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耶尔森氏菌蛋白酪氨酸磷酸酶中配体诱导的构象变化。

A ligand-induced conformational change in the Yersinia protein tyrosine phosphatase.

作者信息

Schubert H L, Fauman E B, Stuckey J A, Dixon J E, Saper M A

机构信息

Biophysics Research Division, University of Michigan, Ann Arbor 48109-1055, USA.

出版信息

Protein Sci. 1995 Sep;4(9):1904-13. doi: 10.1002/pro.5560040924.

Abstract

Protein tyrosine phosphatases (PTPases) play critical roles in the intracellular signal transduction pathways that regulate cell transformation, growth, and proliferation. The structures of several different PTPases have revealed a conserved active site architecture in which a phosphate-binding loop, together with an invariant arginine, cradle the phosphate of a phosphotyrosine substrate and poise it for nucleophilic attack by an invariant cysteine nucleophile. We previously reported that binding of tungstate to the Yop51 PTPase from Yersinia induced a loop conformational change that moved aspartic acid 356 into the active site, where it can function as a general acid. This is consistent with the aspartic acid donating a proton to the tyrosyl leaving group during the initial hydrolysis step. In this report, using a similar structure of the inactive Cys 403-->Ser mutant of the Yersinia PTPase complexed with sulfate, we detail the structural and functional details of this conformational change. In response to oxyanion binding, small perturbations occur in active site residues, especially Arg 409, and trigger the loop to close. Interestingly, the peptide bond following Asp 356 has flipped to ligate a buried, active site water molecule that also hydrogen bonds to the bound sulfate anion and two invariant glutamines. Loop closure also significantly decreases the solvent accessibility of the bound oxyanion and could effectively shield catalytic intermediates from phosphate acceptors other than water. We speculate that the intrinsic loop flexibility of different PTPases may be related to their catalytic rate and may play a role in the wide range of activities observed within this enzyme family.

摘要

蛋白酪氨酸磷酸酶(PTPases)在调节细胞转化、生长和增殖的细胞内信号转导途径中发挥着关键作用。几种不同PTPases的结构揭示了一种保守的活性位点结构,其中一个磷酸结合环与一个不变的精氨酸共同支撑着磷酸化酪氨酸底物的磷酸基团,并使其为不变的半胱氨酸亲核试剂的亲核攻击做好准备。我们之前报道过,钨酸盐与耶尔森氏菌的Yop51 PTPase结合会诱导一个环构象变化,使天冬氨酸356移动到活性位点,在那里它可以作为一种广义酸发挥作用。这与天冬氨酸在初始水解步骤中向酪氨酰离去基团提供一个质子是一致的。在本报告中,我们利用与硫酸盐复合的耶尔森氏菌PTPase的无活性半胱氨酸403→丝氨酸突变体的类似结构,详细阐述了这种构象变化的结构和功能细节。响应氧阴离子结合,活性位点残基,特别是精氨酸409会发生微小扰动,并触发环关闭。有趣的是,天冬氨酸356之后的肽键发生翻转,连接一个埋藏在活性位点的水分子,该水分子也与结合的硫酸根阴离子和两个不变的谷氨酰胺形成氢键。环关闭还显著降低了结合的氧阴离子的溶剂可及性,并能有效地将催化中间体与除水以外的磷酸受体隔离开来。我们推测,不同PTPases固有的环灵活性可能与其催化速率有关,并可能在该酶家族中观察到的广泛活性中发挥作用。

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