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六聚体大肠杆菌无机焦磷酸酶在组氨酸136突变为谷氨酰胺或组氨酸140突变为谷氨酰胺时解离为三聚体及其对酶催化特性的影响。

Dissociation of hexameric Escherichia coli inorganic pyrophosphatase into trimers on His-136-->Gln or His-140-->Gln substitution and its effect on enzyme catalytic properties.

作者信息

Baykov A A, Dudarenkov V Y, Käpylä J, Salminen T, Hyytiä T, Kasho V N, Husgafvel S, Cooperman B S, Goldman A, Lahti R

机构信息

A. N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, Russia.

出版信息

J Biol Chem. 1995 Dec 22;270(51):30804-12. doi: 10.1074/jbc.270.51.30804.

Abstract

Each of the five histidines in Escherichia coli inorganic pyrophosphatase (PPase) was replaced in turn by glutamine. Significant changes in protein structure and activity were observed in the H136Q and H140Q variants only. In contrast to wild-type PPase, which is hexameric, these variants can be dissociated into trimers by dilution, as shown by analytical ultracentrifugation and cross-linking. Mg2+ and substrate stabilize the hexameric forms of both variants. The hexameric H136Q- and H140Q-PPases have the same binding affinities for magnesium ion as wild-type, but their hydrolytic activities under optimal conditions are, respectively, 225 and 110% of wild-type PPase, and their synthetic activities, 340 and 140%. The increased activity of hexameric H136Q-PPase results from an increase in the rate constants governing most of the catalytic steps in both directions. Dissociation of the hexameric H136Q and H140Q variants into trimers does not affect the catalytic constants for PPi hydrolysis between pH 6 and 9 but drastically decreases their affinities for Mg2PPi and Mg2+. These results prove that His-136 and His-140 are key residues in the dimer interface and show that hexamer formation improves the substrate binding characteristics of the active site.

摘要

大肠杆菌无机焦磷酸酶(PPase)中的五个组氨酸依次被谷氨酰胺取代。仅在H136Q和H140Q变体中观察到蛋白质结构和活性的显著变化。与野生型六聚体PPase不同,如分析超速离心和交联所示,这些变体可通过稀释解离为三聚体。Mg2+和底物稳定了两种变体的六聚体形式。六聚体H136Q - 和H140Q - PPases对镁离子的结合亲和力与野生型相同,但它们在最佳条件下的水解活性分别是野生型PPase的225%和110%,合成活性分别是340%和140%。六聚体H136Q - PPase活性的增加源于双向控制大多数催化步骤的速率常数的增加。六聚体H136Q和H140Q变体解离为三聚体不影响pH 6至9之间PPi水解的催化常数,但会大幅降低它们对Mg2PPi和Mg2+的亲和力。这些结果证明His - 136和His - 140是二聚体界面中的关键残基,并表明六聚体的形成改善了活性位点的底物结合特性。

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