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The RNA polymerase clamp interconverts dynamically among three states and is stabilized in a partly closed state by ppGpp

机译:RNA聚合酶夹具在三种状态中动态互连,并通过PPGPP稳定在部分闭合状态下

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摘要

RNA polymerase (RNAP) contains a mobile structural module, the 'clamp,' that forms one wall of the RNAP active-center cleft and that has been linked to crucial aspects of the transcription cycle, including promoter melting, transcription elongation complex stability, transcription pausing, and transcription termination. Using single-molecule FRET on surface-immobilized RNAP molecules, we show that the clamp in RNAP holoenzyme populates three distinct conformational states and interconvert between these states on the 0.1-1 s time-scale. Similar studies confirm that the RNAP clamp is closed in open complex (RPO) and in initial transcribing complexes (RPITC), including paused initial transcribing complexes, and show that, in these complexes, the clamp does not exhibit dynamic behaviour. We also show that, the stringent-response alarmone ppGpp, which reprograms transcription during amino acid starvation stress, selectively stabilizes the partly-closed-clamp state and prevents clamp opening; these results raise the possibility that ppGpp controls promoter opening by modulating clamp dynamics.
机译:RNA聚合酶(RNAP)含有移动结构模块,其形成RNAP活性中心裂缝的一个壁的“夹具”,并且已经与转录循环的关键方面相关,包括启动子熔化,转录伸长率复合稳定性,转录暂停和转录终止。在表面固定的RNAP分子上使用单分子褶皱,我们表明RNAP全酶中的夹具填充了三个不同的构象状态,并在0.1-1秒的时间尺度上互连。类似的研究证实,RNAP钳位在开放的复合物(RPO)和初始转录复合物(RPITC)中闭合,包括暂停的初始转录复合物,并表明在这些配合物中,夹具不会表现出动态行为。还表明,严格响应的警报PPGPP,在氨基酸饥饿应力期间重新编程转录,选择性地稳定部分闭合夹紧状态并防止夹紧开口;这些结果提高了PPGPP通过调制钳位动力学控制启动子开口的可能性。

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  • 来源
    《Nucleic Acids Research》 |2018年第14期|共12页
  • 作者单位

    Univ Oxford Dept Phys Clarendon Lab Biol Phys Res Grp Oxford OX1 3PU England;

    Univ Oxford Dept Phys Clarendon Lab Biol Phys Res Grp Oxford OX1 3PU England;

    Univ Oxford Dept Phys Clarendon Lab Biol Phys Res Grp Oxford OX1 3PU England;

    Rutgers State Univ Waksman Inst Microbiol Piscataway NJ 08854 USA;

    Univ Oxford Dept Phys Clarendon Lab Biol Phys Res Grp Oxford OX1 3PU England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
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