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RNA 聚合酶夹钳构象动力学:长寿命状态以及拥挤、阳离子和非特异性 DNA 结合的调节。

RNA polymerase clamp conformational dynamics: long-lived states and modulation by crowding, cations, and nonspecific DNA binding.

机构信息

Biological Physics Research Group, Clarendon Laboratory, Department of Physics, University of Oxford, Oxford OX1 3PU, UK.

Waksman Institute and Department of Chemistry, Rutgers University, Piscataway, NJ 08854, USA.

出版信息

Nucleic Acids Res. 2021 Mar 18;49(5):2790-2802. doi: 10.1093/nar/gkab074.

Abstract

The RNA polymerase (RNAP) clamp, a mobile structural element conserved in RNAP from all domains of life, has been proposed to play critical roles at different stages of transcription. In previous work, we demonstrated using single-molecule Förster resonance energy transfer (smFRET) that RNAP clamp interconvert between three short-lived conformational states (lifetimes ∼ 0.3-0.6 s), that the clamp can be locked into any one of these states by small molecules, and that the clamp stays closed during initial transcription and elongation. Here, we extend these studies to obtain a comprehensive understanding of clamp dynamics under conditions RNAP may encounter in living cells. We find that the RNAP clamp can populate long-lived conformational states (lifetimes > 1.0 s) and can switch between these long-lived states and the previously observed short-lived states. In addition, we find that clamp motions are increased in the presence of molecular crowding, are unchanged in the presence of elevated monovalent-cation concentrations, and are reduced in the presence of elevated divalent-cation concentrations. Finally, we find that RNAP bound to non-specific DNA predominantly exhibits a closed clamp conformation. Our results raise the possibility of additional regulatory checkpoints that could affect clamp dynamics and consequently could affect transcription and transcriptional regulation.

摘要

RNA 聚合酶(RNAP)夹,一种在所有生命领域的 RNAP 中保守的可移动结构元件,被认为在转录的不同阶段发挥关键作用。在以前的工作中,我们使用单分子Förster 共振能量转移(smFRET)证明,RNAP 夹可以在三种短寿命构象状态(寿命约为 0.3-0.6 s)之间转换,夹可以被小分子锁定在这些状态中的任何一个,并且在初始转录和延伸过程中夹保持关闭。在这里,我们扩展了这些研究,以全面了解 RNAP 在活细胞中可能遇到的条件下的夹动态。我们发现 RNAP 夹可以占据长寿命构象状态(寿命> 1.0 s),并且可以在这些长寿命状态和以前观察到的短寿命状态之间切换。此外,我们发现夹的运动在分子拥挤的存在下增加,在升高的单价阳离子浓度存在下不变,在升高的二价阳离子浓度存在下减少。最后,我们发现与非特异性 DNA 结合的 RNAP 主要表现为封闭的夹构象。我们的结果提出了其他可能影响夹动态的额外调节检查点,从而可能影响转录和转录调控。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/13b8/7969002/fb46b86aac72/gkab074fig1.jpg

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