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

IF 3.6 2区 生物学 Q1 PLANT SCIENCES Annals of botany Pub Date : 2024-07-09 DOI:10.1093/aob/mcae032
Gabriela Sinclair, Erin R Galarneau, Josh F Hnizdor, Andrew J McElrone, Michael Andrew Walker, Megan K Bartlett
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Abstract

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 (πo), 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 πo, 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 πo varied significantly between cultivars, and all cultivars significantly reduced πo (osmotically adjusted) over the study period, although osmotic adjustment did not vary across cultivars. The value of πo was correlated with gas exchange and climate associations, but in the direction opposite to expected. Photosynthesis and πo 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 πo 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.

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尽管葡萄叶片的抗旱性较差,但适应更炎热、更干燥生长地区的葡萄栽培品种在炎热条件下表现出更强的光合作用。
背景和目的:预计许多农业地区将面临气候变化带来的更炎热、更干旱的条件。了解作物用于缓解这些压力的机制可以指导培育更耐受的植物材料。我们测试了葡萄的性状、高温条件下的生理功能和历史气候关联之间的关系,以评估这些机制。我们期望叶片在完全水合时的渗透势(πo)为负值,从而减少干旱时叶片的张力损失,同时期望叶片化学成分的代谢成本更低或渗透保护作用更强,从而使与炎热干旱地区相关的栽培品种在炎热的生长条件下保持更强的气体交换能力:我们测量了 7 个商业上重要的酿酒葡萄栽培品种的πo、气体交换和叶片化学成分。葡萄树在炎热的葡萄种植区(加利福尼亚州戴维斯)的普通园地条件下生长,并在生长季节最炎热的时期(7 月至 9 月)进行测量:πo与气体交换和气候相关,但方向与预期相反。与较热、较少湿度地区相关的栽培品种光合作用和πo较高。不同栽培品种的叶片化学成分各不相同,但与气候无关:这些研究结果表明,叶片张力的维持并不是葡萄适应炎热或大气干燥生长条件的主要限制因素。因此,与其他作物的研究结果相反,选择更负πo或渗透调节能力更强的品种并不是培育气候适应性更强的葡萄品种的有效策略。未来还需要开展工作,确定与炎热干旱地区相关的栽培品种光合作用的增强机制。
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来源期刊
Annals of botany
Annals of botany 生物-植物科学
CiteScore
7.90
自引率
4.80%
发文量
138
审稿时长
3 months
期刊介绍: Annals of Botany is an international plant science journal publishing novel and rigorous research in all areas of plant science. It is published monthly in both electronic and printed forms with at least two extra issues each year that focus on a particular theme in plant biology. The Journal is managed by the Annals of Botany Company, a not-for-profit educational charity established to promote plant science worldwide. The Journal publishes original research papers, invited and submitted review articles, ''Research in Context'' expanding on original work, ''Botanical Briefings'' as short overviews of important topics, and ''Viewpoints'' giving opinions. All papers in each issue are summarized briefly in Content Snapshots , there are topical news items in the Plant Cuttings section and Book Reviews . A rigorous review process ensures that readers are exposed to genuine and novel advances across a wide spectrum of botanical knowledge. All papers aim to advance knowledge and make a difference to our understanding of plant science.
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