Intraspecific functional trait responses to experimental warming vary with precipitation and growth formCentre for Functional Ecology, Associate Laboratory TERRA, Department of Life Sciences, University of Coimbra, Coimbra, Portugal; Instituto Mediterráneo de Estudios Avanzados (IMEDEA-CSIC-UIB), Islas Baleares, Esporles, Spain.
Ecology & Evolutionary Biology Department, University of Colorado Boulder, CO, Boulder, United States.
Institute of Ecology, Leuphana University of Lüneburg, Lüneburg, Germany; Institute of General Ecology and Environmental Protection, TUD Dresden University of Technology, Dresden, Germany.
Department of Forest and Soil Sciences, Institute of Forest Ecology, University of Natural Resources and Life Sciences, Vienna, Austria.
Department of Environmental Systems Science, ETH Zürich, Zurich, Switzerland.
Center for Ecological Dynamics in a Novel Biosphere (ECONOVO), Department of Biology, Aarhus University, Aarhus, Denmark.
Institute of Ecology and Evolution, University of Edinburgh, Edinburgh, United Kingdom; Taxonomy and Macroecology, Royal Botanic Garden Edinburgh, Edinburgh, United Kingdom; Accelerated Taxonomy, Royal Botanical Garden, Kew, Richmond, United Kingdom.
Department of Biology, University of Dodoma, Dodoma, Tanzania; Senckenberg Biodiversity and Climate Research Centre-Frankfurt Am Main, Frankfurt am Main, Germany.
Department of Biological Sciences, Faculty of Science, The University of Hong Kong, Pok Fu Lam, Hong Kong.
Department of Ecology and Evolutionary Biology, University of Michigan, MI, Ann Arbor, United States.
Department of Ecology and Evolutionary Biology, University of Arizona, AZ, Tucson, United States; Department of Integrative Biology, University of South Florida, FL, St. Petersburg, United States.
Department of Biological Sciences, University of Bergen, Bergen, Norway; Bjerknes Centre for Climate Research, University of Bergen, Bergen, Norway.
Norwegian Institute for Nature Research, Bergen, Norway.
Faculty of Environmental Sciences and Natural Resource Management, Norwegian University of Life Sciences, Ås, Norway.
Department of Ecology and Evolutionary Biology, University of Arizona, AZ, Tucson, United States; Santa Fe Institute, NM, Santa Fe, United States.
Department of Botany and Biodiversity Research Centre, The University of British Columbia, BC, Vancouver, Canada.
Department of Botany, University of Wyoming, WY, Laramie, United States.
Department of Environmental Sciences, University of Basel, Basel, Switzerland.
Autonomous University of Barcelona, Cerdanyola del Vallès, Spain; Centre for Ecological Research and Forestry Applications (CREAF), Cerdanyola del Vallès, Spain.
Department of Biological Sciences, University of Bergen, Bergen, Norway; Bjerknes Centre for Climate Research, University of Bergen, Bergen, Norway.
Department of Biological Sciences, University of Bergen, Bergen, Norway; Bjerknes Centre for Climate Research, University of Bergen, Bergen, Norway.
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2025 (English)In: Journal of Vegetation Science, ISSN 1100-9233, E-ISSN 1654-1103, Vol. 36, no 6, article id e70098Article in journal (Refereed) Published
Abstract [en]
Aims: Rising ambient air temperatures may have adverse effects on alpine plant communities. To avoid extinction and to mitigate the demographic impacts of climate warming, migration and the ability to adapt become increasingly important. Experimental studies that simulate warming help test the extent and direction of functional adaptation. We ask: (1) To what extent does experimental warming drive intraspecific trait shifts in alpine species? (2) Do these trait responses vary across a precipitation gradient? (3) Do responses vary between forbs and graminoids?.
Location: Alpine grasslands along a precipitation gradient in south-western Norway.
Methods: At three alpine sites spanning 1315–3601 mm of annual precipitation, we measured 10 plant functional traits across 17 species of graminoids, perennial forbs and dwarf shrubs. We compared the traits of plants in open-top warming chambers with those under ambient temperature conditions. Effect sizes were estimated using Cohen's d and analysed with respect to precipitation regimes and growth form.
Results: Plant height generally increased in response to warming across all sites for both growth forms. For other traits, warming effects were context-dependent and varied among species. At the medium precipitation site, plants showed shifts toward more conservative resource-use strategies in response to warming, characterised by increased leaf area and leaf dry matter content, along with reduced species leaf area and leaf nitrogen concentration. The enrichment in heavier nitrogen and carbon isotopes with warming is consistent with the expectation that warming selects for individuals with high water-use efficiency. Forbs generally exhibited stronger but more variable responses to warming than graminoids.
Conclusion: Warming induces trait shifts in alpine species, but responses depend on local conditions and growth form. Predicting alpine community responses to climate change requires trait-based approaches and research designs that allow assessing and exploring patterns in both taxonomic and environmental context dependencies.
Place, publisher, year, edition, pages
John Wiley & Sons, 2025. Vol. 36, no 6, article id e70098
Keywords [en]
Alpine communities, climate change adaptation, environmental filtering, global warming, high-latitudes, plasticity, resilience
National Category
Climate Science Ecology
Identifiers
URN: urn:nbn:se:umu:diva-248467DOI: 10.1111/jvs.70098ISI: 001650042500001Scopus ID: 2-s2.0-105026660306OAI: oai:DiVA.org:umu-248467DiVA, id: diva2:2027738
Funder
The Research Council of Norway, 274712The Research Council of Norway, 274831The Research Council of Norway, 2877842026-01-132026-01-132026-01-13Bibliographically approved