rho依赖性转录终止:修正主义观点。

IF 3.6 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Transcription-Austin Pub Date : 2021-08-01 Epub Date: 2021-10-27 DOI:10.1080/21541264.2021.1991773
Zhitai Hao, Vladimir Svetlov, Evgeny Nudler
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引用次数: 19

摘要

Rho是一种六聚体细菌RNA解旋酶,它成为因子依赖性转录终止的范例。广泛接受的(“教科书”)模型假定了一系列步骤,其中Rho首先结合初生RNA上富含c的Rho利用(rut)位点,利用其atp依赖的转座酶活性赶上RNA聚合酶(RNAP),然后将转录物从延伸复合体中拉出或向前推动RNAP,从而终止转录。然而,这种吸引人的简单机械化学模型缺乏生物学的现实性,并且与遗传和生化数据越来越不一致。在这里,我们总结了最近的结构和生化研究,这些研究提高了我们对rho依赖性转录终止中RNA识别、终止信号和RNAP失活的分子细节的理解,重新平衡了支持另一种“变构”机制的观点。在修正后的模型中,Rho在辅助因子NusA和NusG的帮助下,在延伸早期结合RNAP,形成一个终止前复合物(PTC)。PTC的形成允许Rho连续取样新生转录本的终止信号,随后在其解离之前将延伸复合物捕获在非活性状态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rho-dependent transcription termination: a revisionist view.

Rho-dependent transcription termination: a revisionist view.

Rho-dependent transcription termination: a revisionist view.

Rho is a hexameric bacterial RNA helicase, which became a paradigm of factor-dependent transcription termination. The broadly accepted ("textbook") model posits a series of steps, wherein Rho first binds C-rich Rho utilization (rut) sites on nascent RNA, uses its ATP-dependent translocase activity to catch up with RNA polymerase (RNAP), and either pulls the transcript from the elongation complex or pushes RNAP forward, thus terminating transcription. However, this appealingly simple mechano-chemical model lacks a biological realism and is increasingly at odds with genetic and biochemical data. Here, we summarize recent structural and biochemical studies that have advanced our understanding of molecular details of RNA recognition, termination signaling, and RNAP inactivation in Rho-dependent transcription termination, rebalancing the view in favor of an alternative "allosteric" mechanism. In the revised model, Rho binds RNAP early in elongation assisted by the cofactors NusA and NusG, forming a pre-termination complex (PTC). The formation of PTC allows Rho to continuously sample nascent transcripts for a termination signal, which subsequently traps the elongation complex in an inactive state prior to its dissociation.

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来源期刊
Transcription-Austin
Transcription-Austin BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
6.50
自引率
5.60%
发文量
9
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