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Ecology Letters · 2025 · Vol. 28 · Issue 9 · Wiley
Following rapid climate change, tundra plant communities are experiencing extensive compositional shifts. A conservation concern is the potential encroachment of boreal species into the tundra (‘borealisation’). Tundra borealisation has been sporadically reported, but not systematically quantified. Here, we synthesised data from across 32 study areas, spanning 1137 plots and 287 vascular plant species, resurveyed between 1981...
Global Change Biology · 2024 · Vol. 30 · Issue 1 · Wiley
Plant communities are being exposed to changing environmental conditions all around the globe, leading to alterations in plant diversity, community composition, and ecosystem functioning. For herbaceous understorey communities in temperate forests, responses to global change are postulated to be complex, due to the presence of a tree layer that modulates understorey responses to external pressures such as climate change and ch...
Ecology · 2022 · Vol. 103 · Issue 12 · Wiley
While biodiversity is expected to enhance multiple ecosystem functions (EFs), the different roles of multiple biodiversity dimensions remain difficult to disentangle without carefully designed experiments. We sowed plant communities with independent levels of functional (FD) and phylogenetic diversities (PD), combined with different levels of fertilization, to investigate their direct and indirect roles on multiple EFs, includ...
Ecology Letters · 2022 · Vol. 25 · Issue 2 · Wiley
Species turnover is ubiquitous. However, it remains unknown whether certain types of species are consistently gained or lost across different habitats. Here, we analysed the trajectories of 1827 plant species over time intervals of up to 78 years at 141 sites across mountain summits, forests, and lowland grasslands in Europe. We found, albeit with relatively small effect sizes, displacements of smaller‐ by larger‐ranged specie...
Global Ecology and Biogeography · 2018 · Vol. 27 · Issue 12 · Wiley
Anne D. Bjorkman; Isla H. Myers‐Smith; Sarah C. Elmendorf; Signe Normand; Haydn J. D. Thomas; Juha M. Alatalo; Heather Alexander; Alba Anadon‐Rosell; Sandra Angers‐Blondin; Yang Bai; Gaurav Baruah; Mariska te Beest; Logan Berner; Robert G. Björk; Daan Blok; Helge Bruelheide; Agata Buchwal; Allan Buras; Michele Carbognani; Katherine Christie; Laura S. Collier; Elisabeth J. Cooper; J. Hans C. Cornelissen; Katharine J. M. Dickinson; Stefan Dullinger; Bo Elberling; Anu Eskelinen; Bruce C. Forbes; Esther R. Frei; Maitane Iturrate‐Garcia; Megan K. Good; Oriol Grau; Peter Green; Michelle Greve; Paul Grogan; Sylvia Haider; Tomáš Hájek; Martin Hallinger; Konsta Happonen; Karen A. Harper; Monique M. P. D. Heijmans; Gregory H. R. Henry; Luise Hermanutz; Rebecca E. Hewitt; Robert D. Hollister; James Hudson; Karl Hülber; Colleen M. Iversen; Francesca Jaroszynska; Borja Jiménez‐Alfaro; Jill Johnstone; Rasmus Halfdan Jorgensen; Elina Kaarlejärvi; Rebecca Klady; Jitka Klimešová; Annika Korsten; Sara Kuleza; Aino Kulonen; Laurent J. Lamarque; Trevor Lantz; Amanda Lavalle; Jonas J. Lembrechts; Esther Lévesque; Chelsea J. Little; Miska Luoto; Petr Macek; Michelle C. Mack; Rabia Mathakutha; Anders Michelsen; Ann Milbau; Ulf Molau; John W. Morgan; Martin Alfons Mörsdorf; Jacob Nabe‐Nielsen; Sigrid Schøler Nielsen; Josep M. Ninot; Steven F. Oberbauer; Johan Olofsson; Vladimir G. Onipchenko; Alessandro Petraglia; Catherine Pickering; Janet S. Prevéy; Christian Rixen; Sabine B. Rumpf; Gabriela Schaepman‐Strub; Philipp Semenchuk; Rohan Shetti; Nadejda A. Soudzilovskaia; Marko J. Spasojevic; James David Mervyn Speed; Lorna E. Street; Katharine Suding; Ken D. Tape; Marcello Tomaselli; Andrew Trant; Urs A. Treier; Jean‐Pierre Tremblay; Maxime Tremblay; Susanna Venn; Anna‐Maria Virkkala; Tage Vowles; Stef Weijers; Martin Wilmking; Sonja Wipf; Tara Zamin
Motivation The Tundra Trait Team (TTT) database includes field‐based measurements of key traits related to plant form and function at multiple sites across the tundra biome. This dataset can be used to address theoretical questions about plant strategy and trade‐offs, trait–environment relationships and environmental filtering, and trait variation across spatial scales, to validate satellite data, and to inform Earth system mo...
Global Change Biology · 2015 · Vol. 21 · Issue 10 · Wiley
Global biodiversity is affected by numerous environmental drivers. Yet, the extent to which global environmental changes contribute to changes in local diversity is poorly understood. We investigated biodiversity changes in a meta‐analysis of 39 resurvey studies in European temperate forests (3988 vegetation records in total, 17–75 years between the two surveys) by assessing the importance of (i) coarse‐resolution (i.e., among...
Global Change Biology · 2015 · Vol. 21 · Issue 7 · Wiley
Although the distribution ranges and abundance of many plant species have declined dramatically in recent decades, detailed analysis of these changes and their cause have only become possible following the publication of second‐ and third‐generation national distribution atlases. Decline can now be compared both between species and in different parts of species' ranges. We extracted data from distribution atlases to compare ra...