The role of height-driven constraints and compensations on tree vulnerability to drought

IF 9.4 1区 生物学 Q1 Agricultural and Biological Sciences
New Phytologist Pub Date : 2023-07-23 DOI:10.1111/nph.19130
Laura Fernández-de-U?a, Jordi Martínez-Vilalta, Rafael Poyatos, Maurizio Mencuccini, Nate G. McDowell
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引用次数: 3

Abstract

Frequent observations of higher mortality in larger trees than in smaller ones during droughts have sparked an increasing interest in size-dependent drought-induced mortality. However, the underlying physiological mechanisms are not well understood, with height-associated hydraulic constraints often being implied as the potential mechanism driving increased drought vulnerability. We performed a quantitative synthesis on how key traits that drive plant water and carbon economy change with tree height within species and assessed the implications that the different constraints and compensations may have on the interacting mechanisms (hydraulic failure, carbon starvation and/or biotic-agent attacks) affecting tree vulnerability to drought. While xylem tension increases with tree height, taller trees present a range of structural and functional adjustments, including more efficient water use and transport and greater water uptake and storage capacity, that mitigate the path-length-associated drop in water potential. These adaptations allow taller trees to withstand episodic water stress. Conclusive evidence for height-dependent increased vulnerability to hydraulic failure and carbon starvation, and their coupling to defence mechanisms and pest and pathogen dynamics, is still lacking. Further research is needed, particularly at the intraspecific level, to ascertain the specific conditions and thresholds above which height hinders tree survival under drought.

高度驱动的约束和补偿对树木干旱脆弱性的影响
在干旱期间,经常观察到较大树木的死亡率高于较小树木的死亡率,这引起了人们对大小相关的干旱引起的死亡率的日益关注。然而,潜在的生理机制尚未得到很好的理解,与高度相关的水力约束通常被暗示为驱动干旱脆弱性增加的潜在机制。我们对驱动植物水分和碳经济的关键性状如何随树种高度变化进行了定量综合,并评估了不同的约束和补偿可能对影响树木干旱脆弱性的相互作用机制(水力失效、碳饥饿和/或生物制剂攻击)的影响。虽然木质部张力随着树高的增加而增加,但较高的树表现出一系列结构和功能调整,包括更有效的水分利用和运输以及更大的水分吸收和储存能力,从而减轻了与路径长度相关的水势下降。这些适应使高大的树木能够承受间歇性的缺水压力。目前仍缺乏确凿的证据表明,高度依赖增加了对水力失效和碳饥饿的脆弱性,以及它们与防御机制和病虫害和病原体动力学的耦合。需要进一步的研究,特别是在种内水平上,以确定高度在干旱情况下阻碍树木生存的具体条件和阈值。
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来源期刊
New Phytologist
New Phytologist PLANT SCIENCES-
CiteScore
17.60
自引率
5.30%
发文量
728
审稿时长
1 months
期刊介绍: New Phytologist is a leading publication that showcases exceptional and groundbreaking research in plant science and its practical applications. With a focus on five distinct sections - Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology - the journal covers a wide array of topics ranging from cellular processes to the impact of global environmental changes. We encourage the use of interdisciplinary approaches, and our content is structured to reflect this. Our journal acknowledges the diverse techniques employed in plant science, including molecular and cell biology, functional genomics, modeling, and system-based approaches, across various subfields.
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