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蓝光诱导的叶片伸长反应是由柳枝稷蒸腾引起的气孔变化介导的。

Leaf elongation response to blue light is mediated by stomatal-induced variations in transpiration in Festuca arundinacea.

机构信息

INRAE, UR P3F, Lusignan, France.

Plant Sciences Unit, Institute for Agricultural and Fisheries Research (ILVO), Melle, Belgium.

出版信息

J Exp Bot. 2021 Mar 29;72(7):2642-2656. doi: 10.1093/jxb/eraa585.

Abstract

Reduced blue light irradiance is known to enhance leaf elongation rate (LER) in grasses, but the mechanisms involved have not yet been elucidated. We investigated whether leaf elongation response to reduced blue light could be mediated by stomata-induced variations of plant transpiration. Two experiments were carried out on tall fescue in order to monitor LER and transpiration under reduced blue light irradiance. Additionally, LER dynamics were compared with those observed in the response to vapour pressure deficit (VPD)-induced variations of transpiration. Finally, we developed a model of water flow within a tiller to simulate the observed short-term response of LER to various transpiration regimes. LER dramatically increased in response to blue light reduction and then reached new steady states, which remained higher than the control. Reduced blue light triggered a simultaneous stomatal closure which induced an immediate decrease of leaf transpiration. The hydraulic model of leaf elongation accurately predicted the LER response to blue light and VPD, resulting from an increase in the growth-induced water potential gradient in the leaf growth zone. Our results suggest that the blue light signal is sensed by stomata of expanded leaves and transduced to the leaf growth zone through the hydraulic architecture of the tiller.

摘要

已知减少蓝光辐照度可以提高草本植物的叶片伸长率(LER),但其中涉及的机制尚未阐明。我们研究了减少蓝光辐照度对叶片伸长的响应是否可以通过气孔诱导的植物蒸腾变化来介导。为了监测减少蓝光辐照度下的 LER 和蒸腾作用,我们在高羊茅上进行了两项实验。此外,将 LER 动态与响应蒸气压亏缺(VPD)诱导的蒸腾变化观察到的进行了比较。最后,我们开发了一个分蘖内水流模型,以模拟观察到的 LER 对各种蒸腾模式的短期响应。LER 对蓝光减少的响应显著增加,然后达到新的稳定状态,仍然高于对照。减少蓝光会引发气孔同时关闭,导致叶片蒸腾立即减少。叶片伸长的水力模型准确地预测了 LER 对蓝光和 VPD 的响应,这是由于叶片生长区中生长诱导的水势梯度增加所致。我们的结果表明,蓝光信号是由展开叶片的气孔感知的,并通过分蘖的水力结构传递到叶片生长区。

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