Suppr超能文献

一种脱氧尿苷三磷酸酶的结构/功能分析:一种潜在化疗靶点的催化机制

Structure/function analysis of a dUTPase: catalytic mechanism of a potential chemotherapeutic target.

作者信息

Harris J M, McIntosh E M, Muscat G E

机构信息

Centre for Molecular and Cellular Biology, University of Queensland, St Lucia, Australia.

出版信息

J Mol Biol. 1999 Apr 30;288(2):275-87. doi: 10.1006/jmbi.1999.2680.

Abstract

dUTP pyrophosphatase catalyses hydrolysis of deoxyuridine triphosphate (dUTP) to deoxyuridine monophosphate (dUMP) and inorganic pyrophosphate (PPi). Elimination of dUTP is vital since its misincorporation into DNA by DNA polymerases can initiate a damaging iterative repair and misincorporation cycle, resulting in DNA fragmentation and cell death. The anti-tumour activity of folate agonists and thymidylate synthase inhibitors is thought to rely on dUTP misincorporation. Furthermore, retroviral cDNA production may be particularly susceptible to the effects of dUTP misincorporation by virtue of the error-prone nature of reverse trans criptase. Consequently, dUTPase activity is an ideal point of intervention in both chemotherapy and anti-retroviral therapy. In particular, the dUTPase encoded by a human endogenous retrovirus (HERV-K) has been suggested to complement HIV infection and so is an attractive target for specific inhibition. Hence, we used site photoaffinity labelling, site-directed mutagenesis and molecular modelling to assign catalytic roles to the conserved amino acid residues in the active site of the HERV-K dUTPase and to identify structural differences with other dUTPase enzymes. We found that dUTP photoaffinity labelling was specific for a beta-hairpin motif in HERV-K dUTPase. Mutagenesis of aspartate residues Asp84 and 86 to asparagine within this beta-hairpin showed the carboxylate moiety of both residues was required for catalysis but not for dUTP binding. An increase in the pKa of both aspartate residues brought about by substitution of a serine residue with a glutamate residue adjacent to the aspartate residues increased activity by a factor of 1.67 at pH 8.0, implicating general base catalysis as the enzyme's catalytic mechanism. Conservative mutagenesis of Tyr87 to Phe resulted in a sevenfold reduction of dUTPase activity and a 3.3-fold reduction in binding activity, whilst substitution with an isoleucine residue totally abolished both catalytic activity and dUTP binding, suggesting that binding/activity is dependent on an aromatic side-chain at the base of the hairpin. Comparison of a homology-based three-dimensional model structure of HERV-K dUTPase with a crystallographic structure of the human dUTPase revealed displacement of a conserved alpha-helix in the HERV-K enzyme causing expansion of the HERV-K active site. This expansion may be responsible for the ability of the HERV-K enzyme to hydrolyse dTTP and bind the bulkier dNTPs in contrast to the majority of dUTPases which are highly specific for dUTP. Knowledge of the dUTPase catalytic mechanism and the distinctive topography of the HERV-K active site provides a molecular basis for the design of HERV-K dUTPase-specific inhibitors.

摘要

脱氧尿苷三磷酸酶催化三磷酸脱氧尿苷(dUTP)水解生成脱氧尿苷单磷酸(dUMP)和无机焦磷酸(PPi)。清除dUTP至关重要,因为DNA聚合酶将其错误掺入DNA会引发具有破坏性的迭代修复和错误掺入循环,导致DNA片段化和细胞死亡。叶酸激动剂和胸苷酸合成酶抑制剂的抗肿瘤活性被认为依赖于dUTP的错误掺入。此外,由于逆转录酶容易出错的特性,逆转录病毒cDNA的产生可能特别容易受到dUTP错误掺入的影响。因此,dUTPase活性是化疗和抗逆转录病毒治疗中理想的干预靶点。特别是,有人提出人类内源性逆转录病毒(HERV-K)编码的dUTPase可补充HIV感染,因此是特异性抑制的一个有吸引力的靶点。因此,我们使用位点光亲和标记、定点诱变和分子建模来确定HERV-K dUTPase活性位点中保守氨基酸残基的催化作用,并识别与其他dUTPase酶的结构差异。我们发现dUTP光亲和标记对HERV-K dUTPase中的一个β-发夹基序具有特异性。在这个β-发夹内将天冬氨酸残基Asp84和86突变为天冬酰胺表明,这两个残基的羧基部分是催化所必需的,但不是dUTP结合所必需的。通过将与天冬氨酸残基相邻的丝氨酸残基替换为谷氨酸残基,导致两个天冬氨酸残基的pKa增加,在pH 8.0时活性提高了1.67倍,这表明一般碱催化是该酶的催化机制。将Tyr87保守突变为Phe导致dUTPase活性降低7倍,结合活性降低3.3倍,而用异亮氨酸残基替换则完全消除了催化活性和dUTP结合,这表明结合/活性依赖于发夹底部的芳香侧链。将基于同源性的HERV-K dUTPase三维模型结构与人类dUTPase的晶体结构进行比较,发现HERV-K酶中一个保守的α-螺旋发生位移,导致HERV-K活性位点扩大。与大多数对dUTP具有高度特异性的dUTPase相比,这种扩大可能是HERV-K酶能够水解dTTP并结合更大的dNTP的原因。了解dUTPase催化机制和HERV-K活性位点独特的拓扑结构为设计HERV-K dUTPase特异性抑制剂提供了分子基础。

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