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气孔导度模型的全叶比较研究

A Whole Leaf Comparative Study of Stomatal Conductance Models.

作者信息

Sakurai Gen, Miklavcic Stanley J

机构信息

Institute for Agro-Environmental Sciences, National Agriculture and Food Research Organization, Tsukuba, Japan.

Phenomics and Bioinformatics Research Centre, University of South Australia, Mawson Lakes, SA, Australia.

出版信息

Front Plant Sci. 2022 Apr 11;13:766975. doi: 10.3389/fpls.2022.766975. eCollection 2022.

Abstract

We employed a detailed whole leaf hydraulic model to study the local operation of three stomatal conductance models distributed on the scale of a whole leaf. We quantified the behavior of these models by examining the leaf-area distributions of photosynthesis, transpiration, stomatal conductance, and guard cell turgor pressure. We gauged the models' local responses to changes in environmental conditions of carbon dioxide concentration, relative humidity, and light irradiance. We found that a stomatal conductance model that includes mechanical processes dependent on local variables predicts a spatial variation of physiological activity across the leaf: the leaf functions of photosynthesis and transpiration are not uniformly operative even when external conditions are uniform. The gradient pattern of hydraulic pressure which is needed to produce transpiration from the whole leaf is derived from the gradient patterns of turgor pressures of guard cells and epidermal cells and consequently leads to nonuniform spatial distribution patterns of transpiration and photosynthesis the mechanical stomatal model. Our simulation experiments, comparing the predictions of two versions of a mechanical stomatal conductance model, suggest that leaves exhibit a more complex spatial distribution pattern of both photosynthesis and transpiration rate and more complex dependencies on environmental conditions when a non-linear relationship between the stomatal aperture and guard cell and epidermal cell turgor pressures is implemented. Our model studies offer a deeper understanding of the mechanism of stomatal conductance and point to possible future experimental measurements seeking to quantify the spatial distributions of several physiological activities taking place over a whole leaf.

摘要

我们采用了一个详细的全叶水力模型来研究分布在全叶尺度上的三种气孔导度模型的局部运行情况。我们通过检查光合作用、蒸腾作用、气孔导度和保卫细胞膨压的叶面积分布来量化这些模型的行为。我们测量了这些模型对二氧化碳浓度、相对湿度和光照强度等环境条件变化的局部响应。我们发现,一个包含依赖于局部变量的机械过程的气孔导度模型预测了整个叶片生理活动的空间变化:即使外部条件均匀,光合作用和蒸腾作用的叶片功能也并非均匀运行。从保卫细胞和表皮细胞的膨压梯度模式得出从整个叶片产生蒸腾作用所需的水压梯度模式,从而导致蒸腾作用和光合作用的不均匀空间分布模式——机械气孔模型。我们的模拟实验比较了一个机械气孔导度模型的两个版本的预测结果,结果表明,当气孔孔径与保卫细胞和表皮细胞膨压之间的非线性关系被实现时,叶片在光合作用和蒸腾速率方面表现出更复杂的空间分布模式,并且对环境条件有更复杂的依赖性。我们的模型研究为气孔导度机制提供了更深入的理解,并指出了未来可能进行的实验测量方向,旨在量化在整个叶片上发生的几种生理活动的空间分布。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eaad/9036488/31d1fae4867d/fpls-13-766975-g0001.jpg

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