The role of pectin phase separation in plant cell wall assembly and growth

Q1 Immunology and Microbiology Cell Surface Pub Date : 2021-12-01 DOI:10.1016/j.tcsw.2021.100054
Kalina T. Haas , Raymond Wightman , Alexis Peaucelle , Herman Höfte
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引用次数: 39

Abstract

A rapidly increasing body of literature suggests that many biological processes are driven by phase separation within polymer mixtures. Liquid-liquid phase separation can lead to the formation of membrane-less organelles, which are thought to play a wide variety of roles in cell metabolism, gene regulation or signaling. One of the characteristics of these systems is that they are poised at phase transition boundaries, which makes them perfectly suited to elicit robust cellular responses to often very small changes in the cell’s “environment”. Recent observations suggest that, also in the semi-solid environment of plant cell walls, phase separation not only plays a role in wall patterning, hydration and stress relaxation during growth, but also may provide a driving force for cell wall expansion. In this context, pectins, the major polyanionic polysaccharides in the walls of growing cells, appear to play a critical role. Here, we will discuss (i) our current understanding of the structure–function relationship of pectins, (ii) in vivo evidence that pectin modification can drive critical phase transitions in the cell wall, (iii) how such phase transitions may drive cell wall expansion in addition to turgor pressure and (iv) the periodic cellular processes that may control phase transitions underlying cell wall assembly and expansion.

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果胶相分离在植物细胞壁组装和生长中的作用
越来越多的文献表明,许多生物过程是由聚合物混合物中的相分离驱动的。液-液相分离可导致无膜细胞器的形成,无膜细胞器被认为在细胞代谢、基因调控或信号传导中发挥着广泛的作用。这些系统的特征之一是它们处于相变边界,这使得它们非常适合于对细胞“环境”中通常非常小的变化引发强大的细胞反应。最近的观察表明,在植物细胞壁的半固体环境中,相分离不仅在生长过程中对细胞壁形成、水化和应力松弛起作用,而且可能为细胞壁的扩张提供动力。在这种情况下,果胶,生长细胞壁中的主要聚阴离子多糖,似乎起着关键作用。在这里,我们将讨论(i)我们目前对果胶结构-功能关系的理解,(ii)体内证据表明果胶修饰可以驱动细胞壁的关键相变,(iii)除了膨胀压力之外,这种相变如何驱动细胞壁膨胀,以及(iv)可能控制细胞壁组装和膨胀的相变的周期性细胞过程。
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来源期刊
Cell Surface
Cell Surface Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
6.10
自引率
0.00%
发文量
18
审稿时长
49 days
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