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2
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3
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4
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这是一个时间问题:转录调控在植物生物钟-病原体互作中的作用。

It's a matter of time: the role of transcriptional regulation in the circadian clock-pathogen crosstalk in plants.

机构信息

Fundación Instituto Leloir, Instituto de Investigaciones Bioquímicas de Buenos Aires-Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET) , Buenos Aires, Argentina.

出版信息

Transcription. 2020 Jun-Aug;11(3-4):100-116. doi: 10.1080/21541264.2020.1820300. Epub 2020 Sep 16.

DOI:10.1080/21541264.2020.1820300
PMID:32936724
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7714449/
Abstract

Most living organisms possess an internal timekeeping mechanism known as the circadian clock, which enhances fitness by synchronizing the internal timing of biological processes with diurnal and seasonal environmental changes. In plants, the pace of these biological rhythms relies on oscillations in the expression level of hundreds of genes tightly controlled by a group of core clock regulators and co-regulators that engage in transcriptional and translational feedback loops. In the last decade, the role of several core clock genes in the control of defense responses has been addressed, and a growing amount of evidence demonstrates that circadian regulation is relevant for plant immunity. A reciprocal connection between these pathways was also established following the observation that in , as well as in crop species like tomato, plant-pathogen interactions trigger a reconfiguration of the circadian transcriptional network. In this review, we summarize the current knowledge regarding the interaction between the circadian clock and biotic stress responses at the transcriptional level, and discuss the relevance of this crosstalk in the plant-pathogen evolutionary arms race. A better understanding of these processes could aid in the development of genetic tools that improve traditional breeding practices, enhancing tolerance to plant diseases that threaten crop yield and food security all around the world.

摘要

大多数生物都拥有一种内部计时机制,即生物钟,它通过使生物过程的内部时间与昼夜和季节性环境变化同步,来提高生物适应性。在植物中,这些生物节律的节奏依赖于一组核心时钟调节剂和共调节剂控制的数百个基因表达水平的波动,这些调节剂和共调节剂参与转录和翻译反馈回路。在过去的十年中,人们已经研究了几个核心时钟基因在控制防御反应中的作用,越来越多的证据表明,生物钟调节与植物免疫有关。在观察到植物-病原体相互作用触发生物钟转录网络的重新配置后,这两个途径之间也建立了一种相互联系。在这篇综述中,我们总结了生物钟与生物胁迫反应在转录水平上相互作用的最新知识,并讨论了这种串扰在植物-病原体进化军备竞赛中的相关性。更好地了解这些过程可以帮助开发遗传工具,从而改进传统的育种实践,提高对威胁全球作物产量和粮食安全的植物疾病的耐受性。