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谷氨酸桥对于锰超氧化物歧化酶的二聚体稳定性和金属选择性至关重要。

A glutamate bridge is essential for dimer stability and metal selectivity in manganese superoxide dismutase.

作者信息

Whittaker M M, Whittaker J W

机构信息

Department of Biochemistry and Molecular Biology, Oregon Graduate Institute of Science and Technology, Portland, Oregon 97291-1000, USA.

出版信息

J Biol Chem. 1998 Aug 28;273(35):22188-93. doi: 10.1074/jbc.273.35.22188.

Abstract

In Escherichia coli manganese superoxide dismutase (MnSOD), the absolutely conserved Glu170 of one monomer is hydrogen-bonded to the Mn ligand His171 of the other monomer, forming a double bridge at the dimer interface. Point mutation of Glu170 --> Ala destabilizes the dimer structure, and the mutant protein occurs as a mixture of dimer and monomer species. The purified E170A MnSOD contains exclusively Fe and is devoid of superoxide dismutase activity. E170A Fe2-MnSOD closely resembles authentic FeSOD in terms of spectroscopic properties, anion interactions and pH titration behavior. Reconstitution of E170A Fe2-MnSOD with Mn(II) salts does not restore superoxide dismutase activity despite the spectroscopic similarity between E170A Mn2-MnSOD and wild type Mn2-MnSOD. Growth of sodA+ and sodA- E. coli containing the mutant plasmid pDT1-5(E170A) is impaired, suggesting that expression of mutant protein is toxic to the host cells.

摘要

在大肠杆菌锰超氧化物歧化酶(MnSOD)中,一个单体中绝对保守的Glu170与另一个单体的锰配体His171形成氢键,在二聚体界面处形成双桥。Glu170突变为Ala会使二聚体结构不稳定,突变蛋白以二聚体和单体形式的混合物存在。纯化的E170A MnSOD仅含有铁且缺乏超氧化物歧化酶活性。E170A Fe2-MnSOD在光谱性质、阴离子相互作用和pH滴定行为方面与正宗的FeSOD非常相似。尽管E170A Mn2-MnSOD与野生型Mn2-MnSOD在光谱上相似,但用Mn(II)盐重构E170A Fe2-MnSOD并不能恢复超氧化物歧化酶活性。含有突变质粒pDT1-5(E170A)的sodA+和sodA-大肠杆菌的生长受到损害,这表明突变蛋白的表达对宿主细胞有毒。

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