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A modified active Brownian dynamics model using asymmetric energy conversion and its application to the molecular motor system

机译:不对称能量转换的改进主动布朗动力学模型及其在分子电动机系统中的应用

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摘要

We consider a modified energy depot model in the overdamped limit using an asymmetric energy conversion rate, which consists of linear and quadratic terms in an active particle's velocity. In order to analyze our model, we adopt a system of molecular motors on a microtubule and employ a flashing ratchet potential synchronized to a stochastic energy supply. By performing an active Brownian dynamics simulation, we investigate effects of the active force, thermal noise, external load, and energy-supply rate. Our model yields the stepping and stalling behaviors of the conventional molecular motor. The active force is found to facilitate the forwardly processive stepping motion, while the thermal noise reduces the stall force by enhancing relatively the backward stepping motion under external loads. The stall force in our model decreases as the energy-supply rate is decreased. Hence, assuming the Michaelis-Menten relation between the energy-supply rate and the an ATP concentration, our model describes ATP-dependent stall force in contrast to kinesin-1.
机译:我们考虑了使用非对称能量转换率在过阻尼极限中的改进的能量库模型,该能量转换率由活动粒子速度中的线性和二次项组成。为了分析我们的模型,我们在微管上采用分子马达系统,并采用与随机能量供应同步的闪烁棘轮电位。通过执行主动布朗动力学模拟,我们研究了主动力,热噪声,外部负载和能量供应率的影响。我们的模型产生了常规分子电动机的步进和失速行为。发现主动力有利于向前进行的步进运动,而热噪声则通过在外部负载下相对增强反向步进运动来降低失速力。我们模型中的失速力随着能量供应率的降低而降低。因此,假设能量供应率与ATP浓度之间存在Michaelis-Menten关系,我们的模型将描述与kinesin-1相反的ATP依赖的失速力。

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