Suppr超能文献

DNA糖基化酶对氧化性DNA损伤的碱基切除修复

Base-excision repair of oxidative DNA damage by DNA glycosylases.

作者信息

Dizdaroglu Miral

机构信息

Chemical Science and Technology Laboratory, National Institute of Standards and Technology, Gaithersburg, MD 20899-8311, USA.

出版信息

Mutat Res. 2005 Dec 11;591(1-2):45-59. doi: 10.1016/j.mrfmmm.2005.01.033. Epub 2005 Jul 27.

Abstract

Oxidative damage to DNA caused by free radicals and other oxidants generate base and sugar damage, strand breaks, clustered sites, tandem lesions and DNA-protein cross-links. Oxidative DNA damage is mainly repaired by base-excision repair in living cells with the involvement of DNA glycosylases in the first step and other enzymes in subsequent steps. DNA glycosylases remove modified bases from DNA, generating an apurinic/apyrimidinic (AP) site. Some of these enzymes that remove oxidatively modified DNA bases also possess AP-lyase activity to cleave DNA at AP sites. DNA glycosylases possess varying substrate specificities, and some of them exhibit cross-activity for removal of both pyrimidine- and purine-derived lesions. Most studies on substrate specificities and excision kinetics of DNA glycosylases were performed using oligonucleotides with a single modified base incorporated at a specific position. Other studies used high-molecular weight DNA containing multiple pyrimidine- and purine-derived lesions. In this case, substrate specificities and excision kinetics were found to be different from those observed with oligonucleotides. This paper reviews substrate specificities and excision kinetics of DNA glycosylases for removal of pyrimidine- and purine-derived lesions in high-molecular weight DNA.

摘要

自由基和其他氧化剂对DNA造成的氧化损伤会产生碱基和糖损伤、链断裂、簇状位点、串联损伤以及DNA-蛋白质交联。在活细胞中,氧化DNA损伤主要通过碱基切除修复来修复,第一步涉及DNA糖基化酶,后续步骤涉及其他酶。DNA糖基化酶从DNA中去除修饰碱基,产生无嘌呤/无嘧啶(AP)位点。一些去除氧化修饰DNA碱基的酶还具有AP裂解酶活性,可在AP位点切割DNA。DNA糖基化酶具有不同的底物特异性,其中一些对去除嘧啶和嘌呤衍生的损伤均表现出交叉活性。大多数关于DNA糖基化酶底物特异性和切除动力学的研究是使用在特定位置掺入单个修饰碱基的寡核苷酸进行的。其他研究使用含有多个嘧啶和嘌呤衍生损伤的高分子量DNA。在这种情况下,发现底物特异性和切除动力学与寡核苷酸观察到的不同。本文综述了DNA糖基化酶在高分子量DNA中去除嘧啶和嘌呤衍生损伤的底物特异性和切除动力学。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验