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长程超螺旋介导的转录中 RNA 聚合酶合作。

Long-Range Supercoiling-Mediated RNA Polymerase Cooperation in Transcription.

机构信息

Department of Chemistry, Rice University, Houston, Texas 77005, United States.

Center for Theoretical Biological Physics, Rice University, Houston, Texas 77005, United States.

出版信息

J Phys Chem B. 2021 May 13;125(18):4692-4700. doi: 10.1021/acs.jpcb.1c01859. Epub 2021 Apr 29.

Abstract

It is widely believed that DNA supercoiling plays an important role in the regulation of transcriptional dynamics. Recent studies show that it could affect transcription not only through the buildup and relaxation of torsional strain on DNA strands but also via effective long-range supercoiling-mediated interactions between RNA polymerase (RNAP) molecules. Here, we present a theoretical study that quantitatively analyzes the effect of long-range RNAP cooperation in transcription dynamics. Our minimal chemical-kinetic model assumes that one or two RNAP molecules can simultaneously participate in the transcription, and it takes into account their binding to and dissociation from DNA. It also explicitly accounts for competition between the supercoiling buildup that reduces the RNA elongation speed and gyrase binding that rescues the RNA synthesis. The full analytical solution of the model accompanied by Monte Carlo computer simulations predicts that the system should exhibit transcriptional bursting dynamics, in agreement with experimental observations. The analysis also revealed that when there are two polymerases participating in the elongation rather than one, the transcription process becomes much more efficient since the level of stochastic noise decreases while more RNA transcripts are produced. Our theoretical investigation clarifies molecular aspects of the supercoiling-mediated RNAP cooperativity during transcription.

摘要

人们普遍认为,DNA 超螺旋在转录动力学的调控中起着重要作用。最近的研究表明,它不仅可以通过 DNA 链上扭应变的积累和松弛来影响转录,还可以通过 RNA 聚合酶(RNAP)分子之间有效的长程超螺旋介导相互作用来影响转录。在这里,我们提出了一项理论研究,定量分析了长程 RNAP 合作在转录动力学中的作用。我们的最小化学动力学模型假设一个或两个 RNAP 分子可以同时参与转录,并且考虑了它们与 DNA 的结合和解离。它还明确考虑了超螺旋形成与 RNA 延伸速度降低之间的竞争,以及解旋酶结合与 RNA 合成挽救之间的竞争。该模型的全解析解伴随着蒙特卡罗计算机模拟预测,系统应该表现出转录爆发动力学,这与实验观察结果一致。分析还表明,当有两个聚合酶参与延伸而不是一个时,转录过程变得更加高效,因为随机噪声水平降低,同时产生更多的 RNA 转录本。我们的理论研究阐明了转录过程中超螺旋介导的 RNAP 合作的分子方面。

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