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RNA-DNA相互作用作为生理功能调节因子的相关性。

The relevance of RNA-DNA interactions as regulators of physiological functions.

作者信息

Stötzel Julia, Warwick Timothy, Tirunagari Praveenya, Brandes Ralf P, Leisegang Matthias S

机构信息

Institute for Cardiovascular Physiology, Goethe University, Frankfurt, Germany.

German Centre of Cardiovascular Research (DZHK), Partner Site RheinMain, Frankfurt, Germany.

出版信息

Pflugers Arch. 2025 May 21. doi: 10.1007/s00424-025-03091-7.

Abstract

RNA-DNA interactions are fundamental to cellular physiology, playing critical roles in genome integrity, gene expression, and stress responses. This review highlights the diverse structures of RNA-DNA hybrids, including R-loops, RNA-DNA triplexes, and RNA-DNA hybrid G-quadruplexes (hG4s) and their relevance in physiology. R-loops are formed during transcription and replication, which regulate gene expression and chromatin dynamics but can also threaten genome stability. RNA-DNA triplexes, often formed by long noncoding RNAs (lncRNAs) such as FENDRR and MEG3, recruit chromatin modifiers like Polycomb repressive complex 2 to modulate gene expression, influencing organogenesis and cell specification. hG4s, formed by guanine-rich sequences in RNA and DNA, regulate transcription termination and telomere stability. Through this, hG4s can affect gene suppression and replication regulation. RNA-DNA hybrids are tightly regulated by helicases, RNase H enzymes, and topoisomerases, with altered regulation linked to genomic instability and disease. This review discusses the complexity of RNA-DNA interactions and their recently identified contributions to cellular physiology.

摘要

RNA与DNA的相互作用是细胞生理学的基础,在基因组完整性、基因表达和应激反应中发挥着关键作用。本综述重点介绍了RNA-DNA杂交体的多种结构,包括R环、RNA-DNA三链体和RNA-DNA杂交G-四链体(hG4s)及其在生理学中的相关性。R环在转录和复制过程中形成,它调控基因表达和染色质动态变化,但也可能威胁基因组稳定性。RNA-DNA三链体通常由FENDRR和MEG3等长链非编码RNA(lncRNAs)形成,招募诸如多梳抑制复合物2等染色质修饰因子来调节基因表达,影响器官发生和细胞特化。hG4s由RNA和DNA中富含鸟嘌呤的序列形成,调控转录终止和端粒稳定性。通过这种方式,hG4s可以影响基因抑制和复制调控。RNA-DNA杂交体受到解旋酶、RNase H酶和拓扑异构酶的严格调控,调控的改变与基因组不稳定和疾病有关。本综述讨论了RNA-DNA相互作用的复杂性及其最近被发现的对细胞生理学的贡献。

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