Parallels between drought and flooding: An integrated framework for plant eco-physiological responses to water stress.

Q3 Agricultural and Biological Sciences
Plant-environment interactions (Hoboken, N.J.) Pub Date : 2023-06-30 eCollection Date: 2023-08-01 DOI:10.1002/pei3.10117
Siluo Chen, Kirsten H W J Ten Tusscher, Rashmi Sasidharan, Stefan C Dekker, Hugo J de Boer
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Abstract

Drought and flooding occur at opposite ends of the soil moisture spectrum yet their resulting stress responses in plants share many similarities. Drought limits root water uptake to which plants respond with stomatal closure and reduced leaf gas exchange. Flooding limits root metabolism due to soil oxygen deficiency, which also limits root water uptake and leaf gas exchange. As drought and flooding can occur consecutively in the same system and resulting plant stress responses share similar mechanisms, a single theoretical framework that integrates plant responses over a continuum of soil water conditions from drought to flooding is attractive. Based on a review of recent literature, we integrated the main plant eco-physiological mechanisms in a single theoretical framework with a focus on plant water transport, plant oxygen dynamics, and leaf gas exchange. We used theory from the soil-plant-atmosphere continuum modeling as "backbone" for our framework, and subsequently incorporated interactions between processes that regulate plant water and oxygen status, abscisic acid and ethylene levels, and the resulting acclimation strategies in response to drought, waterlogging, and complete submergence. Our theoretical framework provides a basis for the development of mathematical models to describe plant responses to the soil moisture continuum from drought to flooding.

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干旱与洪涝的相似之处:植物生态生理对水胁迫反应的综合框架。
干旱和洪涝发生在土壤湿度范围的两端,但它们对植物产生的胁迫反应却有许多相似之处。干旱限制了根系对水分的吸收,植物会通过关闭气孔和减少叶片气体交换来应对干旱。洪水会因土壤缺氧而限制根系的新陈代谢,这也会限制根系的吸水和叶片的气体交换。由于干旱和洪涝可以在同一系统中连续发生,而且植物由此产生的胁迫反应具有相似的机理,因此一个能整合从干旱到洪涝的连续土壤水分条件下植物反应的单一理论框架很有吸引力。基于对最新文献的回顾,我们将主要的植物生态生理机制整合到一个单一的理论框架中,重点关注植物水分运输、植物氧动力学和叶片气体交换。我们将土壤-植物-大气连续模型的理论作为框架的 "主干",随后纳入了调节植物水分和氧气状态、脱落酸和乙烯水平的过程之间的相互作用,以及由此产生的应对干旱、涝害和完全浸没的适应策略。我们的理论框架为建立数学模型提供了基础,以描述植物对从干旱到洪涝的土壤水分连续体的反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.70
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0.00%
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审稿时长
15 weeks
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