Khatri Ajay, Sen Ranjan
Laboratory of Transcription, Center for DNA Fingerprinting and Diagnostics, Inner Ring Road, Uppal, Hyderabad 500039, India.
Graduate Studies, Regional Centre for Biotechnology, Faridabad, Haryana 121001, India.
FEMS Microbiol Lett. 2025 Jan 10;372. doi: 10.1093/femsle/fnae111.
Bacterial transcription terminator, Rho is an RNA (Ribonucleic Acid)-dependent ATPase that terminates transcription. Several structures of pretermination complexes of the Rho-transcription elongation complex (EC) revealed a static picture of components of the EC that come close to the nascent RNA-bound Rho, where many of the residues of EC reside ≤10 Å from the Rho residues. However, the in vitro-formed Rho-EC complexes do not reveal the in vivo Rho-EC dynamic interaction patterns during the termination process. Here we report synthetic defect analyses of various combinations of the mutations in RNAP β, β' and ω-subunits, NusA, NusG, and Rho proteins to delineate the functional network of this process. Several mutations in the β-flap and β'-Zn-finger and -Clamp helices domains of RNAP are synthetically defective in the presence of Rho mutants indicating functional involvement of these domains. Mutations in the NusA RNA-binding domains were synthetically defective with the Rho mutants suggesting its involvement. Our genetic analyses also revealed functional antagonisms between the ω-subunit of RNAP and the NusG-CTD (c-terminal domain) during termination. We concluded that the regions surrounding the RNA exit channel, the RNA-binding domains of NusA, the RNAP ω-subunit, and NusG-CTD constitute a functional network with Rho just before the onset of in vivo Rho-dependent termination.
细菌转录终止因子Rho是一种依赖RNA的ATP酶,可终止转录。Rho-转录延伸复合物(EC)的终止前复合物的几种结构揭示了EC成分的静态图像,这些成分靠近新生RNA结合的Rho,其中许多EC残基与Rho残基的距离≤10埃。然而,体外形成的Rho-EC复合物并未揭示终止过程中体内Rho-EC的动态相互作用模式。在这里,我们报告了对RNA聚合酶(RNAP)β、β'和ω亚基、NusA、NusG和Rho蛋白中各种突变组合的合成缺陷分析,以描绘这一过程的功能网络。在存在Rho突变体的情况下,RNAP的β-瓣、β'-锌指和-钳螺旋结构域中的几个突变具有合成缺陷,表明这些结构域具有功能参与。NusA RNA结合结构域中的突变与Rho突变体具有合成缺陷,表明其参与其中。我们的遗传分析还揭示了RNAP的ω亚基与NusG的C末端结构域(CTD)在终止过程中的功能拮抗作用。我们得出结论,在体内Rho依赖性终止开始之前,RNA出口通道周围区域、NusA的RNA结合结构域、RNAP的ω亚基和NusG-CTD与Rho构成了一个功能网络。