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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Quantum catalysis in B-12-dependent methylmalonyl-CoA mutase: experimental and computational insights
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Quantum catalysis in B-12-dependent methylmalonyl-CoA mutase: experimental and computational insights

机译:B-12依赖性甲基丙二酰辅酶A突变酶的量子催化:实验和计算的见解。

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摘要

B-12-dependent methylmalonyl-CoA mutase catalyses the interchange of a hydrogen atom and the carbonyl-CoA group on adjacent carbons of methylmalonyl-CoA to give the rearranged product, succinyl-CoA. The first step in this reaction involves the transient generation of cofactor radicals by homolytic rupture of the cobalt-carbon bond to generate the deoxyadenosyl radical and cob(II)alamin. This step exhibits a curious sensitivity to isotopic substitution in the substrate, methylmalonyl-CoA, which has been interpreted as evidence for kinetic coupling. The magnitude of the isotopic discrimination is large and a deuterium isotope effect ranging from 35.6 at 20 degrees C to 49.9 at 5 degrees C has been recorded. Arrhenius analysis of the temperature dependence of this isotope effect provides evidence for quantum tunnelling in this hydrogen transfer step. The mechanistic complexity of the observed rate constant for cobalt-carbon bond homolysis together with the spectroscopically silent nature of many of the component steps limits the insights that can be derived by experimental approaches alone. Computational studies using a newly developed geometry optimization scheme that allows determination of the transition state in the full quantum mechanical/molecular mechanical coordinate space have yielded novel insights into the strategy deployed for labilizing the cobalt-carbon bond and poising the resulting deoxyadenosyl radical for subsequent hydrogen atom abstraction.
机译:依赖于B-12的甲基丙二酰辅酶A突变酶催化氢原子与甲基丙二酰辅酶A的相邻碳原子上的羰基辅酶A的互换,从而得到重排产物琥珀酰辅酶A.该反应的第一步涉及通过钴-碳键的均相断裂而瞬时产生辅因子自由基,以产生脱氧腺苷自由基和cob(II)丙氨酸。此步骤对底物甲基丙二酰辅酶A中的同位素取代表现出好奇的敏感性,已被解释为动力学偶联的证据。同位素判别的幅度很大,并且记录到氘同位素效应的范围从20摄氏度的35.6到5摄氏度的49.9。对这种同位素效应的温度依赖性的阿累尼乌斯分析为氢转移步骤中的量子隧穿提供了证据。观察到的钴-碳键均化速率常数的机械复杂性以及许多组成步骤的光谱学上的沉默性质限制了仅可通过实验方法得出的见解。使用新开发的几何优化方案进行计算研究,该方案​​可以确定完整的量子力学/分子力学坐标空间中的过渡态,从而对用于使钴-碳键无效并使最终的脱氧腺苷基保持氢原子的战略提出了新的见解。原子抽象。

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