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A multiscale modeling approach for biomolecular systems

机译:生物分子系统的多尺度建模方法

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This paper presents a new multiscale molecular dynamic model for investigating the effects of external interactions, such as contact and impact, during stepping and docking of motor proteins and other biomolecular systems. The model retains the mass properties ensuring that the result satisfies Newton’s second law. This idea is presented using a simple particle model to facilitate discussion of the rigid body model; however, the particle model does provide insights into particle dynamics at the nanoscale. The resulting three-dimensional model predicts a significant decrease in the effect of the random forces associated with Brownian motion. This conclusion runs contrary to the widely accepted notion that the motor protein’s movements are primarily the result of thermal effects. This work focuses on the mechanical aspects of protein locomotion; the effect ATP hydrolysis is estimated as internal forces acting on the mechanical model. In addition, the proposed model can be numerically integrated in a reasonable amount of time. Herein, the differences between the motion predicted by the old and new modeling approaches are compared using a simplified model of myosin V.
机译:本文提出了一种新的多尺度分子动力学模型,用于研究运动蛋白和其他生物分子系统的步进和对接过程中外部相互作用(如接触和撞击)的影响。该模型保留了质量属性,以确保结果满足牛顿第二定律。使用一个简单的粒子模型来表达这个想法,以利于讨论刚体模型。然而,粒子模型确实提供了对纳米级粒子动力学的见解。所得的三维模型预测与布朗运动相关的随机力的影响将大大降低。这一结论与公认的运动蛋白运动主要是热效应的结果背道而驰。这项工作集中在蛋白质运动的机械方面。 ATP水解的影响估计为作用在力学模型上的内力。另外,所提出的模型可以在合理的时间内进行数值积分。在这里,使用简化的肌球蛋白V模型比较了新旧建模方法预测的运动之间的差异。

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