Grape cultivars adapted to hotter, drier growing regions exhibit greater photosynthesis in hot conditions despite less drought-resistant leaves

被引:2
作者
Sinclair, Gabriela [1 ]
Galarneau, Erin R. [2 ]
Hnizdor, Josh F. [1 ]
McElrone, Andrew J. [1 ,3 ]
Walker, Michael Andrew [1 ]
Bartlett, Megan K. [1 ]
机构
[1] Univ Calif Davis, Dept Viticulture & Enol, Davis, CA 95616 USA
[2] USDA ARS, Plant Genet Resources Unit, Geneva, NY 14456 USA
[3] USDA ARS, Crops Pathol & Genet Res Unit, Davis, CA 95616 USA
基金
美国国家科学基金会;
关键词
Grapevine; viticulture; osmotic adjustment; osmotic potential; drought tolerance; solute accumulation; inorganic ions; climate change; TURGOR LOSS POINT; OSMOTIC ADJUSTMENT; CLIMATE-CHANGE; WATER RELATIONS; GAS-EXCHANGE; RESPONSES; STRESS; TOLERANCE; VULNERABILITY; PLASTICITY;
D O I
10.1093/aob/mcae032
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background and Aims Many agricultural areas are expected to face hotter, drier conditions from climate change. Understanding the mechanisms that crops use to mitigate these stresses can guide breeding for more tolerant plant material. We tested relationships between traits, physiological function in hot conditions and historical climate associations to evaluate these mechanisms for winegrapes. We expected a more negative leaf osmotic potential at full hydration (pi o), which reduces leaf turgor loss during drought, and either a metabolically cheaper or more osmoprotectant leaf chemical composition, to allow cultivars associated with hot, dry regions to maintain greater gas exchange in hot growing conditions.Methods We measured pi o, gas exchange and leaf chemistry for seven commercially important winegrape cultivars that vary widely in historical climate associations. Vines were grown in common-garden field conditions in a hot wine-growing region (Davis, CA, USA) and measured over the hottest period of the growing season (July-September).Key Results The value of pi o varied significantly between cultivars, and all cultivars significantly reduced pi o (osmotically adjusted) over the study period, although osmotic adjustment did not vary across cultivars. The value of pi o was correlated with gas exchange and climate associations, but in the direction opposite to expected. Photosynthesis and pi o were higher in the cultivars associated with hotter, less humid regions. Leaf chemical composition varied between cultivars but was not related to climate associations.Conclusions These findings suggest that maintenance of leaf turgor is not a primary limitation on grapevine adaptation to hot or atmospherically dry growing conditions. Thus, selecting for a more negative pi o or greater osmotic adjustment is not a promising strategy to develop more climate-resilient grape varieties, contrary to findings for other crops. Future work is needed to identify the mechanisms increasing photosynthesis in the cultivars associated with hot, dry regions.
引用
收藏
页码:205 / 218
页数:14
相关论文
共 49 条
[1]  
Alsina MM, 2007, VITIS, V46, P1
[2]  
Alston JM, 2019, COMPEND PL GENOME, P1, DOI 10.1007/978-3-030-18601-2_1
[3]  
Anderson K., 2020, Which Winegrape Varieties Are Grown Where? A Global Empirical Picture, DOI DOI 10.20851/WINEGRAPES
[4]   The role of desiccation tolerance in determining tree species distributions along the Malay-Thai Peninsula [J].
Baltzer, J. L. ;
Davies, S. J. ;
Bunyavejchewin, S. ;
Noor, N. S. M. .
FUNCTIONAL ECOLOGY, 2008, 22 (02) :221-231
[5]   Temperature and evaporative demand drive variation in stomatal and hydraulic traits across grape cultivars [J].
Bartlett, Megan K. ;
Sinclair, Gabriela .
JOURNAL OF EXPERIMENTAL BOTANY, 2021, 72 (05) :1995-2009
[6]   The correlations and sequence of plant stomatal, hydraulic, and wilting responses to drought [J].
Bartlett, Megan K. ;
Klein, Tamir ;
Jansen, Steven ;
Choat, Brendan ;
Sack, Lawren .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (46) :13098-13103
[7]   Global analysis of plasticity in turgor loss point, a key drought tolerance trait [J].
Bartlett, Megan K. ;
Zhang, Ya ;
Kreidler, Nissa ;
Sun, Shanwen ;
Ardy, Rico ;
Cao, Kunfang ;
Sack, Lawren .
ECOLOGY LETTERS, 2014, 17 (12) :1580-1590
[8]   The determinants of leaf turgor loss point and prediction of drought tolerance of species and biomes: a global meta-analysis [J].
Bartlett, Megan K. ;
Scoffoni, Christine ;
Sack, Lawren .
ECOLOGY LETTERS, 2012, 15 (05) :393-405
[9]   Osmotic adjustment is a prime drought stress adaptive engine in support of plant production [J].
Blum, Abraham .
PLANT CELL AND ENVIRONMENT, 2017, 40 (01) :4-10
[10]   Drought will not leave your glass empty: Low risk of hydraulic failure revealed by long-term drought observations in world's top wine regions [J].
Charrier, Guillaume ;
Delzon, Sylvain ;
Domec, Jean-Christophe ;
Zhang, Li ;
Delmas, Chloe E. L. ;
Merlin, Isabelle ;
Corso, Deborah ;
King, Andrew ;
Ojeda, Hernan ;
Ollat, Nathalie ;
Prieto, Jorge A. ;
Scholach, Thibaut ;
Skinner, Paul ;
van Leeuwen, Cornelis ;
Gambetta, Gregory A. .
SCIENCE ADVANCES, 2018, 4 (01)