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关于光对信号串扰和分子通讯影响的综合综述,以对抗植物微生物组相互作用。

A comprehensive review on the influence of light on signaling cross-talk and molecular communication against phyto-microbiome interactions.

机构信息

CP College of Agriculture, Sardarkrushinagar Dantiwada Agriculture University, Dantiwada, India.

ICAR-National Institute for Plant Biotechnology, New Delhi, India.

出版信息

Crit Rev Biotechnol. 2021 May;41(3):370-393. doi: 10.1080/07388551.2020.1869686. Epub 2021 Feb 8.

DOI:10.1080/07388551.2020.1869686
PMID:33550862
Abstract

Generally, plant growth, development, and their productivity are mainly affected by their growth rate and also depend on environmental factors such as temperature, pH, humidity, and light. The interaction between plants and pathogens are highly specific. Such specificity is well characterized by plants and pathogenic microbes in the form of a molecular signature such as pattern-recognition receptors (PRRs) and microbes-associated molecular patterns (MAMPs), which in turn trigger systemic acquired immunity in plants. A number of mutant collections are available to investigate molecular and physiological changes in plants under the presence of different light conditions. Over the past decade(s), several studies have been performed by selecting under the influence of red, green, blue, far/far-red, and white light. However, only few phenotypic and molecular based studies represent the modulatory effects in plants under the influence of green and blue lights. Apart from this, red light (RL) actively participates in defense mechanisms against several pathogenic infections. This evolutionary pattern of light sensitizes the pathologist to analyze a series of events in plants during various stress conditions of the natural and/or the artificial environment. This review scrutinizes the literature where red, blue, white, and green light (GL) act as sensory systems that affects physiological parameters in plants. Generally, white and RL are responsible for regulating various defense mechanisms, but, GL also participates in this process with a robust impact! In addition to this, we also focus on the activation of signaling pathways (salicylic acid and jasmonic acid) and their influence on plant immune systems against phytopathogen(s).

摘要

一般来说,植物的生长、发育和生产力主要受到生长速度的影响,也取决于环境因素,如温度、pH 值、湿度和光照。植物与病原体之间的相互作用具有高度的特异性。这种特异性在植物和病原微生物中表现为分子特征,如模式识别受体 (PRRs) 和微生物相关分子模式 (MAMPs),它们反过来又在植物中触发系统性获得性免疫。有许多突变体集合可用于研究不同光照条件下植物的分子和生理变化。在过去的十年中,已经通过在红光、绿光、蓝光、远/远红光和白光的影响下进行选择来进行了几项研究。然而,只有少数基于表型和分子的研究代表了绿光和蓝光影响下植物的调节效应。除此之外,红光 (RL) 积极参与对几种病原感染的防御机制。这种光的进化模式促使病理学家分析植物在自然和/或人工环境的各种胁迫条件下的一系列事件。本综述仔细审查了文献,其中红光、蓝光、白光和绿光 (GL) 作为感测系统影响植物的生理参数。一般来说,白光和 RL 负责调节各种防御机制,但 GL 也参与了这个过程,具有强大的影响!除此之外,我们还关注信号通路 (水杨酸和茉莉酸) 的激活及其对植物免疫系统对抗植物病原体的影响。

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