Aridity and cold temperatures drive divergent adjustments of European beech xylem anatomy, hydraulics and leaf physiological traits

Author:

Vicente Eduardo12ORCID,Didion-Gency Margaux34,Morcillo Luna2,Morin Xavier5,Vilagrosa Alberto2ORCID,Grossiord Charlotte67

Affiliation:

1. Department of Ecology , Faculty of Sciences, IMEM Ramón Margalef, University of Alicante, C. San Vicente del Raspeig, s/n, Alicante 03080 , Spain

2. CEAM Foundation , Joint Research Unit University of Alicante-CEAM, Department of Ecology, University of Alicante, PO Box 99, C. San Vicente del Raspeig, s/n, Alicante 03080 , Spain

3. Ecosystem Ecology , Forest Dynamics Unit, , Zürcherstrasse 111, Birmensdorf 8903 , Switzerland

4. Swiss Federal Institute for Forest, Snow and Landscape WSL , Forest Dynamics Unit, , Zürcherstrasse 111, Birmensdorf 8903 , Switzerland

5. CEFE UMR 5175 (CNRS, Université de Montpellier, Université Paul-Valéry Montpellier, EPHE, IRD) , 1919 Route de Mende, Montpellier Cedex 5 F-34293 , France

6. Plant Ecology Research Laboratory PERL , School of Architecture, Civil and Environmental Engineering, EPFL, PO box 96, Lausanne CH-1015 , Switzerland

7. Functional Plant Ecology , Community Ecology Unit, Swiss Federal Institute for Forest, Snow and Landscape WSL, PO box 96, Lausanne CH-1015 , Switzerland

Abstract

Abstract Understanding plant trait coordination and variance across climatic gradients is critical for assessing forests’ adaptive potential to climate change. We measured 11 hydraulic, anatomical and leaf-level physiological traits in European beech (Fagus sylvatica L.) along a moisture and temperature gradient in the French Alps. We assessed how traits covaried, and how their population-level variances shifted along the gradient. The intrapopulation variances of vessel size and xylem-specific conductivity reduced in colder locations as narrow vessels were observed in response to low temperature. This decreased individual-level water transport capacity compared with the warmer and more xeric sites. Conversely, the maximum stomatal conductance and Huber value variances were constrained in the arid and warm locations, where trees showed restricted gas exchange and higher xylem-specific conductivity. The populations growing under drier and warmer conditions presented wide variance for the xylem anatomical and hydraulic traits. Our results suggest that short-term physiological acclimation to raising aridity and heat in southern beech populations may occur mainly at the leaf level. Furthermore, the wide variance of the xylem anatomical and hydraulic traits at these sites may be advantageous since more heterogeneous hydraulic conductivity could imply populations’ greater tree–tree complementarity and resilience against climatic variability. Our study highlights that both intrapopulation trait variance and trait network analysis are key approaches for understanding species adaptation and the acclimation potential to a shifting environment.

Funder

Spanish Ministry of Economy and Competitiveness

INERTIA

IMAGINA

MICINN

Swiss National Science Foundation

Sandoz Family Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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