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No Future Growth Enhancement Expected at the Northern Edge for European Beech due to Continued Water Limitation

  • Stefan Klesse
  • , Richard L Peters
  • , Raquel Alfaro-Sánchez
  • , Vincent Badeau
  • , Claudia Baittinger
  • , Giovanna Battipaglia
  • , Didier Bert
  • , Franco Biondi
  • , Michal Bosela
  • , Marius Budeanu
  • , Vojtěch Čada
  • , J.  Julio Camarero
  • , Liam Cavin
  • , Hugues Claessens
  • , Ana Maria Cretan
  • , Katarina Čufar
  • , Martin de Luis
  • , Isabel Dorado-Liñán
  • , Choimaa Dulamsuren
  • , Josep Maria Espelta
  • Balazs Garamszegi, Michael Grabner, Jozica Gricar, Andrew Hacket-Pain, Jon Kehlet Hansen, Claudia Hartl, Andrea Hevia, Martina Hobi, Pavel Janda, Alistair S Jump, Jakub Kašpar, Marko Kazimirović, Srdjan Keren, Juergen Kreyling, Alexander Land, Nicolas Latte, François Lebourgeois, Christoph Leuschner, Mathieu Lévesque, Luis A Longares, Edurne Martinez del Castillo, Annette Menzel, Maks Merela, Martin Mikoláš, Renzo Motta, Lena Muffler, Anna Neycken, Paola Nola, Momchil Panayotov, Any Mary Petritan, Ion Catalin Petritan, Ionel Popa, Peter Prislan, Tom Levanič, Catalin Constantin Roibu, Álvaro Rubio-Cuadrado, Raúl Sánchez-Salguero, Pavel Šamonil, Branko Stajić, Miroslav Svoboda, Roberto Tognetti, Elvin Toromani, Volodymyr Trotsiuk, Ernst van der Maaten, Marieke van der Maaten-Theunissen, Astrid Vannoppen, Ivana Vašíčková, Georg von Arx, Martin Wilmking, Robert Weigel, Tzvetan Zlatanov, Christian Zang, Allan Buras
  • Snow and Landscape Research WSL
  • University of Bern
  • University of Basel
  • University of Castilla-La Ancha
  • Canadian Forest Service
  • LORIA, UMR 7503, University of Lorraine
  • National Museum of Denmark
  • University of Campania “Luigi Vanvitelli”
  • Université de Bordeaux
  • University of Nevada, Reno
  • Technical University in Zvolen
  • National Forest Centre - Forest Research Institute Zvolen
  • National Institute for Research and Development in Forestry ”Marin Dracea”
  • Czech University of Life Sciences Prague
  • Pyrenean Institute of Ecology
  • University of Sterling
  • University of Liège
  • Transilvania University of Brasov
  • Univ. of Ljubljana
  • University of Zaragoza
  • Escuela Técnica Superior de Ingeniería de Montes, Forestal y del Medio Natural
  • Albert-Ludwigs-Universität Freiburg
  • CREAF - Centre de Recerca Ecològica i Aplicacions Forestals
  • University of Natural Resources and Applied Life Sciences
  • Slovenian Forestry Institute
  • University of Liverpool
  • University of Copenhagen
  • Nature Rings – Environmental Research and Education
  • University of Seville
  • Pablo de Olavide University of Seville
  • Silva Tarouca Research Institute
  • University of Belgrade
  • University of Agriculture
  • Ernst-Moritz-Arndt Universität Greifswald
  • Hohenheim University
  • Georg-August-Universität Göttingen
  • ETH Zürich
  • Johannes Gutenberg University
  • University of Torino
  • Universität Bayreuth
  • University of Pavia
  • University of Forestry
  • Center for Mountain Economy - CE-MONT
  • University Stefan Cel Mare of Suceava
  • Mendel University
  • Free University of Bozen-Bolzano
  • Agricultural University of Tirana
  • Technische Universität Dresden
  • Flemish Institute for Technological Research (VITO)
  • Bulgarian Academy of Sciences
  • Hochschule Weihenstephan-Triesdorf

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

With ongoing global warming, increasing water deficits promote physiological stress on forest ecosystems with negative impacts on tree growth, vitality, and survival. How individual tree species will react to increased drought stress is therefore a key research question to address for carbon accounting and the development of climate change mitigation strategies. Recent tree-ring studies have shown that trees at higher latitudes will benefit from warmer temperatures, yet this is likely highly species-dependent and less well-known for more temperate tree species. Using a unique pan-European tree-ring network of 26,430 European beech (Fagus sylvatica L.) trees from 2118 sites, we applied a linear mixed-effects modeling framework to (i) explain variation in climate-dependent growth and (ii) project growth for the near future (2021–2050) across the entire distribution of beech. We modeled the spatial pattern of radial growth responses to annually varying climate as a function of mean climate conditions (mean annual temperature, mean annual climatic water balance, and continentality). Over the calibration period (1952–2011), the model yielded high regional explanatory power (R2 = 0.38–0.72). Considering a moderate climate change scenario (CMIP6 SSP2-4.5), beech growth is projected to decrease in the future across most of its distribution range. In particular, projected growth decreases by 12%–18% (interquartile range) in northwestern Central Europe and by 11%–21% in the Mediterranean region. In contrast, climate-driven growth increases are limited to around 13% of the current occurrence, where the historical mean annual temperature was below ~6°C. More specifically, the model predicts a 3%–24% growth increase in the high-elevation clusters of the Alps and Carpathian Arc. Notably, we find little potential for future growth increases (−10 to +2%) at the poleward leading edge in southern Scandinavia. Because in this region beech growth is found to be primarily water-limited, a northward shift in its distributional range will be constrained by water availability.

Original languageEnglish
Article numbere17546
JournalGlobal Change Biology
Volume30
Issue number10
DOIs
StatePublished - Oct 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • Fagus sylvatica
  • climate change
  • climate sensitivity
  • drought
  • growth projection
  • leading edge
  • trailing edge
  • tree rings

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