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2'-氟代海因类作为碱基切除修复糖苷酶的化学生物学工具。

2'-Fluorinated Hydantoins as Chemical Biology Tools for Base Excision Repair Glycosylases.

机构信息

Department of Chemistry, University of California, Davis, One Shields Avenue, Davis, California 95616, United States.

出版信息

ACS Chem Biol. 2020 Apr 17;15(4):915-924. doi: 10.1021/acschembio.9b00923. Epub 2020 Mar 13.

Abstract

The guanine oxidation products, 5-guanidinohydantoin (Gh) and spiroiminodihydantoin (Sp), are mutagenic and toxic base lesions that are removed by Fpg, Nei, and the Nei-like (NEIL) glycosylases as the first step in base excision repair (BER). The hydantoins are excellent substrates for the NEIL glycosylases in a variety of DNA contexts beyond canonical duplex DNA, implicating the potential impact of repair activity on a multitude of cellular processes. In order to prepare stable derivatives as chemical biology tools, oligonucleotides containing fluorine at the 2'-position of the sugar of 8-oxo-7,8-dihydro-2'-deoxyguanosine2'-F-OG) were synthesized in ribo and arabino configuration. Selective oxidation of 2'-F-OG within a DNA oligonucleotide provided the corresponding 2'-F-Gh or 2'-F-Sp containing DNA. The 2'-F-hydantoins in duplex DNA were found to be highly resistant to the glycosylase activity of Fpg and NEIL1 compared to the unmodified lesion substrates. Surprisingly, however, some glycosylase-mediated base removal from both the 2'-F-ribo- and 2'-F-arabinohydantoin duplex DNA was observed. Notably, the associated β-lyase strand scission reaction of the 2'-F-arabinohydantoins was inhibited such that the glycosylases were "stalled" at the Schiff-base intermediate. Fpg and NEIL1 showed high affinity for the 2'-F-Gh duplexes in both ribo and arabino configurations. However, binding affinity assessed using catalytically inactive variants of Fpg and NEIL1 indicated higher affinity for the 2'-F-riboGh-containing duplexes. The distinct features of glycosylase processing of 2'-F-ribohydantoins and 2'-F-arabinohydantoins illustrate their utility to reveal structural insight into damage recognition and excision by NEIL and related glycosylases and provide opportunities for delineating the impact of lesion formation and repair in cells.

摘要

鸟嘌呤氧化产物 5-脒基尿嘧啶核苷(Gh)和螺环亚氨基二氢嘧啶核苷(Sp)是具有诱变和毒性的碱基损伤,可被 Fpg、Nei 和 Nei 样(NEIL)糖苷酶作为碱基切除修复(BER)的第一步去除。在各种非经典双链 DNA 之外的 DNA 结构中,这些脒基嘧啶核苷都是 NEIL 糖苷酶的极好底物,这暗示了修复活性对多种细胞过程的潜在影响。为了制备作为化学生物学工具的稳定衍生物,在核糖和阿拉伯糖构型中合成了在糖的 2'-位含有氟原子的包含 8-氧代-7,8-二氢-2'-脱氧鸟苷(8-oxo-dG2'-F-OG)的寡核苷酸。在 DNA 寡核苷酸中选择性氧化 2'-F-OG 提供了相应的包含 2'-F-Gh 或 2'-F-Sp 的 DNA。与未修饰的损伤底物相比,在双链 DNA 中,2'-F-脒基嘧啶核苷高度抵抗 Fpg 和 NEIL1 的糖苷酶活性。然而,令人惊讶的是,在 2'-F-核糖和 2'-F-阿拉伯糖脒嘧啶核苷的双链 DNA 中观察到一些糖苷酶介导的碱基切除。值得注意的是,2'-F-阿拉伯糖脒嘧啶核苷的 β-裂合酶链断裂反应被抑制,使得糖苷酶在希夫碱中间体处“停滞”。Fpg 和 NEIL1 对核糖和阿拉伯糖构型的 2'-F-Gh 双链均表现出高亲和力。然而,使用 Fpg 和 NEIL1 的无催化活性变体评估的结合亲和力表明,对包含 2'-F-核糖-Gh 的双链的亲和力更高。2'-F-核糖脒嘧啶核苷和 2'-F-阿拉伯糖脒嘧啶核苷的糖苷酶加工的独特特征说明了它们在揭示 NEIL 和相关糖苷酶的损伤识别和切除的结构见解方面的效用,并为阐明细胞中损伤形成和修复的影响提供了机会。

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