Contrasting the soil-plant hydraulics of beech and spruce by linking root water uptake to transpiration dynamics.

Peter Molnar, Andrea Carminati, Stefano Martinetti, Marius G Floriancic

Journal: Tree physiology 2025;45(1):

PMID: 39658309

Abstract

Tree water status is mainly determined by the amount of water taken up from roots and lost through leaves by transpiration. Variations in transpiration and stomatal conductance are often related to atmospheric conditions and leaf water potential. Yet, few experimental datasets exist that enable to relate leaf water potential, transpiration dynamics and temporal variation of root water uptake from different depths during soil drying. Here we explored the soil-plant hydraulic system using field measurements of water potentials and fluxes in soils, roots, stems and leaves of beech (Fagus sylvatica) and spruce (Picea abies) trees. Spruce maintained less negative water potentials than beech during soil drying, reflecting a more stringent stomatal control. While root water uptake depths were similar between species, water potentials in plant tissues of spruce were rather constant and less correlated across roots and the stem, possibly because of large water storage and hydraulic capacitance in these tissues. Root water uptake from deep soil layers increased during dry periods, particularly for beech. Our data suggest that species-specific root hydraulic conductance, capacitance and water uptake strategy are linked and affect transpiration dynamics. Thus, it is important to include such species-specific hydraulics when predicting transpiration rates based on plant water status.

© The Author(s) 2024. Published by Oxford University Press.

Address: Department of Civil, Environmental and Geomatic Engineering, ETH Zürich, HIF D 11, Laura-Hezner-Weg 7, 8093 Zürich, Switzerland.; Department of Environmental Systems Science, ETH Zürich, 8092 Zürich, Switzerland.; Department of Civil, Environmental and Geomatic Engineering, ETH Zürich, HIF D 11, Laura-Hezner-Weg 7, 8093 Zürich, Switzerland.; Department of Environmental Systems Science, ETH Zürich, 8092 Zürich, Switzerland.
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