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Structural Mechanism of S-Adenosyl Methionine Binding to Catechol O-Methyltransferase

机译:S-腺苷甲硫氨酸与邻苯二酚O-甲基转移酶结合的结构机理

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摘要

Methyltransferases possess a homologous domain that requires both a divalent metal cation and S-adenosyl-L-methionine (SAM) to catalyze its reactions. The kinetics of several methyltransferases has been well characterized; however, the details regarding their structural mechanisms have remained unclear to date. Using catechol O-methyltransferase (COMT) as a model, we perform discrete molecular dynamics and computational docking simulations to elucidate the initial stages of cofactor binding. We find that COMT binds SAM via an induced-fit mechanism, where SAM adopts a different docking pose in the absence of metal and substrate in comparison to the holoenzyme. Flexible modeling of the active site side-chains is essential for observing the lowest energy state in the apoenzyme; rigid docking tools are unable to recapitulate the pose unless the appropriate side-chain conformations are given a priori. From our docking results, we hypothesize that the metal reorients SAM in a conformation suitable for donating its methyl substituent to the recipient ligand. The proposed mechanism enables a general understanding of how divalent metal cations contribute to methyltransferase function.
机译:甲基转移酶具有一个同源域,该域既需要二价金属阳离子又需要S-腺苷-L-蛋氨酸(SAM)来催化其反应。几种甲基转移酶的动力学已得到很好的表征。但是,迄今为止,有关其结构机制的细节仍不清楚。使用儿茶酚O-甲基转移酶(COMT)作为模型,我们进行离散的分子动力学和计算机对接模拟,以阐明辅因子结合的初始阶段。我们发现COMT通过诱导拟合机制与SAM结合,与完全酶相比,SAM在没有金属和底物的情况下采用了不同的对接姿势。活性位点侧链的灵活建模对于观察脱辅酶中最低的能量状态至关重要。除非事先给予适当的侧链构象,否则刚性对接工具无法概括该姿势。根据我们的对接结果,我们假设金属以适合于将其甲基取代基提供给受体配体的构象重新定向SAM。所提出的机制使人们对二价金属阳离子如何促进甲基转移酶功能有一个总体的了解。

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