Longer growing seasons will not offset growth loss in drought-prone temperate forests of Central-Southeast Europe

J Jan Tumajer J Jakub Kašpar (Department of Physical Geography and Geoecology, Charles University) J Jan Altman N Nela Altmanova J J. Julio Camarero (Instituto Pirenaico de Ecología, Consejo Superior de Investigaciones Científicas) E Emil Cienciala V Vojtěch Čada T Tomáš Čihák J Jiri Dolezal P Pavel Fibich P Pavel Janda R Ryszard Kaczka T Tomáš Kolář J Jiří Lehejček J Jiří Mašek R Radim Matula K Kateřina Neudertová Hellebrandová L Lenka Plavcová M Michal Rybníček M Miloš Rydval R Rohan Shetti M Miroslav Svoboda M Martin Šenfeldr P Pavel Šamonil I Ivana Vašíčková M Monika Vejpustková V Václav Treml (Department of Physical Geography and Geoecology, Charles University)

Abstract

Abstract The radial growth of temperate forests responds to climate change with remarkable variation across space and between species. However, there is limited understanding of how growing season extension and increasing drought stress contribute to long-term growth trends. Here, we calibrate the VS-Lite growth model using 2013 tree-ring chronologies from ten broadleaved and five coniferous genera in Central-Southeast Europe to predict intra-annual wood formation under four SSP climate scenarios through the 21 st century. Results show that forecasted summer drought stress will be temporarily offset by an extended growing season, leading to stable or positive trends in tree-ring widths until a tipping point in the 2040s–2050s. During the second half of the 21 st century, high-emission scenarios lead to growth acceleration in humid coniferous forests due to growing season extension and enhanced growth rate. In contrast, forecasted extension of the growing season is insufficient to compensate for declining summer growth rates at drier sites, resulting in significant growth reduction for all genera, particularly during dry years. Our results demonstrate that adjusting intra-annual wood formation to seasonal moisture availability may become crucial for tree survival in warmer climates. Furthermore, we highlight that only low-emission scenarios support non-declining stem growth in dry forests with current species composition.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 29, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (27)

J

Jan Tumajer

J

Jakub Kašpar

Department of Physical Geography and Geoecology, Charles University

J

Jan Altman

N

Nela Altmanova

J

J. Julio Camarero

Instituto Pirenaico de Ecología, Consejo Superior de Investigaciones Científicas

E

Emil Cienciala

V

Vojtěch Čada

T

Tomáš Čihák

J

Jiri Dolezal

P

Pavel Fibich

P

Pavel Janda

R

Ryszard Kaczka

T

Tomáš Kolář

J

Jiří Lehejček

J

Jiří Mašek

R

Radim Matula

K

Kateřina Neudertová Hellebrandová

L

Lenka Plavcová

M

Michal Rybníček

M

Miloš Rydval

R

Rohan Shetti

M

Miroslav Svoboda

M

Martin Šenfeldr

P

Pavel Šamonil

I

Ivana Vašíčková

M

Monika Vejpustková

V

Václav Treml

Department of Physical Geography and Geoecology, Charles University