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Quantum Mechanics/Molecular Mechanics Modeling of Drug Metabolism: Mexiletine N-Hydroxylation by Cytochrome P450 1A2

机译:药物代谢的量子力学/分子力学建模:细胞色素P450 1A2的美西汀N-羟基化

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摘要

The mechanism of cytochrome P450(CYP)-catalyzed hydroxylation of primary amines is currently unclear, and is relevant to drug metabolism. Previous small model calculations have suggested two possible mechanisms: direct N-oxidation and H-abstraction/rebound. We have modeled the N-hydroxylation of (R)-mexiletine in CYP1A2 with hybrid quantum mechanics/molecular mechanics (QM/MM) methods, providing a more detailed and realistic model. Multiple reaction barriers have been calculated at the QM(B3LYP- D)/MM(CHARMM27) level for the direct N-oxidation and H-abstraction/rebound mechanisms. Our calculated barriers indicate that the direct N-oxidation mechanism is preferred and proceeds via the doublet spin state of Compound I. Molecular dynam- ics simulations indicate that the presence of an ordered water molecule in the active site assists in the binding of mexiletine in the active site, but is not a prerequisite for reaction via either mechanism. Several active site residues play a role in the binding of mexiletine in the active site, including Thr124 and Phe226. This work reveals key details in the N-hydroxylation of mexiletine and further demonstrates that mechanistic studies using QM/MM methods are useful for understanding drug metabolism.
机译:目前尚不清楚细胞色素P450(CYP)催化伯胺羟基化的机制,并且与药物代谢有关。先前的小模型计算提出了两种可能的机制:直接N氧化和H吸收/回弹。我们已经使用混合量子力学/分子力学(QM / MM)方法对CYP1A2中(R)-美西律的N-羟基化进行了建模,从而提供了更详细和现实的模型。对于直接的N氧化和H吸收/回弹机理,已经在QM(B3LYP-D)/ MM(CHARMM27)水平上计算了多个反应势垒。我们计算出的势垒表明直接N氧化机制是优选的,并通过化合物I的双峰自旋态进行。分子动力学模拟表明,活性位点中有序水分子的存在有助于美西律在药物分子中的结合。活性位点,但不是通过任何一种机制进行反应的先决条件。几个活性位点残基在美西律在活性位点的结合中起作用,包括Thr124和Phe226。这项工作揭示了美西律N-羟基化的关键细节,并进一步证明了使用QM / MM方法进行的机理研究对于理解药物代谢非常有用。

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