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植物非生物胁迫响应中的可变剪接。

Alternative splicing in plant abiotic stress responses.

机构信息

Institute of Biosciences and Bioresources, National Research Council of Italy, 80055 Portici, Naples, Italy.

出版信息

Biochem Soc Trans. 2020 Oct 30;48(5):2117-2126. doi: 10.1042/BST20200281.

Abstract

Modifications of the cellular proteome pool upon stress allow plants to tolerate environmental changes. Alternative splicing is the most significant mechanism responsible for the production of multiple protein isoforms from a single gene. The spliceosome, a large ribonucleoprotein complex, together with several associated proteins, controls this pre-mRNA processing, adding an additional level of regulation to gene expression. Deep sequencing of transcriptomes revealed that this co- or post-transcriptional mechanism is highly induced by abiotic stress, and concerns vast numbers of stress-related genes. Confirming the importance of splicing in plant stress adaptation, key players of stress signaling have been shown to encode alternative transcripts, whereas mutants lacking splicing factors or associated components show a modified sensitivity and defective responses to abiotic stress. Here, we examine recent literature on alternative splicing and splicing alterations in response to environmental stresses, focusing on its role in stress adaptation and analyzing the future perspectives and directions for research.

摘要

细胞蛋白质组库的改变允许植物耐受环境变化。可变剪接是从单个基因产生多种蛋白质同工型的最重要机制。剪接体是一种大型核糖核蛋白复合物,与几种相关蛋白一起,控制这种前体 mRNA 的加工,为基因表达增加了额外的调控层次。转录组的深度测序显示,这种共转录或转录后机制受到非生物胁迫的高度诱导,涉及大量与胁迫相关的基因。证实了剪接在植物应激适应中的重要性,应激信号的关键因子已被证明编码可变剪接转录本,而缺乏剪接因子或相关成分的突变体对非生物胁迫的敏感性和反应缺陷。在这里,我们研究了关于环境胁迫下可变剪接和剪接改变的最新文献,重点关注其在应激适应中的作用,并分析了未来的研究方向和前景。

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