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Direct observation of the translocation mechanism of transcription termination factor Rho

机译:转录终止因子Rho的转移机制直接观察

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Rho is a ring-shaped, ATP-fueled motor essential for remodeling transcriptional complexes and R-loops in bacteria. Despite years of research on this fundamental model helicase, key aspects of its mechanism of translocation remain largely unknown. Here, we used single-molecule manipulation and fluorescence methods to directly monitor the dynamics of RNA translocation by Rho. We show that the efficiency of Rho activation is strongly dependent on the force applied on the RNA but that, once active, Rho is able to translocate against a large opposing force (at least 7 pN) by a mechanism involving 'tethered tracking'. Importantly, the ability to directly measure dynamics at the single-molecule level allowed us to determine essential motor properties of Rho. Hence, Rho translocates at a rate of similar to 56 nt per second under our experimental conditions, which is 2-5 times faster than velocities measured for RNA polymerase under similar conditions. Moreover, the processivity of Rho (similar to 62 nt at a 7 pN opposing force) is large enough for Rho to reach termination sites without dissociating from its RNA loading site, potentially increasing the efficiency of transcription termination. Our findings unambiguously establish 'tethered tracking' as the main pathway for Rho translocation, support 'kinetic coupling' between Rho and RNA polymerase during Rho-dependent termination, and suggest that forces applied on the nascent RNA transcript by cellular substructures could have important implications for the regulation of transcription and its coupling to translation in vivo.
机译:rho是一个环形的ATP燃料电机,用于改造转录复合物和细菌中的R环。尽管对这一基本模型的螺旋酶进行了研究,但其易位机制的关键方面仍然很大程度上未知。在这里,我们使用单分子操纵和荧光方法直接监测ROO的RNA易位的动态。我们表明RHO激活的效率强烈依赖于施加在RNA上的力,但是,一旦有效,rho能够通过涉及“束缚跟踪”的机制来折叠大型相对的力(至少7 pn)。重要的是,直接测量单分子水平的动态的能力使我们能够确定RHO的基本电机性质。因此,在我们的实验条件下,rho以与每秒56nt /秒相似的速率,这比在类似条件下测量的RNA聚合酶的速度快2-5倍。此外,rhO的处理率(类似于7 pn相对力的62nt)足够大,以rho达到终止位点而不从其RNA装载位点分离,可能增加转录终止的效率。我们的研究结果明确地建立了“系绳跟踪”作为Rho易位的主要途径,在RHO依赖性终止期间支持RHO和RNA聚合酶之间的“动力耦合”,并表明在细胞子结构上施加在新生RNA转录物上的力可能具有重要意义。转录调节及其偶联与体内翻译。

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