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一氧化氮抑制线粒体细胞色素c氧化酶的动态模型。

A dynamic model of nitric oxide inhibition of mitochondrial cytochrome c oxidase.

作者信息

Cooper Chris E, Mason Maria G, Nicholls Peter

机构信息

Department of Biological Sciences, University of Essex, Wivenhoe Park, Colchester, CO4 3SQ, UK.

出版信息

Biochim Biophys Acta. 2008 Jul-Aug;1777(7-8):867-76. doi: 10.1016/j.bbabio.2008.03.021. Epub 2008 Apr 3.

Abstract

Nitric oxide can inhibit mitochondrial cytochrome oxidase in both oxygen competitive and uncompetitive modes. A previous model described these interactions assuming equilibrium binding to the reduced and oxidised enzyme respectively (Mason, et al. Proc. Natl. Acad. Sci. U S A 103 (2006) 708-713). Here we demonstrate that the equilibrium assumption is inappropriate as it requires unfeasibly high association constants for NO to the oxidised enzyme. Instead we develop a model which explicitly includes NO binding and its enzyme-bound conversion to nitrite. Removal of the nitrite complex requires electron transfer to the binuclear centre from haem a. This revised model fits the inhibition constants at any value of substrate concentration (ferrocytochrome c or oxygen). It predicts that the inhibited steady state should be a mixture of the reduced haem nitrosyl complex and the oxidized-nitrite complex. Unlike the previous model, binding to the oxidase is always proportional to the degree of inhibition of oxygen consumption. The model is consistent with data and models from a recent paper suggesting that the primary effect of NO binding to the oxidised enzyme is to convert NO to nitrite, rather than to inhibit enzyme activity (Antunes et al. Antioxid. Redox Signal. 9 (2007) 1569-1579).

摘要

一氧化氮可以通过氧竞争性和非竞争性模式抑制线粒体细胞色素氧化酶。先前的一个模型在假设分别与还原态和氧化态酶平衡结合的情况下描述了这些相互作用(梅森等人,《美国国家科学院院刊》103 (2006) 708 - 713)。在此我们证明平衡假设是不合适的,因为它要求一氧化氮与氧化态酶的缔合常数高到不可行的程度。相反,我们开发了一个明确包含一氧化氮结合及其在酶结合状态下转化为亚硝酸盐的模型。去除亚硝酸盐复合物需要电子从血红素a转移到双核中心。这个修订后的模型在底物浓度(亚铁细胞色素c或氧气)的任何值下都能拟合抑制常数。它预测受抑制的稳态应该是还原态血红素亚硝酰复合物和氧化态 - 亚硝酸盐复合物的混合物。与先前的模型不同,与氧化酶的结合始终与氧气消耗的抑制程度成正比。该模型与最近一篇论文中的数据和模型一致,该论文表明一氧化氮与氧化态酶结合的主要作用是将一氧化氮转化为亚硝酸盐,而不是抑制酶活性(安图内斯等人,《抗氧化与氧化还原信号》9 (2007) 1569 - 1579)。

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