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通过单分子环化和分子动力学模拟揭示短RNA-DNA杂交双链体的高柔韧性

High Bendability of Short RNA-DNA Hybrid Duplex Revealed by Single-Molecule Cyclization and Molecular Dynamics Simulations.

作者信息

Wu Bin, Tian Fujia, Yang Yajun, Dai Liang, Zhang Xinghua

机构信息

Hubei Key Laboratory of Cell Homeostasis, College of Life Sciences, Wuhan University, Wuhan 430072, China.

Department of Physics, City University of Hong Kong, Hong Kong, China.

出版信息

Biomolecules. 2025 May 15;15(5):724. doi: 10.3390/biom15050724.

Abstract

R-loops are nucleic acid structures composed of an RNA-DNA hybrid (RDH) duplex and a displaced single-stranded DNA (ssDNA), which are fundamentally involved in key biological functions, including transcription and the preservation of genome stability. In an R-loop, the RDH duplex is bent by the folded secondary structures of the displaced ssDNA. Previous experiments and simulations indicated the high bendability of DNA below the persistence length. However, the bendability of a short RDH duplex remains unclear. Here, we report that an RDH duplex exhibits higher bendability than a DNA duplex on the short length scale using single-molecule cyclization experiments. Our molecular dynamics simulations show that an RDH duplex has larger intrinsic curvature and structural fluctuations and more easily forms kinks than DNA, which promote the bending flexibility of RDH from unlooped structures. Interestingly, we found that an RDH duplex composed of a C-rich DNA strand and a G-rich RNA strand shows significantly higher bendability than that composed of a G-rich DNA strand and a C-rich RNA strand in the same CpG island promoter regions, which may contribute to the formation of an R-loop. These findings shape our understanding towards biological processes involving R-loops through the high and sequence-dependent bendability of an RDH duplex.

摘要

R环是由RNA-DNA杂交双链(RDH)和一条被置换的单链DNA(ssDNA)组成的核酸结构,其在包括转录和基因组稳定性维持等关键生物学功能中起着根本性作用。在一个R环中,RDH双链被被置换的ssDNA的折叠二级结构弯曲。先前的实验和模拟表明,DNA在低于持久长度时具有很高的可弯曲性。然而,短RDH双链的可弯曲性仍不清楚。在这里,我们通过单分子环化实验报告,在短长度尺度上,RDH双链比DNA双链表现出更高的可弯曲性。我们的分子动力学模拟表明,RDH双链比DNA具有更大的固有曲率和结构波动,并且更容易形成扭结,这促进了RDH从未环化结构的弯曲灵活性。有趣的是,我们发现在相同的CpG岛启动子区域中,由富含C的DNA链和富含G的RNA链组成的RDH双链比由富含G的DNA链和富含C的RNA链组成的RDH双链表现出明显更高的可弯曲性,这可能有助于R环的形成。这些发现通过RDH双链的高弯曲性和序列依赖性,塑造了我们对涉及R环的生物学过程的理解。

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