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MauG a diheme enzyme that catalyzes tryptophan tryptophylquinone biosynthesis by remote catalysis

机译:MauG一种双血红素酶通过远程催化来催化色氨酸色氨酸提花醌生物合成

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摘要

MauG contains two c-type hemes with atypical physical and catalytic properties. While most c-type cytochromes function simply as electron transfer mediators, MauG catalyzes the completion of tryptophan tryptophylquinone (TTQ) biosynthesis within a precursor protein of methylamine dehydrogenase. This posttranslational modification is a six-electron oxidation that requires crosslinking of two Trp residues, oxygenation of a Trp residue and oxidation of the resulting quinol to TTQ. These reactions proceed via a bis-FeIV state in which one heme is present as FeIV=O and the other is FeIV with axial heme ligands provided by His and Tyr side chains. Catalysis does not involve direct contact between the protein substrate and either heme of MauG. Instead it is accomplished by remote catalysis using a hole hopping mechanism of electron transfer in which Trp residues of MauG are reversibly oxidized. In this process, long range electron transfer is coupled to the radical mediated chemical reactions that are required for TTQ biosynthesis.
机译:MauG包含两个具有非典型物理和催化特性的c型血红素。尽管大多数c型细胞色素仅起电子转移介质的作用,但MauG催化甲胺脱氢酶前体蛋白内色氨酸色氨酸醌(TTQ)生物合成的完成。该翻译后修饰是六电子氧化,其需要两个Trp残基交联,Trp残基的氧合以及所得的喹诺酮氧化为TTQ。这些反应通过bis-Fe IV 状态进行,其中一个血红素以Fe IV = O的形式存在,另一个血红素呈Fe IV 的轴向His和Tyr侧链提供的血红素配体。催化作用不涉及蛋白质底物与MauG任一血红素之间的直接接触。取而代之的是,它是利用电子转移的空穴跳跃机制通过远程催化来实现的,其中MauG的Trp残基可逆地被氧化。在此过程中,远程电子转移与TTQ生物合成所需的自由基介导的化学反应偶联。

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