Bottom-up Multiscale Modeling of Guard Cell Walls Reveals Molecular Mechanisms of Stomatal Biomechanics

IF 2.6 Q1 AGRONOMY
Hojae Yi, Charles T Anderson
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引用次数: 0

Abstract

Abstract Stomata are dynamic pores on plant surfaces that regulate photosynthesis and are thus of critical importance for understanding and leveraging the carbon-capturing and food-producing capabilities of plants. However, our understanding of the molecular underpinnings of stomatal kinetics and the biomechanical properties of the cell walls of stomatal guard cells that enable their dynamic responses to environmental and intrinsic stimuli is limited. Here, we built multiscale models that simulate regions of the guard cell wall, representing cellulose fibrils and matrix polysaccharides as discrete, interacting units, and used these models to help explain how molecular changes in wall composition and underlying architecture alter guard wall biomechanics that gives rise to stomatal responses in mutants with altered wall synthesis and modification. These results point to strategies for engineering guard cell walls to enhance stomatal response times and efficiency.
保护细胞壁的自下而上多尺度建模揭示气孔生物力学的分子机制
气孔是植物表面的动态孔隙,调节光合作用,因此对理解和利用植物的碳捕获和食物生产能力至关重要。然而,我们对气孔动力学的分子基础和气孔保护细胞细胞壁的生物力学特性的理解是有限的,这些特性使它们能够对环境和内在刺激做出动态反应。在这里,我们建立了模拟保护细胞壁区域的多尺度模型,将纤维素原纤维和基质多糖表示为离散的相互作用单元,并使用这些模型来帮助解释细胞壁组成和底层结构的分子变化如何改变保护壁生物力学,从而在细胞壁合成和修饰改变的突变体中引起气孔响应。这些结果指出了工程保护细胞壁的策略,以提高气孔响应时间和效率。
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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来源期刊
in silico Plants
in silico Plants Agricultural and Biological Sciences-Agronomy and Crop Science
CiteScore
4.70
自引率
9.70%
发文量
21
审稿时长
10 weeks
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