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黄嘌呤氧化酶的底物抑制作用及其对超氧自由基产生的影响。

Substrate inhibition of xanthine oxidase and its influence on superoxide radical production.

作者信息

Rubbo H, Radi R, Prodanov E

机构信息

Department of Biochemistry, Faculty of Medicine, University of the Republic, Montevideo, Uruguay.

出版信息

Biochim Biophys Acta. 1991 Aug 6;1074(3):386-91. doi: 10.1016/0304-4165(91)90089-y.

Abstract

The influence of substrate inhibition on xanthine oxidase-intramolecular electron transport was studied by steady-state kinetic analysis. Experiments with hypoxanthine and xanthine up to 900 microM indicated an inhibition pattern which fitted an equation of the general form nu 0 = nu max . [S]/(Km + a[S] + b[S]2/Ki). Univalent electron flux to oxygen was favored at substrate concentrations above 50 microM. This augmentation of univalent flux percentage that appeared at a high substrate concentration was greater for hypoxanthine that xanthine and at pH 8.3 than at 9.5. Our results support a mechanism of inhibition in which a substrate-reduced enzyme, non-productive Michaelis complex was formed. It is possible that this non-productive complex favored the univalent pathway of enzyme reoxidation (superoxide production) by increasing the midpoint redox potential of the molybdenum active site.

摘要

通过稳态动力学分析研究了底物抑制对黄嘌呤氧化酶分子内电子传递的影响。用高达900微摩尔的次黄嘌呤和黄嘌呤进行的实验表明,抑制模式符合一般形式的方程ν0 = νmax·[S]/(Km + a[S] + b[S]²/Ki)。在底物浓度高于50微摩尔时,向氧的单价电子通量更受青睐。在高底物浓度下出现的单价通量百分比的增加,次黄嘌呤比黄嘌呤更大,且在pH 8.3时比在pH 9.5时更明显。我们的结果支持一种抑制机制,即形成了底物还原的酶非生产性米氏复合物。这种非生产性复合物可能通过增加钼活性位点的中点氧化还原电位,有利于酶再氧化的单价途径(超氧化物产生)。

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