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Life as aerobes: are there simple rules for activation of dioxygen by enzymes?

机译:作为需氧菌的生活:是否有简单的规则通过酶激活双氧?

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摘要

Numerous biological systems involve reaction with dioxygen in the absence of readily accessible spectroscopic signals. We have begun to develop a set of "generic" strategies that will allow us to probe the mechanisms of dioxygen activation. In particular, we wish to understand the nature of the dioxygen binding step, the degree to which electron transfer to dioxygen is rate limiting, whether reactive species accumulate during turnover and, finally, whether proton and electron transfer to dioxygen occur as coupled processes. Our strategy will be introduced for an enzyme system that uses only an organic cofactor in dioxygen activation (glucose oxidase). Two key features emerge from studies of glucose oxidase; (1) that formation of the superoxide anion is a major rate-limiting step and (2) that electrostatic stabilization of the superoxide anion plays a key role in catalysis. Similar themes emerge when our protocols are applied to enzymes containing both an active site metal center and an organic cofactor. Finally, enzymes that rely solely on metal centers for substrate functionalization will be discussed. In no instance, thus far, has evidence been found for a direct coupling of proton to electron transfer in the reductive activation of dioxygen.
机译:在没有容易获得的光谱信号的情况下,许多生物系统都涉及与双氧反应。我们已经开始开发一套“通用”策略,这些策略将使我们能够探索双氧激活的机制。特别地,我们希望了解双氧结合步骤的性质,电子转移至双氧的速率受到速率限制,反应性物质是否在周转期间积累以及最终质子和电子转移至双氧是否会作为耦合过程发生。我们将介绍一种酶系统的策略,该酶系统仅在双氧激活中使用有机辅因子(葡萄糖氧化酶)。葡萄糖氧化酶的研究有两个关键特征: (1)超氧阴离子的形成是主要的限速步骤,(2)超氧阴离子的静电稳定作用在催化中起关键作用。当我们的方案应用于同时含有活性位点金属中心和有机辅因子的酶时,也会出现类似的主题。最后,将讨论仅依赖金属中心进行底物功能化的酶。迄今为止,在任何情况下都没有证据表明质子与电子转移直接结合在双氧的还原活化中。

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