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非典型蛋白酪氨酸磷酸酶 VHZ 的新功能方面。

New functional aspects of the atypical protein tyrosine phosphatase VHZ.

机构信息

Department of Chemistry and Biochemistry, Utah State University , Logan, Utah 84322-0300, United States.

出版信息

Biochemistry. 2013 Nov 12;52(45):8012-25. doi: 10.1021/bi400776z. Epub 2013 Oct 29.

Abstract

LDP3 (VHZ) is the smallest classical protein tyrosine phosphatase (PTP) known to date and was originally misclassified as an atypical dual-specificity phosphatase. Kinetic isotope effects with steady-state and pre-steady-state kinetics of VHZ and mutants with p-nitrophenol phosphate have revealed several unusual properties. VHZ is significantly more active than previously reported but remains one of the least active PTPs. Highly unusual for a PTP, VHZ possesses two acidic residues (E134 and D65) in the active site. D65 occupies the position corresponding to the typical general acid in the PTP family. However, VHZ primarily utilizes E134 as the general acid, with D65 taking over this role when E134 is mutated. This unusual behavior is facilitated by two coexisting, but unequally populated, substrate binding modes. Unlike most classical PTPs, VHZ exhibits phosphotransferase activity. Despite the presence of the Q-loop that normally prevents alcoholysis of the phosphoenzyme intermediate in other classical PTPs, VHZ readily phosphorylates ethylene glycol. Although mutations of Q-loop residues affect this phosphotransferase activity, mutations on the IPD loop that contains the general acid exert more control over this process. A single P68V substitution on this loop completely abolishes phosphotransferase activity. The ability of native VHZ to catalyze transphosphorylation may lead to an imbalance of intracellular phosphorylation, which could explain the correlation of its overexpression with several types of cancer.

摘要

LDP3(VHZ)是目前已知的最小的经典酪氨酸磷酸酶(PTP),最初被错误分类为非典型的双特异性磷酸酶。使用 VHZ 和带有对硝基苯酚磷酸盐的突变体的稳态和预稳态动力学的同位素效应揭示了几个不寻常的特性。VHZ 的活性明显高于以前报道的,但仍然是最不活跃的 PTP 之一。对于 PTP 来说非常不寻常的是,VHZ 在活性位点中具有两个酸性残基(E134 和 D65)。D65 占据了 PTP 家族中典型的通用酸的位置。然而,VHZ 主要将 E134 用作通用酸,当 E134 发生突变时,D65 会接管这个角色。这种不寻常的行为是由两种共存但分布不均的底物结合模式促成的。与大多数经典 PTP 不同,VHZ 表现出磷酸转移酶活性。尽管存在通常会阻止其他经典 PTP 中磷酸酶中间物的醇解的 Q 环,但 VHZ 很容易磷酸化乙二醇。尽管 Q 环残基的突变会影响这种磷酸转移酶活性,但包含通用酸的 IPD 环上的突变对该过程的控制作用更大。该环上单个 P68V 取代完全消除了磷酸转移酶活性。天然 VHZ 催化转磷酸化的能力可能导致细胞内磷酸化的不平衡,这可以解释其过表达与几种类型癌症的相关性。

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