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钼酶黄嘌呤氧化酶家族基于结构的催化机制。

A structure-based catalytic mechanism for the xanthine oxidase family of molybdenum enzymes.

作者信息

Huber R, Hof P, Duarte R O, Moura J J, Moura I, Liu M Y, LeGall J, Hille R, Archer M, Romão M J

机构信息

Max-Planck-Institut für Biochemie, Martinsried, Germany.

出版信息

Proc Natl Acad Sci U S A. 1996 Aug 20;93(17):8846-51. doi: 10.1073/pnas.93.17.8846.

Abstract

The crystal structure of the xanthine oxidase-related molybdenum-iron protein aldehyde oxido-reductase from the sulfate reducing anaerobic Gram-negative bacterium Desulfovibrio gigas (Mop) was analyzed in its desulfo-, sulfo-, oxidized, reduced, and alcohol-bound forms at 1.8-A resolution. In the sulfo-form the molybdenum molybdopterin cytosine dinucleotide cofactor has a dithiolene-bound fac-[Mo, = O, = S, ---(OH2)] substructure. Bound inhibitory isopropanol in the inner compartment of the substrate binding tunnel is a model for the Michaelis complex of the reaction with aldehydes (H-C = O,-R). The reaction is proposed to proceed by transfer of the molybdenum-bound water molecule as OH- after proton transfer to Glu-869 to the carbonyl carbon of the substrate in concert with hydride transfer to the sulfido group to generate [MoIV, = O, -SH, ---(O-C = O, -R)). Dissociation of the carboxylic acid product may be facilitated by transient binding of Glu-869 to the molybdenum. The metal-bound water is replenished from a chain of internal water molecules. A second alcohol binding site in the spacious outer compartment may cause the strong substrate inhibition observed. This compartment is the putative binding site of large inhibitors of xanthine oxidase.

摘要

对来自硫酸盐还原厌氧革兰氏阴性细菌巨大脱硫弧菌(Mop)的黄嘌呤氧化酶相关钼铁蛋白醛氧化还原酶的晶体结构进行了分析,其脱硫形式、含硫形式、氧化形式、还原形式以及与醇结合形式的分辨率均为1.8埃。在含硫形式中,钼蝶呤胞嘧啶二核苷酸辅因子具有二硫烯结合的面式-[Mo,=O,=S,---(OH2)]亚结构。底物结合通道内部隔室中结合的抑制性异丙醇是该反应与醛(H-C=O,-R)的米氏复合物模型。该反应被认为是在质子转移至Glu-869后,钼结合的水分子以OH-形式转移至底物的羰基碳,同时氢化物转移至硫基,生成[MoIV,=O,-SH,---(O-C=O,-R)]。羧酸产物的解离可能通过Glu-869与钼的瞬时结合而促进。金属结合的水由一系列内部水分子补充。宽敞外部隔室中的第二个醇结合位点可能导致观察到的强烈底物抑制。该隔室是黄嘌呤氧化酶大型抑制剂的假定结合位点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/554b/38556/e6e6c7147ca6/pnas01521-0060-a.jpg

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