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人类SMUG1 DNA糖基化酶损伤识别与催化机制的突变分析

Mutational analysis of the damage-recognition and catalytic mechanism of human SMUG1 DNA glycosylase.

作者信息

Matsubara Mayumi, Tanaka Tamon, Terato Hiroaki, Ohmae Eiji, Izumi Shunsuke, Katayanagi Katsuo, Ide Hiroshi

机构信息

Department of Mathematical and Life Sciences, Graduate School of Science, Hiroshima University, Higashi-Hiroshima 739-8526, Japan.

出版信息

Nucleic Acids Res. 2004 Oct 5;32(17):5291-302. doi: 10.1093/nar/gkh859. Print 2004.

Abstract

Single-strand selective monofunctional uracil-DNA glycosylase (SMUG1), previously thought to be a backup enzyme for uracil-DNA glycosylase, has recently been shown to excise 5-hydroxyuracil (hoU), 5-hydroxymethyluracil (hmU) and 5-formyluracil (fU) bearing an oxidized group at ring C5 as well as an uracil. In the present study, we used site-directed mutagenesis to construct a series of mutants of human SMUG1 (hSMUG1), and tested their activity for uracil, hoU, hmU, fU and other bases to elucidate the catalytic and damage-recognition mechanism of hSMUG1. The functional analysis of the mutants, together with the homology modeling of the hSMUG1 structure based on that determined recently for Xenopus laevis SMUG1, revealed the crucial residues for the rupture of the N-glycosidic bond (Asn85 and His239), discrimination of pyrimidine rings through pi-pi stacking to the base (Phe98) and specific hydrogen bonds to the Watson-Crick face of the base (Asn163) and exquisite recognition of the C5 substituent through water-bridged (uracil) or direct (hoU, hmU and fU) hydrogen bonds (Gly87-Met91). Integration of the present results and the structural data elucidates how hSMUG1 accepts uracil, hoU, hmU and fU as substrates, but not other oxidized pyrimidines such as 5-hydroxycytosine, 5-formylcytosine and thymine glycol, and intact pyrimidines such as thymine and cytosine.

摘要

单链选择性单功能尿嘧啶-DNA糖基化酶(SMUG1),以前被认为是尿嘧啶-DNA糖基化酶的备用酶,最近已被证明能够切除在C5环带有氧化基团的5-羟基尿嘧啶(hoU)、5-羟甲基尿嘧啶(hmU)和5-甲酰基尿嘧啶(fU)以及尿嘧啶。在本研究中,我们使用定点诱变构建了一系列人类SMUG1(hSMUG1)突变体,并测试了它们对尿嘧啶、hoU、hmU、fU和其他碱基的活性,以阐明hSMUG1的催化和损伤识别机制。对突变体的功能分析,以及基于最近测定的非洲爪蟾SMUG1结构对hSMUG1结构进行的同源建模,揭示了N-糖苷键断裂的关键残基(Asn85和His239)、通过与碱基的π-π堆积区分嘧啶环(Phe98)、与碱基的沃森-克里克面形成特定氢键(Asn163)以及通过水桥(尿嘧啶)或直接(hoU、hmU和fU)氢键对C5取代基的精确识别(Gly87-Met91)。整合本研究结果和结构数据阐明了hSMUG1如何将尿嘧啶、hoU、hmU和fU作为底物接受,而不接受其他氧化嘧啶,如5-羟基胞嘧啶、5-甲酰基胞嘧啶和胸腺嘧啶二醇,以及完整的嘧啶,如胸腺嘧啶和胞嘧啶。

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