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DNA超螺旋介导的G4/R环形成通过控制RNA聚合酶的进入来调节转录。

DNA supercoiling-mediated G4/R-loop formation tunes transcription by controlling the access of RNA polymerase.

作者信息

Hwang Jihee, Lee Chun-Ying, Brahmachari Sumitabha, Tripathi Shubham, Paul Tapas, Lee Huijin, Craig Alanna, Ha Taekjip, Myong Sua

机构信息

Programs in Cellular and Molecular Medicine, Boston Children's Hospital and Harvard Medical School, Boston, MA, USA.

Center for Theoretical Biological Physics, Rice University, Houston, TX, USA.

出版信息

Nat Commun. 2025 Apr 9;16(1):3363. doi: 10.1038/s41467-025-58479-x.

Abstract

RNA polymerase (RNAP) is a processive motor that modulates DNA supercoiling and reshapes DNA structures. The feedback loop between the DNA topology and transcription remains elusive. Here, we investigate the impact of potential G-quadruplex forming sequences (PQS) on transcription in response to DNA supercoiling. We find that supercoiled DNA increases transcription frequency 10-fold higher than relaxed DNA, which lead to an abrupt formation of G-quadruplex (G4) and R-loop structures. Moreover, the stable R-loop relieves topological strain, facilitated by G4 formation. The cooperative formation of G4/R-loop effectively alters the DNA topology around the promoter and suppresses transcriptional activity by impeding RNAP loading. These findings highlight negative supercoiling as a built-in spring that triggers a transcriptional burst followed by a rapid suppression upon G4/R-loop formation. This study sheds light on the intricate interplay between DNA topology and structural change in transcriptional regulation, with implications for understanding gene expression dynamics.

摘要

RNA聚合酶(RNAP)是一种持续性的分子马达,可调节DNA超螺旋并重塑DNA结构。DNA拓扑结构与转录之间的反馈回路仍不清楚。在此,我们研究了潜在的G-四链体形成序列(PQS)对响应DNA超螺旋的转录的影响。我们发现,超螺旋DNA的转录频率比松弛DNA高10倍,这导致G-四链体(G4)和R环结构的突然形成。此外,稳定的R环缓解了拓扑应变,这是由G4形成所促进的。G4/R环的协同形成有效地改变了启动子周围的DNA拓扑结构,并通过阻碍RNAP加载来抑制转录活性。这些发现突出了负超螺旋作为一个内置弹簧,它触发转录爆发,随后在G4/R环形成时迅速抑制。这项研究揭示了DNA拓扑结构与转录调控中结构变化之间的复杂相互作用,对理解基因表达动态具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8965/11982182/2b3f1d618cf3/41467_2025_58479_Fig1_HTML.jpg

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