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Mechanism, specificity and structure of the deubiquitinases.去泛素化酶的作用机制、特异性和结构
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Ubiquitin vinyl methyl ester binding orients the misaligned active site of the ubiquitin hydrolase UCHL1 into productive conformation.泛素乙烯基甲酯结合将未对准的泛素水解酶UCHL1 的活性位点定向到生产性构象。
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The potential role of ubiquitin c-terminal hydrolases in oncogenesis.泛素羧基末端水解酶在肿瘤发生中的潜在作用。
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活性位点谷氨酰胺对泛素 C 末端水解酶速率增强的贡献。

Contribution of active site glutamine to rate enhancement in ubiquitin C-terminal hydrolases.

机构信息

Department of Chemistry, Purdue University, West Lafayette, IN, USA.

出版信息

FEBS J. 2012 Mar;279(6):1106-18. doi: 10.1111/j.1742-4658.2012.08507.x. Epub 2012 Feb 27.

DOI:10.1111/j.1742-4658.2012.08507.x
PMID:22284438
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3410986/
Abstract

Ubiquitin C-terminal hydrolases (UCHs) are cysteine proteases featuring a classical Cys-His-Asp catalytic triad, and also a highly conserved Gln that is thought to be a part of the oxyanion hole. However, the contribution of this side chain to catalysis by UCHs is not known. Herein, we demonstrate that the Gln side chain contributes to rate enhancement in UCHL1, UCHL3, and UCHL5. Mutation of the Gln to Ala in these enzymes impairs the catalytic efficiency, mainly because of a 16-fold to 30-fold reduction in k(cat) , which is consistent with a loss of approximately 2 kcal·mol(-1) in transition state stabilization. However, the contribution to transition state stabilization observed here is rather modest for the side chain's role in oxyanion stabilization. Interestingly, we discovered that the carbonyl oxygen of this side chain is engaged in a C-H···O hydrogen-bonding contact with the CεH group of the catalytic His. Upon further analysis, we found that this interaction is a common active site structural feature in most cysteine proteases, including papain, belonging to families with the QCH(N/D) type of active site configuration. It is possible that removal of the Gln side chain might have abolished the C-H···O interaction, which typically accounts for 2 kcal·mol(-1) of stabilization, leading to the effect on catalysis observed here. Additional studies performed on UCHL3 by mutating the Gln to Glu (strong C-H···O acceptor but oxyanion destabilizer) and to Lys (strong oxyanion stabilizer but lacking C-H···O hydrogen-bonding capability) suggest that the C-H···O hydrogen bond could contribute to catalysis.

摘要

泛素羧基末端水解酶(UCHs)是一类具有经典的 Cys-His-Asp 催化三联体的半胱氨酸蛋白酶,同时还具有高度保守的 Gln,该 Gln 被认为是氧阴离子穴的一部分。然而,UCHs 中该侧链对催化的贡献尚不清楚。在此,我们证明 Gln 侧链有助于 UCHL1、UCHL3 和 UCHL5 的速率增强。这些酶中 Gln 突变为 Ala 会损害催化效率,主要是因为 k(cat)降低了 16 倍至 30 倍,这与过渡态稳定中大约损失 2 kcal·mol(-1)一致。然而,与氧阴离子稳定化中侧链的作用相比,这里观察到的对过渡态稳定化的贡献相当适度。有趣的是,我们发现该侧链的羰基氧与催化 His 的 CεH 基团形成了 C-H···O 氢键。进一步分析后,我们发现这种相互作用是大多数半胱氨酸蛋白酶(包括属于 QCH(N/D) 型活性位点构型家族的木瓜蛋白酶)的常见活性位点结构特征。可能是 Gln 侧链的去除消除了 C-H···O 相互作用,该相互作用通常占 2 kcal·mol(-1)的稳定化作用,导致了这里观察到的对催化的影响。对 UCHL3 进行的额外研究表明,将 Gln 突变为 Glu(强 C-H···O 受体但氧阴离子去稳定化剂)和 Lys(强氧阴离子稳定剂但缺乏 C-H···O 氢键形成能力),C-H···O 氢键可能有助于催化。