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Marine Pollution Bulletin · 2025 · Vol. 215 · Elsevier
Zara L.R. Botterell; Jed Ardren; Elly Dove; Ellen McArthur; David S. Addison; Oyeronke M. Adegbile; Pierre Didier Agamboue; Andrews Agyekumhene; Phil Allman; Alexandra Alterman; Adren Anderson; Theresa Arenholz; Daniel Ariano-Sánchez; Zephania Arnold; José C. Báez; Anat Bahar; Castro Barbosa; Hector Barrios-Garrido; Eyup Başkale; Michael L. Berumen; Vanessa S. Bézy; Janice Blumenthal; Manuela R. Borja Bosquirolli; Alysia J. Boyce; Elizabeth Brammer-Robbins; Maria Branco; Annabelle M.L. Brooks; Nancy Bunbury; Luis Cardona; Helen Chadwick; Giannis Chalkias; Kimberly Chug; Jessica Clark; Matthew Cole; Rachel L. Coppock; Eduardo Cuevas; Tiffany M. Dawson; Maria Denaro; Rodrigo Donadi; Corrine Douglas; Ryan Douglas; Emily Drobes; Chloé Dubois; Emily M. Duncan; Chloe A. Elston; Nicole Esteban; Gabriela Fernandes; Maria B. Ferreira-Airaud; Sarah A. Finn; Jerome Fisayo Christie; Angela Formia; Sabrina Fossette-Halot; Mariana M.P.B. Fuentes; Tamara S. Galloway; Matthew H. Godfrey; Joanna Goodfellow; Vicente Guzmán-Hernández; Catherine E. Hart; Graeme C. Hays; Sarah E. Hirsch; Sandra Hochscheid; Karen G. Holloway-Adkins; Julia A. Horrocks; Emi Inoguchi; Gélica E. Inteca; Claire Jean; Yakup Kaska; Brice Didier Koumba Mabert; Amandine Lambot; Yaniv Levy; Ceri Lewis; César P. Ley-Quiñonez; Penelope K. Lindeque; Israel Llamas; Sergio Lopez-Martinez; Javier López-Navas; Kelsey Mack; Fernando M. Madeira; Fulvio Maffucci; Roksana Majewska; Agnese Mancini; Katherine L. Mansfield; Adolfo Marco; Dimitris Margaritoulis; Isabel Marques da Silva; Samir Martins; Andrew S. Maurer; Wendy J. McFarlane; Carmen Mejías-Balsalobre; Maxine A. Montello; Jeanne A. Mortimer; Sarah E. Nelms; Josep Nogués Vera; Christelle Not; Olga Novillo-Sanjuan; Karen Oceguera Camacho; Omri Omessi; Breanna Ondich; Mark Outerbridge; Nicolas Paranthoen; Jessica Pate; S. Michelle Pate; Ana R. Patrício; Odysseas Paxinos; Tami Pearl; Justin R. Perrault; Angela S. Picknell; Susanna Piovano; Ernesto I. Pococa Arellano; Alwyn Ponteen; Shritika S. Prakash; Jairo Quiros Rosales; Vicky Rae; Azzakirat B.A. Raman; Tyffen Read; Katie E. Reeve-Arnold; Richard D. Reina; Stefanie Reinhardt; Flavia Riberiro; Andrew J. Richardson; Marga L. Rivas; Dani Rob; Joseph Roche Chaloner; Christopher E. Rogers; Daniela Rojas-Cañizales; Frank Rosell; Enerit Sacdanaku; Yessica M. Salgado Gallegos; Cheryl Sanchez; Pilar Santidrián Tomillo; David Santillo; Denise Santos de Mora; Maïa Sarrouf Willson; Shir Sassoon; Emma A. Schultz; Felicity Shapland; Donna J. Shaver; Mandy W.K. So; Kelly Soluri; Guy-Philippe Sounguet; Doğan Sözbilen; Seth P. Stapleton; David A. Steen; Martin Stelfox; Kimberly M. Stewart; Lyndsey K. Tanabe; Luis A. Tello-Sahagun; Jesús Tomás; Davinia Torreblanca; Anton D. Tucker; Craig Turley; Ivon Vassileva; Sara Vieira; Martha R. Villalba-Guerra; Gerardo Villaseñor Castañeda; Ricardo Villaseñor Llamas; Matthew Ware; Sam B. Weber; Lindsey West; Clemency Whittles; Paul A. Whittock; Joseph Widlansky; Brendan J. Godley
Ecology Letters · 2019 · Vol. 22 · Issue 12 · Wiley
In contrast to the situation in plants inhabiting most of the world’s ecosystems, mycorrhizal fungi are usually absent from roots of the only two native vascular plant species of maritime Antarctica, Deschampsia antarctica and Colobanthus quitensis . Instead, a range of ascomycete fungi, termed dark septate endophytes (DSEs), frequently colonise the roots of these plant species. We demonstrate that colonisation of Antarctic va...
Ecology under lake iceNARA Subscribed
Ecology Letters · 2017 · Vol. 20 · Issue 1 · Wiley
Winter conditions are rapidly changing in temperate ecosystems, particularly for those that experience periods of snow and ice cover. Relatively little is known of winter ecology in these systems, due to a historical research focus on summer ‘growing seasons’. We executed the first global quantitative synthesis on under‐ice lake ecology, including 36 abiotic and biotic variables from 42 research groups and 101 lakes, examining...
Ecology Letters · 2008 · Vol. 11 · Issue 10 · Wiley
Worldwide decomposition rates depend both on climate and the legacy of plant functional traits as litter quality. To quantify the degree to which functional differentiation among species affects their litter decomposition rates, we brought together leaf trait and litter mass loss data for 818 species from 66 decomposition experiments on six continents. We show that: (i) the magnitude of species‐driven differences is much large...