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Catalytic properties of an Escherichia coli formate dehydrogenase mutant in which sulfur replaces selenium.

机译:硫取代硒的大肠杆菌甲酸脱氢酶突变体的催化特性。

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摘要

Formate dehydrogenase H of Escherichia coli contains selenocysteine as an integral amino acid. We have purified a mutant form of the enzyme in which cysteine replaces selenocysteine. To elucidate the essential catalytic role of selenocysteine, kinetic and physical properties of the mutant enzyme were compared with those of wild type. The mutant and wild-type enzymes displayed similar pH dependencies with respect to activity and stability, although the mutant enzyme profiles were slightly shifted to more alkaline pH. Both enzymes were inactivated by reaction with iodoacetamide; however, addition of the substrate, formate, was necessary to render the enzymes susceptible to alkylation. Alkylation-induced inactivation was highly dependent on pH, with each enzyme displaying an alkylation vs. pH profile suggestive of an essential selenol or thiol. Both forms of the enzyme use a ping-pong bi-bi kinetic mechanism. The mutant enzyme binds formate with greater affinity than does the wild-type enzyme, as shown by reduced values of Km and Kd. However, the mutant enzyme has a turnover number which is more than two orders of magnitude lower than that of the native selenium-containing enzyme. The lower turnover number results from a diminished reaction rate for the initial step of the overall reaction, as found in kinetic analyses that employed the alternative substrate deuterioformate. These results indicate that the selenium of formate dehydrogenase H is directly involved in formate oxidation. The observed differences in kinetic properties may help explain the evolutionary conservation of selenocysteine at the enzyme's active site.
机译:大肠杆菌的甲酸酯脱氢酶H含有硒代半胱氨酸作为必需氨基酸。我们已经纯化了半胱氨酸替代硒代半胱氨酸的酶的突变形式。为了阐明硒代半胱氨酸的基本催化作用,将突变型酶的动力学和物理性质与野生型进行了比较。突变型和野生型酶在活性和稳定性方面显示出相似的pH依赖性,尽管突变型酶的谱图略微移至碱性更高。通过与碘乙酰胺反应使两种酶失活;然而,添加底物甲酸酯是使酶易于烷基化所必需的。烷基化诱导的失活高度依赖于pH,每种酶显示的烷基化与pH曲线表明必需硒醇或硫醇。两种形式的酶都使用乒乓双双动力学机制。如Km和Kd值降低所示,突变酶与野生型酶结合甲酸的亲和力更高。但是,突变酶的周转数比天然含硒酶的周转数低两个数量级以上。较低的转换数量是由于整个反应初始步骤的反应速率降低所致,这是在动力学分析中发现的,该动力学分析采用了另一种底物氘甲酸酯。这些结果表明甲酸盐脱氢酶H的硒直接参与甲酸盐的氧化。观察到的动力学性质差异可能有助于解释硒代半胱氨酸在酶的活性位点的进化保守性。

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