138-139. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-021-01641-7\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-021-01641-7<\/a>","StandardTitle":"When maths meets phytoplankton ecology","AuthorsString":"Wielgoss, S.","BibLvlCode":"AS"},{"BRefID":322678,"RR":"<b>Dominoni, D.M.; Halfwerk, W.; Baird, E.; Buxton, R.T.; Fern\u00e1ndez-Juricic, E.; Fristrup, K.M.; McKenna, M.F.; Mennitt, D.J.; Perkin, E.K.; Seymoure, B.M.; Stoner, D.C.; Tennessen, J.B.; Toth, C.A.; Tyrrell, L.P.; Wilson, A.; Francis, C.D.; Carter, N.H.; Barber, J.R.<\/b> (2020). Why conservation biology can benefit from sensory ecology. <i>Nature Ecology & Evolution 4(4)<\/i>: 502-511. <a href=\"https:\/\/dx.doi.org\/10.1038\/s41559-020-1135-4\" target=\"_blank\">https:\/\/dx.doi.org\/10.1038\/s41559-020-1135-4<\/a>","StandardTitle":"Why conservation biology can benefit from sensory ecology","AuthorsString":"Dominoni, D.M. <i>et al.<\/i>","BibLvlCode":"AS"}],"BEntOpen":274841,"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":28701,"PublName":"Springer Nature","InsID":null,"PersID":null,"INBOID":null,"OrderNr":1}],"serparttypes":["A"],"monauthors":null,"MParts":null,"SParts":null,"hLibs":null,"langs":[{"BEntID":274841,"AbstractFlag":0,"LangID":15,"LangCode":"en","Lang":"English","DutchTerm":"Engels","LangCodeExtended":"eng"}],"urls":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":"2017-01-19 09:38:39.123000","timezone_type":3,"timezone":"Europe\/Brussels"},"updSesName":"Chisala, Chilekwa, C.","updSesDate":{"date":"2017-01-19 11:34:17.877000","timezone_type":3,"timezone":"Europe\/Brussels"}}}
