DNA聚合酶Eta (polη)旁路致突变性DNA损伤的影响因素

Hunmin Jung
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引用次数: 2

摘要

DNA复制的完整性不断受到各种外源和内源性因素以及一些表观遗传因素的威胁。当基因组受到损伤时,细胞对损伤的反应主要有两种,DNA损伤修复和DNA损伤耐受。DNA损伤耐受的主要机制之一是DNA损伤旁路,这是由称为Y家族DNA聚合酶的特定DNA聚合酶进行的,包括DNA聚合酶η(polη)。自从发现polη在绕过环丁烷嘧啶二聚体(CPD)方面的独特作用以来,实验表明polη绕过了广泛的DNA损伤。2010年,通过X射线晶体学首次阐明了polη的N-末端催化结构域,极大地促进了pol的结构研究。从那时起,已经发表了许多polη催化结构域晶体结构,它们与进入的核苷酸和含有DNA的损伤复合,包括嘧啶二聚体、顺铂-GpG加合物、8-氧鸟嘌呤(oxoG)、8-氧腺嘌呤(oxoA)、N7甲基鸟嘌呤(N7mG)、O6-甲基鸟嘌呤、次黄嘌呤(HX)和许多其他。尽管已知polη的活性位点是刚性的,几乎没有构象变化,但有几个因素可以促进病变旁路,如催化金属、顺反构象平衡、互变异构化和polη特定的残基。本综述详细讨论了这些组成部分中的每一个。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Contributing Factors for Mutagenic DNA Lesion Bypass by DNA Polymerase Eta (polη)
The integrity of DNA replication is under constant threat from various exogenous and endogenous factors along with some epigenetic factors. When there is damage to the genome, cells respond to the damage in two major ways, DNA damage repair and DNA damage tolerance. One of the major mechanisms for DNA damage tolerance is DNA lesion bypass, which is performed by specific DNA polymerases called Y-family DNA polymerases including DNA polymerase eta (polη). Ever since the discovery of polη’s unique role in bypassing cyclobutane pyrimidine dimer (CPD), a wide range of DNA lesions have been experimentally shown to be bypassed by polη. The structural study of polη was greatly boosted by the first elucidation of the N-terminal catalytic domain of polη by X-ray crystallography in 2010. Ever since, a lot of polη catalytic domain crystal structures have been published, which were complexed with an incoming nucleotide and a lesion containing DNA including pyrimidine dimers, cisplatin GpG adduct, 8-oxoguanine (oxoG), 8-oxoadenine (oxoA), N7-methylguanine (N7mG), O6-methylguanine (O6mG), hypoxanthine (HX), and many others. Though polη’s active site is known to be rigid with few conformational changes, there are several contributing factors that could facilitate the lesion bypass such as catalytic metals, syn–anti conformational equilibrium, tautomerization, and specific residues of polη. Each of these components are discussed in detail in this review.
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