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DNA 超螺旋介导的共转录 RNA 聚合酶的集体行为。

DNA supercoiling-mediated collective behavior of co-transcribing RNA polymerases.

机构信息

PhD Program in Systems, Synthetic, and Physical Biology, Rice University, Houston, TX, USA.

Center for Theoretical Biological Physics & Department of Physics, Northeastern University, Boston, MA, USA.

出版信息

Nucleic Acids Res. 2022 Feb 22;50(3):1269-1279. doi: 10.1093/nar/gkab1252.

Abstract

Multiple RNA polymerases (RNAPs) transcribing a gene have been known to exhibit collective group behavior, causing the transcription elongation rate to increase with the rate of transcription initiation. Such behavior has long been believed to be driven by a physical interaction or 'push' between closely spaced RNAPs. However, recent studies have posited that RNAPs separated by longer distances may cooperate by modifying the DNA segment under transcription. Here, we present a theoretical model incorporating the mechanical coupling between RNAP translocation and the DNA torsional response. Using stochastic simulations, we demonstrate DNA supercoiling-mediated long-range cooperation between co-transcribing RNAPs. We find that inhibiting transcription initiation can slow down the already recruited RNAPs, in agreement with recent experimental observations, and predict that the average transcription elongation rate varies non-monotonically with the rate of transcription initiation. We further show that while RNAPs transcribing neighboring genes oriented in tandem can cooperate, those transcribing genes in divergent or convergent orientations can act antagonistically, and that such behavior holds over a large range of intergenic separations. Our model makes testable predictions, revealing how the mechanical interplay between RNAPs and the DNA they transcribe can govern transcriptional dynamics.

摘要

多个 RNA 聚合酶 (RNAP) 转录一个基因时表现出集体行为,导致转录延伸率随转录起始率的增加而增加。这种行为长期以来一直被认为是由紧密间隔的 RNAP 之间的物理相互作用或“推动”驱动的。然而,最近的研究提出,相隔较远的 RNAP 可能通过修饰转录下的 DNA 片段进行合作。在这里,我们提出了一个理论模型,该模型包含了 RNAP 易位和 DNA 扭转响应之间的机械耦合。使用随机模拟,我们证明了在共同转录的 RNAP 之间存在 DNA 超螺旋介导的远程合作。我们发现,抑制转录起始可以减缓已经募集的 RNAP,这与最近的实验观察结果一致,并预测平均转录延伸率与转录起始率的变化是非单调的。我们进一步表明,虽然转录相邻串联基因的 RNAP 可以合作,但转录发散或会聚取向基因的 RNAP 可以表现出拮抗作用,并且这种行为在很大的基因间隔范围内都存在。我们的模型做出了可测试的预测,揭示了 RNAP 与它们转录的 DNA 之间的机械相互作用如何控制转录动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47a4/8860607/868fee255361/gkab1252fig1.jpg

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