Coordinated decline of leaf hydraulic and stomatal conductances under drought is not linked to leaf xylem embolism for different grapevine cultivars

Author:

Albuquerque Caetano1ORCID,Scoffoni Christine2ORCID,Brodersen Craig R3ORCID,Buckley Thomas N4ORCID,Sack Lawren5ORCID,McElrone Andrew J16ORCID

Affiliation:

1. Department of Viticulture and Enology, University of California, Davis, 595 Hilgard Lane, Davis, CA, USA

2. Department of Biological Sciences, California State University, Los Angeles, 5151 State University Drive, Los Angeles, CA, USA

3. School of the Environment, Yale University, 195 Prospect Street, New Haven, CT, USA

4. Department of Plant Sciences, University of California, Davis, One Shields Avenue, Davis, CA, USA

5. Department of Ecology and Evolutionary Biology, University of California Los Angeles, 621 Charles E. Young Drive South, Los Angeles, CA, USA

6. USDA-Agricultural Research Service, Davis, CA, USA

Abstract

Abstract Drought decreases water transport capacity of leaves and limits gas exchange, which involves reduced leaf leaf hydraulic conductance (Kleaf) in both the xylem and outside-xylem pathways. Some literature suggests that grapevines are hyper-susceptible to drought-induced xylem embolism. We combined Kleaf and gas exchange measurements, micro-computed tomography of intact leaves, and spatially explicit modeling of the outside-xylem pathways to evaluate the role of vein embolism and Kleaf in the responses of two different grapevine cultivars to drought. Cabernet Sauvignon and Chardonnay exhibited similar vulnerabilities of Kleaf and gs to dehydration, decreasing substantially prior to leaf xylem embolism. Kleaf and gs decreased by 80% for both cultivars by Ψ leaf approximately –0.7 MPa and –1.2 MPa, respectively, while leaf xylem embolism initiated around Ψ leaf = –1.25 MPa in the midribs and little to no embolism was detected in minor veins even under severe dehydration for both cultivars. Modeling results indicated that reduced membrane permeability associated with a Casparian-like band in the leaf vein bundle sheath would explain declines in Kleaf of both cultivars. We conclude that during moderate water stress, changes in the outside-xylem pathways, rather than xylem embolism, are responsible for reduced Kleaf and gs. Understanding this mechanism could help to ensure adequate carbon capture and crop performance under drought.

Funder

USDA-ARS Sustainable Vineyard Production Systems CRIS

CAPES/Brazil

Office of Science

Office of Basic Energy Sciences

US Department of Energy

National Science Foundation

USDA National Institute of Food and Agriculture

Almond Board of California

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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