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通过5-羟基尿嘧啶的单电子氧化在DNA寡聚物中形成异二尿酸损伤:表征、稳定性和切除修复

Formation of isodialuric acid lesion within DNA oligomers via one-electron oxidation of 5-hydroxyuracil: characterization, stability and excision repair.

作者信息

Simon Philippe, Gasparutto Didier, Gambarelli Serge, Saint-Pierre Christine, Favier Alain, Cadet Jean

机构信息

Laboratoire des Lésions des Acides Nucléiques, Département de Recherche Fondamentale sur la Matière Condensée Service de Chimie Inorganique et Biologique, UMR E3 CEA-UJF, CEA-Grenoble, F-38054 Grenoble Cedex 9, France.

出版信息

Nucleic Acids Res. 2006 Aug 2;34(13):3660-9. doi: 10.1093/nar/gkl496. Print 2006.

Abstract

5-Hydroxyuracil is a major oxidized nucleobase that can be generated by the action of (*)OH radical and one-electron oxidants. The latter modified base that exhibits a low ionization potential is highly susceptible to further degradation upon exposure to various oxidants. Emphasis was placed in this work on the formation and characterization of one-electron oxidation products of 5-hydroxyuracil within DNA fragments of defined sequence. For this purpose, 5-hydroxyuracil containing single- and double-stranded oligonucleotides of various lengths were synthesized and then exposed to the oxidizing action of iridium salts. Isodialuric acid was found to be formed almost quantitatively by a one-electron oxidation mechanism for which relevant information was inferred from a freeze-quenched ESR study. Information on the stability of isodialuric acid thus formed and its conversion products in aqueous solutions was also gained from experiments performed at acidic, neutral and alkali pH's. Moreover, biochemical features dealing with the substrate specificity of several bacterial and yeast base excision repair enzymes to remove isodialuric acid from site-specifically modified DNA fragments were determined.

摘要

5-羟基尿嘧啶是一种主要的氧化核碱基,可由(*)OH自由基和单电子氧化剂作用产生。后一种修饰碱基的电离势较低,暴露于各种氧化剂时极易进一步降解。这项工作重点研究了在特定序列的DNA片段中5-羟基尿嘧啶的单电子氧化产物的形成和表征。为此,合成了含有不同长度单链和双链寡核苷酸的5-羟基尿嘧啶,然后使其受到铱盐的氧化作用。通过单电子氧化机制几乎定量地形成了异二脲酸,相关信息是从冷冻淬灭ESR研究中推断出来的。通过在酸性、中性和碱性pH条件下进行的实验,还获得了由此形成的异二脲酸及其在水溶液中的转化产物稳定性的信息。此外,还确定了几种细菌和酵母碱基切除修复酶从位点特异性修饰的DNA片段中去除异二脲酸的底物特异性的生化特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1211/1540730/effb21683d63/gkl496S1.jpg

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