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A stomatal safety-efficiency trade-off constrains responses to leaf dehydration

机译:气孔安全-效率的权衡限制了对叶片脱水的反应

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摘要

Stomata, the microvalves on leaf surfaces, exert major influences across scales, from plant growth and productivity to global carbon and water cycling. Stomatal opening enables leaf photosynthesis, and plant growth and water use, whereas plant survival of drought depends on stomatal closure. Here we report that stomatal function is constrained by a safety-efficiency trade-off, such that species with greater stomatal conductance under high water availability (gmax) show greater sensitivity to closure during leaf dehydration, i.e., a higher leaf water potential at which stomatal conductance is reduced by 50% (Ψgs50). The gmax - Ψgs50 trade-off and its mechanistic basis is supported by experiments on leaves of California woody species, and in analyses of previous studies of the responses of diverse flowering plant species around the world. Linking the two fundamental key roles of stomata—the enabling of gas exchange, and the first defense against drought—this trade-off constrains the rates of water use and the drought sensitivity of leaves, with potential impacts on ecosystems.
机译:气孔是叶片表面的微瓣,从植物的生长和生产力到全球碳和水循环,在各个尺度上都发挥着重要作用。气孔开放能使叶片光合作用,促进植物生长和水分利用,而干旱的植物存活取决于气孔关闭。在这里,我们报告气孔功能受到安全-效率折衷的限制,因此在高水分利用量(gmax)下具有较大气孔导度的物种对叶片脱水过程中的闭合表现出更高的敏感性,即气孔处叶片水势较高电导降低了50%(Ψgs50)。 gmax-Ψgs50的折衷及其机理基础得到了加利福尼亚木本植物叶片的实验以及对世界各地不同开花植物物种响应的先前研究的分析的支持。将气孔的两个基本关键作用联系在一起,即能够进行气体交换和对干旱的第一道防御,这种权衡取舍限制了水的利用率和叶片对干旱的敏感性,并对生态系统产生了潜在影响。

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