Diversity and distribution of Raunkiær's life forms in European vegetation

Author:

Midolo Gabriele123ORCID,Axmanová Irena1ORCID,Divíšek Jan1,Dřevojan Pavel1,Lososová Zdeňka1ORCID,Večeřa Martin1ORCID,Karger Dirk Nikolaus4,Thuiller Wilfried5,Bruelheide Helge67ORCID,Aćić Svetlana8,Attorre Fabio9,Biurrun Idoia10ORCID,Boch Steffen4ORCID,Bonari Gianmaria11ORCID,Čarni Andraž1213ORCID,Chiarucci Alessandro14ORCID,Ćušterevska Renata15,Dengler Jürgen1617ORCID,Dziuba Tetiana18,Garbolino Emmanuel19,Jandt Ute67,Lenoir Jonathan20ORCID,Marcenò Corrado21ORCID,Rūsiņa Solvita22,Šibík Jozef23,Škvorc Željko24,Stančić Zvjezdana25,Stanišić‐Vujačić Milica26,Svenning Jens‐Christian2728,Swacha Grzegorz29,Vassilev Kiril30,Chytrý Milan1ORCID

Affiliation:

1. Department of Botany and Zoology, Faculty of Science Masaryk University Brno Czech Republic

2. Research Institute on Terrestrial Ecosystems National Research Council of Italy (IRET–CNR) Pisa Italy

3. National Biodiversity Future Center (NBFC) Palermo Italy

4. WSL Swiss Federal Institute for Forest Snow and Landscape Research Birmensdorf Switzerland

5. Laboratory of Alpine Ecology University of Grenoble Alpes Grenoble France

6. Institute of Biology/Geobotany and Botanical Garden Martin Luther University Halle‐Wittenberg Germany

7. German Centre for Integrative Biodiversity Research (iDiv) Halle‐Jena‐Leipzig Leipzig Germany

8. Department of Botany, Faculty of Agriculture University of Belgrade Belgrade Serbia

9. Department of Environmental Biology Sapienza University of Rome Roma Italy

10. Plant Biology and Ecology University of the Basque Country UPV/EHU Bilbao Spain

11. Department of Life Sciences University of Siena Siena Italy

12. Institute of Biology Research Centre of the Slovenian Academy of Sciences and Arts Ljubljana Slovenia

13. Faculty for Viticulture and Enology University of Nova Gorica Nova Gorica Slovenia

14. BIOME Lab, Department of Biological, Geological and Environmental Sciences Alma Mater Studiorum – University of Bologna Bologna Italy

15. Faculty of Natural Sciences and Mathematics Ss. Cyril and Methodius University Skopje North Macedonia

16. Vegetation Ecology Research Group, Institute of Natural Resource Sciences (IUNR) Zurich University of Applied Sciences (ZHAW) Wädenswil Switzerland

17. Plant Ecology, Bayreuth Center of Ecology and Environmental Research (BayCEER) University of Bayreuth Bayreuth Germany

18. Department of Geobotany and Ecology, M.G. Kholodny Institute of Botany National Academy of Sciences of Ukraine Kyiv Ukraine

19. Climpact Data Science (CDS) Sophia Antipolis Cedex France

20. UMR CNRS 7058 Ecologie et Dynamique des Systèmes Anthropisés (EDYSAN) Université de Picardie Jules Verne Amiens France

21. Department of Chemistry, Biology and Biotechnology University of Perugia Perugia Italy

22. Faculty of Geography and Earth Sciences University of Latvia Riga Latvia

23. Plant Science and Biodiversity Center Slovak Academy of Sciences Bratislava Slovakia

24. Faculty of Forestry and Wood Technology University of Zagreb Zagreb Croatia

25. Faculty of Geotechnical Engineering University of Zagreb Varaždin Croatia

26. Faculty of Natural Sciences and Mathematics University of Montenegro Podgorica Montenegro

27. Center for Ecological Dynamics in a Novel Biosphere (ECONOVO) & Center for Biodiversity Dynamics in a Changing World (BIOCHANGE), Department of Biology Aarhus University Aarhus C Denmark

28. Section for Ecoinformatics and Biodiversity, Department of Biology Aarhus University Aarhus C Denmark

29. Botanical Garden University of Wrocław Wrocław Poland

30. Institute of Biodiversity and Ecosystem Research Bulgarian Academy of Sciences Sofia Bulgaria

Abstract

AbstractAimsThe Raunkiær's system classifies vascular plants into life forms based on the position of renewal buds during periods unfavourable for plant growth. Despite the importance of Raunkiær's system for ecological research, a study exploring the diversity and distribution of life forms on a continental scale is missing. We aim to (i) map the diversity and distribution of life forms in European vegetation and (ii) test for effects of bioclimatic variables while controlling for habitat‐specific responses.LocationEurope.MethodsWe used data on life forms of 8883 species recorded in 546,501 vegetation plots of different habitats (forest, grassland, scrub and wetland). For each plot, we calculated: (i) the proportion of species of each life form and (ii) the richness and evenness of life forms. We mapped these plot‐level metrics averaged across 50 km × 50 km grid cells and modelled their response to bioclimatic variables.ResultsHemicryptophytes were the most widespread life form, especially in the temperate zone of Central Europe. Conversely, therophyte and chamaephyte species were more common in the Mediterranean as well as in the dry temperate regions. Moreover, chamaephytes were also more common in the boreal and arctic zones. Higher proportions of phanerophytes were found in the Mediterranean. Overall, a higher richness of life forms was found at lower latitudes while evenness showed more spatially heterogeneous patterns. Habitat type was the main discriminator for most of the responses analysed, but several moisture‐related predictors still showed a marked effect on the diversity of therophytes and chamaephytes.ConclusionsOur maps can be used as a tool for future biogeographic and macro‐ecological research at a continental scale. Habitat type and bioclimatic conditions are key for regulating the diversity and distribution of plant life forms, with concomitant consequences for the response of functional diversity in European vegetation to global environmental changes.

Publisher

Wiley

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