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盐胁迫下植物细胞壁组织的调控

The regulation of plant cell wall organisation under salt stress.

作者信息

Dabravolski Siarhei A, Isayenkov Stanislav V

机构信息

Department of Biotechnology Engineering, Braude Academic College of Engineering, Karmiel, Israel.

Department of Plant Food Products and Biofortification, Institute of Food Biotechnology and Genomics, National Academy of Science (NAS) of Ukraine, Kyiv, Ukraine.

出版信息

Front Plant Sci. 2023 Mar 10;14:1118313. doi: 10.3389/fpls.2023.1118313. eCollection 2023.

Abstract

Plant cell wall biosynthesis is a complex and tightly regulated process. The composition and the structure of the cell wall should have a certain level of plasticity to ensure dynamic changes upon encountering environmental stresses or to fulfil the demand of the rapidly growing cells. The status of the cell wall is constantly monitored to facilitate optimal growth through the activation of appropriate stress response mechanisms. Salt stress can severely damage plant cell walls and disrupt the normal growth and development of plants, greatly reducing productivity and yield. Plants respond to salt stress and cope with the resulting damage by altering the synthesis and deposition of the main cell wall components to prevent water loss and decrease the transport of surplus ions into the plant. Such cell wall modifications affect biosynthesis and deposition of the main cell wall components: cellulose, pectins, hemicelluloses, lignin, and suberin. In this review, we highlight the roles of cell wall components in salt stress tolerance and the regulatory mechanisms underlying their maintenance under salt stress conditions.

摘要

植物细胞壁生物合成是一个复杂且受到严格调控的过程。细胞壁的组成和结构应具有一定程度的可塑性,以确保在遇到环境胁迫时发生动态变化,或满足快速生长细胞的需求。细胞壁的状态会不断受到监测,以通过激活适当的应激反应机制促进最佳生长。盐胁迫会严重损害植物细胞壁,扰乱植物的正常生长和发育,大幅降低生产力和产量。植物通过改变主要细胞壁成分的合成和沉积来应对盐胁迫并处理由此产生的损害,以防止水分流失并减少多余离子向植物体内的运输。这种细胞壁修饰会影响主要细胞壁成分的生物合成和沉积,包括纤维素、果胶、半纤维素、木质素和木栓质。在本综述中,我们重点介绍了细胞壁成分在耐盐性中的作用以及在盐胁迫条件下维持这些成分的调控机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/753d/10036381/53141e707a01/fpls-14-1118313-g001.jpg

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