Soil‐plant hydraulics explain stomatal efficiency‐safety tradeoff

Author:

Cai Gaochao1,Carminati Andrea2ORCID,Gleason Sean M.3ORCID,Javaux Mathieu4,Ahmed Mutez Ali56

Affiliation:

1. School of Agriculture Shenzhen Campus of Sun Yat‐sen University Shenzhen China

2. Physics of Soils and Terrestrial Ecosystems, Institute of Terrestrial Ecosystems, Department of Environmental Systems Science ETH Zürich Zurich Switzerland

3. United States Department of Agriculture, Water Management and Systems Research Unit Agricultural Research Service Fort Collins Colorado USA

4. Earth and Life Institute‐Environmental Science Universite catholique de Louvain Louvain‐la‐Neuve Belgium

5. Chair of Soil Physics, Bayreuth Center of Ecology and Environmental Research (BayCEER) University of Bayreuth Bayreuth Germany

6. Department of Land, Air and Water Resources, College of Agricultural and Environmental Sciences University of California Davis Davis California USA

Abstract

AbstractThe efficiency‐safety tradeoff has been thoroughly investigated in plants, especially concerning their capacity to transport water and avoid embolism. Stomatal regulation is a vital plant behaviour to respond to soil and atmospheric water limitation. Recently, a stomatal efficiency‐safety tradeoff was reported where plants with higher maximum stomatal conductance (gmax) exhibited greater sensitivity to stomatal closure during soil drying, that is, less negative leaf water potential at 50% gmax (ψgs50). However, the underlying mechanism of this gmaxψgs50 tradeoff remains unknown. Here, we utilized a soil‐plant hydraulic model, in which stomatal closure is triggered by nonlinearity in soil‐plant hydraulics, to investigate such tradeoff. Our simulations show that increasing gmax is aligned with less negative ψgs50. Plants with higher gmax (also higher transpiration) require larger quantities of water to be moved across the rhizosphere, which results in a precipitous decrease in water potential at the soil‐root interface, and therefore in the leaves. We demonstrated that the gmaxψgs50 tradeoff can be predicted based on soil‐plant hydraulics, and is impacted by plant hydraulic properties, such as plant hydraulic conductance, active root length and embolism resistance. We conclude that plants may therefore adjust their growth and/or their hydraulic properties to adapt to contrasting habitats and climate conditions.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Plant Science,Physiology

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