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一种为高效催化有毒烯醛而定制的谷胱甘肽转移酶A1-1突变体的结构分析

Structural analysis of a glutathione transferase A1-1 mutant tailored for high catalytic efficiency with toxic alkenals.

作者信息

Balogh Larissa M, Le Trong Isolde, Kripps Kimberly A, Tars Kaspars, Stenkamp Ronald E, Mannervik Bengt, Atkins William M

机构信息

Department of Medicinal Chemistry, University of Washington, Seattle, Washington 98195, USA.

出版信息

Biochemistry. 2009 Aug 18;48(32):7698-704. doi: 10.1021/bi900895b.

Abstract

The specificity of human glutathione transferase (GST) A1-1 is drastically altered to favor alkenal substrates in the GIMFhelix mutant designed to mimic first-sphere interactions utilized by GSTA4-4. This redesign serves as a model for improving our understanding of the structural determinants that contribute to the distinct specificities of alpha class GSTs. Herein we report the first crystal structures of GIMFhelix, both in complex with GSH and in apo form at 1.98 and 2.38 A resolution. In contrast to the preorganized hydrophobic binding pocket that accommodates alkenals in GSTA4-4, GSTA1-1 includes a dynamic alpha9 helix that undergoes a ligand-dependent localization to complete the active site. Comparisons of the GIMFhelix structures with previously reported structures show a striking similarity with the GSTA4-4 active site obtained within an essentially GSTA1-1 scaffold and reveal the alpha9 helix assumes a similar localized structure regardless of active site occupancy in a manner resembling that of GSTA4-4. However, we cannot fully account for all the structural elements important in GSTA4-4 within the mutant's active site. The contribution of Phe10 to the Tyr212-Phe10-Phe220 network prevents complete C-terminal closure and demonstrates that the presence of Phe10 within the context of a GSTA4-4-like active site may ultimately hinder Phe220, a key C-terminal residue, from effectively contributing to the active site. In total, these results illustrate the remaining structural differences presumably reflected in the previously reported catalytic efficiencies of GIMFhelix and GSTA4-4 and emphasize the F10P mutation as being necessary to completely accomplish the transformation to a highly specific GST from the more promiscuous GSTA1-1 enzyme.

摘要

在设计用于模拟GSTA4-4利用的一级相互作用的GIMFhelix突变体中,人谷胱甘肽转移酶(GST)A1-1的特异性发生了显著改变,以有利于烯醛底物。这种重新设计为增进我们对有助于α类GST不同特异性的结构决定因素的理解提供了一个模型。在此,我们报告了GIMFhelix的首个晶体结构,其与谷胱甘肽(GSH)结合以及无配体形式的晶体结构,分辨率分别为1.98 Å和2.38 Å。与GSTA4-4中容纳烯醛的预组织化疏水结合口袋不同,GSTA1-1包含一个动态的α9螺旋,该螺旋经历配体依赖性定位以完成活性位点。将GIMFhelix结构与先前报道的结构进行比较,发现在基本为GSTA1-1支架内获得的GSTA4-4活性位点与之有惊人的相似性,并揭示α9螺旋无论活性位点是否被占据都呈现出类似的局部结构,其方式类似于GSTA4-4。然而,我们无法完全解释突变体活性位点内对GSTA4-4重要的所有结构元件。苯丙氨酸10(Phe10)对酪氨酸212 - 苯丙氨酸10 - 苯丙氨酸220(Tyr212 - Phe10 - Phe220)网络的贡献阻止了C末端的完全闭合,并表明在类似GSTA4-4活性位点的背景下存在Phe10可能最终会阻碍关键的C末端残基苯丙氨酸220(Phe220)有效地对活性位点做出贡献。总体而言,这些结果说明了可能反映在先前报道的GIMFhelix和GSTA4-4催化效率中的剩余结构差异,并强调F10P突变对于从更为混杂的GSTA1-1酶完全转变为高度特异性的GST是必要的。

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