Rho-dependent transcription termination: mechanisms and roles in bacterial fitness and adaptation to environmental changes.

IF 4.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
RNA Pub Date : 2025-06-03 DOI:10.1261/rna.080486.125
Thuy Duong Do, Nara Figueroa-Bossi, Johnathan C Black, Eric Eveno, Mildred Delaleau, Lionello Bossi, Marc Boudvillain
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引用次数: 0

Abstract

The bacterial transcription termination factor Rho is a rare example of an RNA helicase that functions as a ring-shaped ATP-powered six-subunit motor. Recent studies have linked Rho's distinctive architecture to a variety of regulatory mechanisms that shape the bacterial transcriptome at the global scale and control the transcription of individual genes in a context-dependent manner. In this review, we provide a comprehensive overview of the molecular mechanisms by which Rho triggers transcription termination. We examine the two prevailing modes of Rho's action: the "catch-up" mode, where Rho actively translocates along RNA and collides with the RNA polymerase to terminate transcription, and the "stand-by" mode where Rho, recruited by transcription elongation factor NusG, remains poised to engage RNA polymerase at specific sites or under particular constraints. Additionally, we highlight Rho's interplay with nucleoid-structuring protein H-NS in the regulation of bacterial chromatin transcription, as well as the crucial role played by Rho in the conditional regulation of specific genomic loci. We discuss how these mechanisms contribute to the fine-tuning of gene activity and integrate into broader regulatory networks, supporting bacterial adaptation to environmental changes and resilience to external challenges.

rho依赖性转录终止:细菌适应度和适应环境变化的机制和作用。
细菌转录终止因子Rho是一个罕见的RNA解旋酶的例子,它的功能是一个环状的atp驱动的六个亚基马达。最近的研究将Rho的独特结构与多种调节机制联系起来,这些机制在全球范围内塑造细菌转录组,并以环境依赖的方式控制单个基因的转录。在这篇综述中,我们提供了Rho触发转录终止的分子机制的全面概述。我们研究了Rho的两种主要作用模式:“追赶”模式,即Rho主动沿着RNA易位并与RNA聚合酶发生碰撞以终止转录,以及“备用”模式,即Rho被转录延伸因子NusG招募,在特定位点或特定限制下保持与RNA聚合酶接触的状态。此外,我们强调了Rho在细菌染色质转录调控中与核结构蛋白H-NS的相互作用,以及Rho在特定基因组位点的条件调控中发挥的关键作用。我们讨论了这些机制如何有助于基因活性的微调,并整合到更广泛的调控网络中,支持细菌适应环境变化和抵御外部挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
RNA
RNA 生物-生化与分子生物学
CiteScore
8.30
自引率
2.20%
发文量
101
审稿时长
2.6 months
期刊介绍: RNA is a monthly journal which provides rapid publication of significant original research in all areas of RNA structure and function in eukaryotic, prokaryotic, and viral systems. It covers a broad range of subjects in RNA research, including: structural analysis by biochemical or biophysical means; mRNA structure, function and biogenesis; alternative processing: cis-acting elements and trans-acting factors; ribosome structure and function; translational control; RNA catalysis; tRNA structure, function, biogenesis and identity; RNA editing; rRNA structure, function and biogenesis; RNA transport and localization; regulatory RNAs; large and small RNP structure, function and biogenesis; viral RNA metabolism; RNA stability and turnover; in vitro evolution; and RNA chemistry.
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