Department of Structural Biology, Stanford University School of Medicine, Stanford, CA, 94304, USA.
Department of Biophysics and Biophysical Chemistry, Johns Hopkins University School of Medicine, Baltimore, MD, 21205, USA.
Curr Genet. 2019 Jun;65(3):729-733. doi: 10.1007/s00294-019-00939-1. Epub 2019 Feb 9.
The bacterial hexameric helicase known as Rho is an archetypal sequence-specific transcription terminator that typically halts the synthesis of a defined set of transcripts, particularly those bearing cytosine-rich 3'-untranslated regions. However, under conditions of translational stress, Rho can also terminate transcription at cytosine-poor sites when assisted by the transcription factor NusG. Recent structural, biochemical, and computational studies of the Rho·NusG interaction in Escherichia coli have helped establish how NusG reprograms Rho activity. NusG is found to be an allosteric activator of Rho that directly binds to the ATPase motor domain of the helicase and facilitates closure of the Rho ring around non-ideal (purine-rich) target RNAs. The manner in which NusG acts on Rho helps to explain how the transcription terminator is excluded from acting on RNA polymerase by exogenous factors, such as the antitermination protein NusE, the NusG paralog RfaH, and RNA polymerase-coupled ribosomes. Collectively, an understanding of the link between NusG and Rho provides new insights into how transcriptional and translational fidelity are maintained during gene expression in bacteria.
已知细菌六聚体解旋酶 Rho 是一种典型的序列特异性转录终止因子,通常会终止一组特定转录物的合成,特别是那些带有富含胞嘧啶的 3'非翻译区的转录物。然而,在翻译应激条件下,Rho 也可以在转录因子 NusG 的辅助下在胞嘧啶贫乏的位点终止转录。最近对大肠杆菌中 Rho·NusG 相互作用的结构、生化和计算研究有助于确定 NusG 如何重新编程 Rho 的活性。发现 NusG 是 Rho 的别构激活剂,它直接结合解旋酶的 ATP 酶马达结构域,并促进 Rho 环围绕非理想(嘌呤丰富)靶 RNA 的闭合。NusG 对 Rho 的作用方式有助于解释转录终止因子如何被外源因子(如终止蛋白 NusE、NusG 旁系同源物 RfaH 和与 RNA 聚合酶偶联的核糖体)排除在 RNA 聚合酶作用之外。总之,对 NusG 和 Rho 之间联系的理解为细菌中基因表达过程中如何维持转录和翻译保真度提供了新的见解。