Declining soil-root hydraulic conductance drives stomatocal closure of tomato under drought

Abdalla, Mohanned;Carminati, Andrea;Cai, Gaochao;Javaux, Mathieu;Ahmed, Mutez
(2021) EGU General Assembly 2021 — Location: www (19.April.2021)

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Authors
  • Abdalla, MohannedChair of Soil Physics, Bayreuth Center of Ecology and Environmental Research, University of Bayreugh, Germany
    Author
  • Carminati, AndreaInstitute of Terrestrial Ecosystems, Depart. of Environmental Systems Science, ETH Zürich, Switzerland
    Author
  • Cai, GaochaoBiochemistry of Agroecosystem, University of Göttingen, Germany
    Author
  • Author
  • Ahmed, MutezBiochemistry of Agroecosystem, University of Göttingen, Germany
    Author
Abstract
The fundamental question as to what triggers stomatal closure during soil drying remains contentious. Thus, we urgently need to improve our understanding of stomatal response to water deficits in soil and atmosphere. Here, we investigated the role of soil-plant hydraulic conductance (Ksp) on transpiration (E) and stomata regulation. We used a root pressure chamber to measure the relation between E, leaf xylem water potential (ψleaf-x) and soil water potential (ψsoil) in tomato. Additional measurements of ψleaf-x were performed with unpressurized plants. A soil-plant hydraulic model was used to simulate E(ψleaf-x) for decreasing ψsoil. In wet soils, E(ψleaf-x) had a constant slope while in dry soils the slope decreased, with ψleaf-x rapidly and nonlinearly decreasing for moderate increases in E. The ψleaf-x measured in pressurized and unpressurized plants matched well, which indicates that the shoot hydraulic conductance did not decrease during soil drying and that the decrease in Ksp is caused by a decrease in soil-root conductance. The decrease of E matched well the onset of hydraulic nonlinearity. Our findings demonstrate that stomatal closure prevents the drop in ψleaf-x caused by a decrease in Ksp and elucidate a strong correlation between stomatal regulation and belowground hydraulic limitation.
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Citations

Abdalla, M., Carminati, A., Cai, G., Javaux, M., & Ahmed, M. (2021). Declining soil-root hydraulic conductance drives stomatocal closure of tomato under drought. Geophysical Research Abstracts, EGU2021-4192. https://doi.org/10.5194/egusphere-egu21-4192 (Original work published 2021)