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NADPH对过氧化氢酶的保护机制。动力学与化学计量学。

Mechanisms of protection of catalase by NADPH. Kinetics and stoichiometry.

作者信息

Kirkman H N, Rolfo M, Ferraris A M, Gaetani G F

机构信息

Division of Hematological Oncology, Istituto Nazionale per la Ricerca sul Cancro and Dipartimento di Oncologia Clinica e Sperimentale, University of Genoa, Viale Benedetto XV, 10, 16132 Genoa, Italy.

出版信息

J Biol Chem. 1999 May 14;274(20):13908-14. doi: 10.1074/jbc.274.20.13908.

Abstract

NADPH is known to be tightly bound to mammalian catalase and to offset the ability of the substrate of catalase (H2O2) to convert the enzyme to an inactive state (compound II). In the process, the bound NADPH becomes NADP+ and is replaced by another molecule of NADPH. This protection is believed to occur through electron tunneling between NADPH on the surface of the catalase and the heme group within the enzyme. The present study provided additional support for the concept of an intermediate state of catalase, through which NADPH serves to prevent the formation (rather than increase the removal) of compound II. In contrast, the superoxide radical seemed to bypass the intermediate state since NADPH had very little ability to prevent the superoxide radical from converting catalase to compound II. Moreover, the rate of NADPH oxidation was several times the rate of compound II formation (in the absence of NADPH) under a variety of conditions. Very little NADPH oxidation occurred when NADPH was exposed to catalase, H2O2, or the superoxide radical separately. That the ratio exceeds 1 suggests that NADPH may protect catalase from oxidative damage through actions broader than merely preventing the formation of compound II.

摘要

已知NADPH与哺乳动物过氧化氢酶紧密结合,并抵消过氧化氢酶的底物(H2O2)将该酶转化为无活性状态(化合物II)的能力。在此过程中,结合的NADPH变成NADP+,并被另一个NADPH分子取代。据信这种保护作用是通过过氧化氢酶表面的NADPH与酶内的血红素基团之间的电子隧穿发生的。本研究为过氧化氢酶中间状态的概念提供了额外支持,通过该中间状态,NADPH可防止化合物II的形成(而非增加其清除)。相比之下,超氧自由基似乎绕过了中间状态,因为NADPH几乎没有能力阻止超氧自由基将过氧化氢酶转化为化合物II。此外,在各种条件下,NADPH氧化速率是化合物II形成速率(在没有NADPH的情况下)的几倍。当NADPH分别暴露于过氧化氢酶、H2O2或超氧自由基时,几乎没有NADPH氧化发生。该比例超过1表明,NADPH可能通过比仅仅防止化合物II形成更广泛的作用来保护过氧化氢酶免受氧化损伤。

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