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Acclimation to High Vapor Pressure Deficit in Warmer Air Can Reduce Tree Vulnerability to Drought‐Induced Mortality
Author(s) -
Mekarni Laura,
Cochard Hervé,
Grossiord Charlotte
Publication year - 2025
Publication title -
plant, cell and environment
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.646
H-Index - 200
eISSN - 1365-3040
pISSN - 0140-7791
DOI - 10.1111/pce.15490
Subject(s) - vapour pressure deficit , acclimatization , stomatal conductance , environmental science , xylem , horticulture , biology , turgor pressure , drought tolerance , atmospheric sciences , botany , agronomy , transpiration , photosynthesis , geology
ABSTRACT Climate change imposes new constraints on tree survival, emphasising two key parameters: the vapour pressure deficit (VPD) and air temperature. Yet, no study has experimentally evaluated drought‐induced tree mortality risk following acclimation to elevated temperatures with low or high VPD. Three tree species of contrasting temperature and drought tolerances ( Prunus mahaleb, Quercus robur , and Populus nigra ) underwent a growing season of acclimation to elevated temperature and/or VPD, and a lethal drought the following year until stem hydraulic failure was confirmed through micro‐CT. Our mechanistic approach to assess temperature and VPD acclimation impacts on drought‐induced mortality includes tracking stomatal conductance (g s ), minimum stomatal conductance (g min ), total leaf area (LA tot ), water potential at turgor loss point (Ψ TLP ), and estimating the time to hydraulic failure using modelling. Acclimation to elevated VPD and temperature accelerated stomatal closure, reduced g min , and raised Ψ TLP . In contrast, while high temperature reduced g min , it also increased LA tot and height. Consequently, hydraulic failure occurred faster in high‐temperature‐acclimated trees, while it was generally delayed by adding higher VPD. Our findings highlight that the balancing effects of temperature‐driven leaf area expansion, which accelerate mortality, and VPD‐driven acclimation in stomatal sensitivity, counteract each other, stabilising the timing of mortality.
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