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首页> 外文期刊>The Journal of Chemical Physics >Adapting the nudged elastic band method for determining minimum-energy paths of chemical reactions in enzymes
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Adapting the nudged elastic band method for determining minimum-energy paths of chemical reactions in enzymes

机译:调整微带法以测定酶中化学反应的最小能量路径

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摘要

Optimization of reaction paths for enzymatic systems is a challenging problem because such systems have a very large number of degrees of freedom and many of these degrees are flexible.To meet this challenge,an efficient,robust and general approach is presented based on the well-known nudged elastic band reaction path optimization method with the following extensions:(1)soft spectator degrees of freedom are excluded from path definitions by using only inter-atomic distances corresponding to forming/breaking bonds in a reaction;(2)a general transformation of the distances is defined to treat multistep reactions without knowing the partitioning of steps in advance;(3)a multistage strategy,in which path optimizations are carried out for reference systems with gradually decreasing rigidity,is developed to maximize the opportunity of obtaining continuously changing environments along the path.We demonstrate the applicability of the approach using the acylation reaction of type A beta-lactamase as an example.The reaction mechanism investigated involves four elementary reaction steps,eight forming/breaking bonds.We obtained a continuous minimum energy path without any assumption on reaction coordinates,or on the possible sequence or the concertedness of chemical events.We expect our approach to have general applicability in the modeling of enzymatic reactions with quantum mechanical/molecular mechanical models.
机译:酶系统的反应路径的优化是一个具有挑战性的问题,因为此类系统具有非常大的自由度,并且其中许多自由度都非常灵活。为解决这一挑战,提出了一种有效,稳健且通用的方法,该方法包括:已知的微动弹性带反应路径优化方法具有以下扩展:(1)通过仅使用与反应中形成/断裂键相对应的原子间距离来将软观众自由度从路径定义中排除;(2)定义距离以处理多步骤反应而无需事先知道步骤的划分;(3)多阶段策略,其中针对刚度逐渐降低的参考系统进行了路径优化,以最大化获得不断变化的环境的机会我们证明了使用A型β-内酰胺酰化反应的方法的适用性以反应为例。研究的反应机理涉及四个基本反应步骤,八个键的形成/断裂。我们获得了连续的最小能量路径,而无需对反应坐标,化学事件的可能顺序或协同性做任何假设。该方法在用量子力学/分子力学模型进行酶促反应建模中具有普遍适用性。

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