氧化DNA损伤通过改变DNA修复过程加剧了替代DNA结构的致突变潜力。

IF 2.3 4区 医学 Q3 ENVIRONMENTAL SCIENCES
Alex W Klattenhoff, Maha Zewail-Foote, Arti Madan, Anna Chiu, Karen M Vasquez
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引用次数: 0

摘要

替代DNA结构形成(即非b)序列,如h -DNA形成序列,在人类癌症基因组的染色体易位热点富集,强调了它们在基因组不稳定性中的作用。H-DNA特别容易受到活性氧(ROS)的DNA损伤,这是内源性代谢和环境污染物的常见副产物,从而加剧了其致突变潜力。b dna中的氧化损伤通过碱基切除修复(BER)有效地处理,而h dna则通过核苷酸切除修复(NER)以诱变方式处理。因此,我们推测H-DNA内氧化损伤的修复将促进异常的BER和NER加工,最终增强突变。在这里,我们通过测量突变频率和光谱的变化,以及在存在或不存在特定DNA修复蛋白的情况下,与人类细胞中关键NER和BER蛋白的关联,研究了H-DNA内氧化损伤的处理。我们的研究结果表明,氧化损伤的H-DNA作为BER和NER的底物,并揭示了BER和NER蛋白之间的相互作用,这影响了突变结果。这个新框架建立了氧化应激、DNA修复和h -DNA相关突变之间的联系,为环境相关DNA损伤如何在癌症相关热点驱动序列特异性基因组不稳定性提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Oxidative DNA Damage Exacerbates the Mutagenic Potential of Alternative DNA Structures via Altered DNA Repair Processing.

Alternative DNA structure-forming (i.e., non-B) sequences such as H-DNA-forming sequences are enriched at chromosomal translocation hotspots in human cancer genomes, underscoring their role in genomic instability. H-DNA is particularly susceptible to DNA damage by reactive oxygen species (ROS), a common byproduct from both endogenous metabolism and environmental contaminants, thereby exacerbating its mutagenic potential. Oxidative lesions within B-DNA are efficiently processed by base excision repair (BER), whereas H-DNA is processed in a mutagenic fashion by nucleotide excision repair (NER). Thus, we speculate that the repair of oxidative lesions within H-DNA will promote aberrant BER and NER processing, ultimately enhancing mutagenesis. Here, we examine the processing of oxidative damage within H-DNA by measuring the changes in mutation frequencies and spectra, as well as the association with key NER and BER proteins in human cells in the presence or absence of specific DNA repair proteins. Our results demonstrate that oxidatively damaged H-DNA serves as a substrate for both BER and NER and reveals an interplay between BER and NER proteins, which influences mutation outcomes. This novel framework establishes a link between oxidative stress, DNA repair, and H-DNA-associated mutagenesis, providing insight into how environmentally relevant DNA damage can drive sequence-specific genomic instability at cancer-associated hotspots.

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来源期刊
CiteScore
5.40
自引率
10.70%
发文量
52
审稿时长
12-24 weeks
期刊介绍: Environmental and Molecular Mutagenesis publishes original research manuscripts, reviews and commentaries on topics related to six general areas, with an emphasis on subject matter most suited for the readership of EMM as outlined below. The journal is intended for investigators in fields such as molecular biology, biochemistry, microbiology, genetics and epigenetics, genomics and epigenomics, cancer research, neurobiology, heritable mutation, radiation biology, toxicology, and molecular & environmental epidemiology.
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