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大肠杆菌钴胺素依赖性甲硫氨酸合酶与其生理伴侣黄素氧还蛋白的相互作用:黄素氧还蛋白的结合导致钴胺素辅因子的轴向配体解离。

Interaction of Escherichia coli cobalamin-dependent methionine synthase and its physiological partner flavodoxin: binding of flavodoxin leads to axial ligand dissociation from the cobalamin cofactor.

作者信息

Hoover D M, Jarrett J T, Sands R H, Dunham W R, Ludwig M L, Matthews R G

机构信息

Department of Biological Chemistry, University of Michigan, Ann Arbor 48109-1055, USA.

出版信息

Biochemistry. 1997 Jan 7;36(1):127-38. doi: 10.1021/bi961693s.

Abstract

Cobalamin-dependent methionine synthase from Escherichia coli catalyzes the last step in de novo methionine biosynthesis. Conversion of the inactive cob(II)alamin form of the enzyme, formed by the occasional oxidation of cob(I)alamin during turnover, to an active methylcobalamin-containing form requires a reductive methylation of the cofactor in which an electron is supplied by reduced flavodoxin and the methyl group is derived from S-adenosyl-L-methionine. E. coli flavodoxin acts specifically in this activation reaction, and neither E. coli ferredoxin nor flavodoxin from the cyanobacterium Synechococcus will substitute, despite their highly similar midpoint potentials for one-electron transfer. As assessed by EPR spectroscopy, the binding of flavodoxin to cob(II)alamin methionine synthase results in a change in the coordination geometry of the cobalt from five-coordinate to four-coordinate. Histidine 759 of methionine synthase, which replaces the normal lower ligand dimethylbenzimidazole on binding of methylcobalamin to methionine synthase, is dissociated from the cobalt of the cobalamin by the binding of flavodoxin. The association of flavodoxin and methionine synthase depends on ionic strength and pH; the pH dependence corresponds to the uptake of one proton on association. The formation of a complex between flavodoxin and methionine synthase perturbs the midpoint potentials of the flavin and cobalamin cofactors only marginally and without any significant thermodynamic advantage for electron transfer to the cobalamin of methionine synthase. No significant binding was seen between oxidized flavodoxin and methylcobalamin methionine synthase. A model for the interaction of methionine synthase with flavodoxin is proposed in which flavodoxin binding leads to changes in the distribution of methionine synthase conformations.

摘要

来自大肠杆菌的钴胺素依赖性甲硫氨酸合酶催化甲硫氨酸从头生物合成的最后一步。在周转过程中,钴胺素(I)偶尔被氧化形成的无活性钴胺素(II)形式的酶,转化为含有活性甲基钴胺素的形式需要辅因子的还原甲基化,其中电子由还原型黄素氧还蛋白提供,甲基基团来自S-腺苷-L-甲硫氨酸。大肠杆菌黄素氧还蛋白在这种激活反应中具有特异性作用,尽管大肠杆菌铁氧还蛋白和蓝藻集胞藻的黄素氧还蛋白在单电子转移方面具有高度相似的中点电位,但它们都不能替代。通过电子顺磁共振光谱评估,黄素氧还蛋白与钴胺素(II)甲硫氨酸合酶的结合导致钴的配位几何结构从五配位变为四配位。甲硫氨酸合酶的组氨酸759在甲基钴胺素与甲硫氨酸合酶结合时取代了正常的下部配体二甲基苯并咪唑,通过黄素氧还蛋白的结合从钴胺素的钴上解离。黄素氧还蛋白与甲硫氨酸合酶的结合取决于离子强度和pH值;pH依赖性对应于结合时摄取一个质子。黄素氧还蛋白与甲硫氨酸合酶之间形成的复合物仅轻微扰动黄素和钴胺素辅因子的中点电位,并且对于向甲硫氨酸合酶的钴胺素进行电子转移没有任何显著的热力学优势。在氧化型黄素氧还蛋白与甲基钴胺素甲硫氨酸合酶之间未观察到明显的结合。提出了甲硫氨酸合酶与黄素氧还蛋白相互作用的模型,其中黄素氧还蛋白结合导致甲硫氨酸合酶构象分布的变化。

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