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RNA 聚合酶 II 通过涉及孤对-π 和 CH-π 相互作用的扭转闩锁机制在氧化 DNA 损伤处停滞。

RNA polymerase II stalls on oxidative DNA damage via a torsion-latch mechanism involving lone pair-π and CH-π interactions.

机构信息

Division of Pharmaceutical Sciences, Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California San Diego, La Jolla, CA 92093.

Department of Cellular and Molecular Medicine, School of Medicine, University of California San Diego, La Jolla, CA 92093.

出版信息

Proc Natl Acad Sci U S A. 2020 Apr 28;117(17):9338-9348. doi: 10.1073/pnas.1919904117. Epub 2020 Apr 13.

Abstract

Oxidation of guanine generates several types of DNA lesions, such as 8-oxoguanine (8OG), 5-guanidinohydantoin (Gh), and spiroiminodihydantoin (Sp). These guanine-derived oxidative DNA lesions interfere with both replication and transcription. However, the molecular mechanism of transcription processing of Gh and Sp remains unknown. In this study, by combining biochemical and structural analysis, we revealed distinct transcriptional processing of these chemically related oxidized lesions: 8OG allows both error-free and error-prone bypass, whereas Gh or Sp causes strong stalling and only allows slow error-prone incorporation of purines. Our structural studies provide snapshots of how polymerase II (Pol II) is stalled by a nonbulky Gh lesion in a stepwise manner, including the initial lesion encounter, ATP binding, ATP incorporation, jammed translocation, and arrested states. We show that while Gh can form hydrogen bonds with adenosine monophosphate (AMP) during incorporation, this base pair hydrogen bonding is not sufficient to hold an ATP substrate in the addition site and is not stable during Pol II translocation after the chemistry step. Intriguingly, we reveal a unique structural reconfiguration of the Gh lesion in which the hydantoin ring rotates ∼90° and is perpendicular to the upstream base pair planes. The perpendicular hydantoin ring of Gh is stabilized by noncanonical lone pair-π and CH-π interactions, as well as hydrogen bonds. As a result, the Gh lesion, as a functional mimic of a 1,2-intrastrand crosslink, occupies canonical -1 and +1 template positions and compromises the loading of the downstream template base. Furthermore, we suggest Gh and Sp lesions are potential targets of transcription-coupled repair.

摘要

鸟嘌呤氧化会产生多种类型的 DNA 损伤,如 8-氧鸟嘌呤(8OG)、5-脒基尿嘧啶(Gh)和螺环亚氨基二氢嘧啶(Sp)。这些来源于鸟嘌呤的氧化 DNA 损伤会干扰复制和转录。然而,Gh 和 Sp 的转录加工的分子机制尚不清楚。在这项研究中,我们通过结合生化和结构分析,揭示了这些化学相关氧化损伤的不同转录加工方式:8OG 既允许无差错又允许易错旁路,而 Gh 或 Sp 则导致强烈的停滞,只允许嘌呤缓慢易错掺入。我们的结构研究提供了聚合酶 II(Pol II)被非块状 Gh 损伤逐步停滞的快照,包括初始损伤结合、ATP 结合、ATP 掺入、卡住的易位和停滞状态。我们表明,虽然 Gh 在掺入过程中可以与单磷酸腺苷(AMP)形成氢键,但这种碱基对氢键不足以在加位点保持 ATP 底物,并且在化学步骤后的 Pol II 易位过程中不稳定。有趣的是,我们揭示了 Gh 损伤的一种独特结构重排,其中脒环旋转约 90°并垂直于上游碱基对平面。Gh 的垂直脒环由非经典的孤对-π 和 CH-π 相互作用以及氢键稳定。因此,Gh 损伤作为 1,2-链内交联的功能模拟物,占据了典型的-1 和+1 模板位置,并破坏了下游模板碱基的加载。此外,我们认为 Gh 和 Sp 损伤是转录偶联修复的潜在靶点。

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