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Insights into electron leakage in the reaction cycle of cytochrome P450 BM3 revealed by kinetic modeling and mutagenesis

机译:动力学建模和诱变揭示了细胞色素P450 BM3反应周期中的电子泄漏

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摘要

As a single polypeptide, cytochrome P450 BM3 fuses oxidase and reductase domains and couples each domain's function to perform catalysis with exceptional activity upon binding of substrate for hydroxylation. Mutations introduced into the enzyme to change its substrate specificity often decrease coupling efficiency between the two domains, resulting in unproductive consumption of cofactors and formation of water and/or reactive species. This phenomenon can correlate with leakage, in which P450 BM3 uses electrons from NADPH to reduce oxygen to water and/or reactive species even without bound substrate. The physical basis for leakage is not yet well understood in this particular member of the cytochrome P450 family. To clarify the relationship between leakage and coupling, we used simulations to illustrate how different combinations of kinetic parameters related to substrate-free consumption of NADPH and substrate hydroxylation can lead to either minimal effects on coupling or a dramatic decrease in coupling as a result of leakage. We explored leakage in P450 BM3 by introducing leakage-enhancing mutations and combining these mutations to assess whether doing so increases leakage further. The variants in this study provide evidence that while a transition to high spin may be vital for coupled hydroxylation, it is not required for enhanced leakage; substrate binding and the consequent shift in spin state are not necessary as a redox switch for catalytic oxidation of NADPH. Additionally, the variants in this study suggest a tradeoff between leakage and stability and thus evolvability, as the mutations we investigated were far more deleterious than other mutations that have been used to change substrate specificity.
机译:作为单个多肽,细胞色素P450 BM3融合了氧化酶和还原酶结构域,并结合了每个结构域的功能,从而在结合底物进行羟基化反应时具有出色的催化活性。引入酶中以改变其底物特异性的突变通常会降低两个结构域之间的偶联效率,导致辅助因子的非生产性消耗以及水和/或反应性物种的形成。这种现象可能与泄漏有关,在这种情况下,P450 BM3使用来自NADPH的电子将氧气还原为水和/或反应性物质,即使没有结合底物也是如此。在细胞色素P450家族的这个特定成员中,对于泄漏的物理基础还没有很好的了解。为了阐明泄漏与偶联之间的关系,我们使用仿真来说明与无底物消耗NADPH和底物羟基化相关的动力学参数的不同组合如何导致对偶联的影响最小或由于泄漏而导致偶联的急剧下降。我们通过引入增强渗漏的突变并结合这些突变来评估P450 BM3的渗漏,以评估这样做是否进一步增加了渗漏。这项研究中的变体提供了证据,尽管过渡到高自旋对于偶联羟基化可能至关重要,但并不需要增强泄漏。底物结合和随之而来的自旋态转变作为NADPH催化氧化的氧化还原开关是不必要的。此外,本研究中的变体建议在泄漏与稳定性以及可进化性之间进行权衡,因为我们研究的突变远比用于改变底物特异性的其他突变更具有害性。

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