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细胞壁完整性在植物发育过程中的维持及其与环境的相互作用。

Cell wall integrity maintenance during plant development and interaction with the environment.

机构信息

Department of Biology, Faculty of Natural Sciences, Norwegian University of Science and Technology, Trondheim, Norway.

出版信息

Nat Plants. 2019 Sep;5(9):924-932. doi: 10.1038/s41477-019-0502-0. Epub 2019 Sep 9.

Abstract

Cell walls are highly dynamic structures that provide mechanical support for plant cells during growth, development and adaptation to a changing environment. Thus, it is important for plants to monitor the state of their cell walls and ensure their functional integrity at all times. This monitoring involves perception of physical forces at the cell wall-plasma membrane interphase. These forces are altered during cell division and morphogenesis, as well as in response to various abiotic and biotic stresses. Mechanisms responsible for the perception of physical stimuli involved in these processes have been difficult to separate from other regulatory mechanisms perceiving chemical signals such as hormones, peptides or cell wall fragments. However, recently developed technologies in combination with more established genetic and biochemical approaches are beginning to open up this exciting field of study. Here, we will review our current knowledge of plant cell wall integrity signalling using selected recent findings and highlight how the cell wall-plasma membrane interphase can act as a venue for sensing changes in the physical forces affecting plant development and stress responses. More importantly, we discuss how these signals may be integrated with chemical signals derived from established signalling cascades to control specific adaptive responses during exposure to biotic and abiotic stresses.

摘要

细胞壁是高度动态的结构,在植物细胞的生长、发育和适应不断变化的环境过程中为其提供机械支撑。因此,对于植物来说,监测细胞壁的状态并确保其功能完整性至关重要。这种监测涉及到对细胞壁-质膜交界处物理力的感知。这些力在细胞分裂和形态发生过程中以及对各种非生物和生物胁迫的响应中会发生改变。负责感知这些过程中涉及的物理刺激的机制与感知化学信号(如激素、肽或细胞壁片段)的其他调节机制很难区分开来。然而,最近开发的技术与更成熟的遗传和生化方法相结合,开始为这一令人兴奋的研究领域开辟了道路。在这里,我们将使用选定的最新发现来回顾我们对植物细胞壁完整性信号转导的现有认识,并强调细胞壁-质膜交界处如何作为感知影响植物发育和应激反应的物理力变化的场所。更重要的是,我们讨论了这些信号如何与来自既定信号级联的化学信号整合,以控制在暴露于生物和非生物胁迫时的特定适应性反应。

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