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保卫细胞特异性果胶甲基酯酶53是脱落酸介导的气孔功能和热响应所必需的。

Guard Cell-Specific Pectin METHYLESTERASE53 Is Required for Abscisic Acid-Mediated Stomatal Function and Heat Response in .

作者信息

Wu Hui-Chen, Yu Shih-Yu, Wang Yin-Da, Jinn Tsung-Luo

机构信息

Department of Life Science, Institute of Plant Biology, National Taiwan University, Taipei, Taiwan.

Department of Biological Sciences and Technology, National University of Tainan, Tainan, Taiwan.

出版信息

Front Plant Sci. 2022 Feb 21;13:836151. doi: 10.3389/fpls.2022.836151. eCollection 2022.

Abstract

Pectin is a major component of the plant cell wall, forming a network that contributes to cell wall integrity and flexibility. Pectin methylesterase (PME) catalyzes the removal of methylester groups from the homogalacturonan backbone, the most abundant pectic polymer, and contributes to intercellular adhesion during plant development and different environmental stimuli stress. In this study, we identified and characterized an Arabidopsis type-II , , which encodes a cell wall deposited protein and may be involved in the stomatal lineage pathway and stomatal functions. We demonstrated that is expressed explicitly in guard cells as an abscisic acid (ABA)-regulated gene required for stomatal movement and thermotolerance. The expression of is significantly affected by the stomatal differentiation factors SCRM and MUTE. The null mutation in results in a significant increase in stomatal number and susceptibility to ABA-induced stomatal closure. During heat stress, the mutant highly altered the activity of PME and significantly lowered the expression level of the calmodulin , indicating that PME53 may be involved in Ca-pectate reconstitution to render plant thermotolerance. Here, we present evidence that the PME53-mediated de-methylesterification status of pectin is directed toward stomatal development, movement, and regulation of the flexibility of the guard cell wall required for the heat response.

摘要

果胶是植物细胞壁的主要成分,形成一个有助于细胞壁完整性和柔韧性的网络。果胶甲酯酶(PME)催化从最丰富的果胶聚合物同型半乳糖醛酸主链上去除甲酯基团,并在植物发育和不同环境刺激胁迫期间促进细胞间粘附。在本研究中,我们鉴定并表征了拟南芥II型……,其编码一种细胞壁沉积蛋白,可能参与气孔谱系途径和气孔功能。我们证明……作为气孔运动和耐热性所需的脱落酸(ABA)调节基因在保卫细胞中特异性表达。……的表达受到气孔分化因子SCRM和MUTE的显著影响。……中的无效突变导致气孔数量显著增加以及对ABA诱导的气孔关闭的敏感性增加。在热胁迫期间,……突变体高度改变了PME的活性,并显著降低了钙调蛋白……的表达水平,表明PME53可能参与果胶酸钙的重构以赋予植物耐热性。在此,我们提供证据表明,果胶的PME53介导的去甲基酯化状态指向气孔发育、运动以及热响应所需的保卫细胞壁柔韧性的调节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d466/8898962/0f69653726bd/fpls-13-836151-g001.jpg

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