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首页> 外文期刊>The Journal of Chemical Physics >Modeling of solvent flow effects in enzyme catalysis under physiological conditions
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Modeling of solvent flow effects in enzyme catalysis under physiological conditions

机译:生理条件下酶催化中溶剂流动效应的建模

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摘要

A stochastic model for the dynamics of enzymatic catalysis in explicit, effective solvents under physiological conditions is presented. Analytically-computed first passage time densities of a diffusing particle in a spherical shell with absorbing boundaries are combined with densities obtained from explicit simulation to obtain the overall probability density for the total reaction cycle time of the enzymatic system. The method is used to investigate the catalytic transfer of a phosphoryl group in a phosphoglycerate kinase-ADP-bis phosphoglycerate system, one of the steps of glycolysis. The direct simulation of the enzyme-substrate binding and reaction is carried out using an elastic network model for the protein, and the solvent motions are described by multiparticle collision dynamics which incorporates hydrodynamic flow effects. Systems where solvent-enzyme coupling occurs through explicit intermolecular interactions, as well as systems where this coupling is taken into account by including the protein and substrate in the multiparticle collision step, are investigated and compared with simulations where hydrodynamic coupling is absent. It is demonstrated that the flow of solvent particles around the enzyme facilitates the large-scale hinge motion of the enzyme with bound substrates, and has a significant impact on the shape of the probability densities and average time scales of substrate binding for substrates near the enzyme, the closure of the enzyme after binding, and the overall time of completion of the cycle.
机译:提出了在生理条件下在显式有效溶剂中酶催化动力学的随机模型。将具有吸收边界的球形壳中的扩散粒子的解析计算的第一通过时间密度与从显式模拟获得的密度相结合,以获得酶系统总反应周期时间的总概率密度。该方法用于研究磷酸甘油酯激酶-ADP-双磷酸甘油酯系统中磷酸基的催化转移,这是糖酵解的步骤之一。酶-底物结合和反应的直接模拟是使用蛋白质的弹性网络模型进行的,溶剂运动通过结合了流体动力学流动效应的多粒子碰撞动力学来描述。研究了通过明确的分子间相互作用发生溶剂-酶偶联的系统,以及在多颗粒碰撞步骤中通过包括蛋白质和底物来考虑这种偶联的系统,并将其与不存在流体动力学偶联的模拟进行了比较。结果表明,溶剂颗粒在酶周围的流动促进了酶与结合的底物的大规模铰链运动,并对酶附近底物结合的概率密度和平均时间尺度的形状产生了重大影响,结合后酶的关闭以及循环完成的总时间。

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