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Force-velocity relation for actin-polymerization-driven motility from brownian dynamics simulations.

机译:肌动蛋白聚合驱动的动力的速度-速度关系来自布朗动力学模拟。

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We report numerical simulation results for the force-velocity relation for actin-polymerization-driven motility. We use Brownian dynamics to solve a physically consistent formulation of the dendritic nucleation model with semiflexible filaments that self-assemble and push a disk. We find that at small loads, the disk speed is independent of load, whereas at high loads, the speed decreases and vanishes at a characteristic stall pressure. Our results demonstrate that at small loads, the velocity is controlled by the reaction rates, whereas at high loads the stall pressure is determined by the mechanical properties of the branched actin network. The behavior is consistent with experiments and with our recently proposed self-diffusiophoretic mechanism for actin-polymerization-driven motility. New in vitro experiments to measure the force-velocity relation are proposed.
机译:我们报告的数值模拟结果为肌动蛋白聚合驱动的动力的力-速度关系。我们使用布朗动力学来解决树状成核模型的物理一致性公式,该模型具有可自我组装并推动磁盘的半柔性细丝。我们发现,在小负载下,磁盘速度与负载无关,而在高负载下,速度在特征失速压力下减小并消失。我们的结果表明,在小负荷下,速度受反应速率控制,而在高负荷下,失速压力由支化肌动蛋白网络的机械性能决定。该行为与实验一致,并与我们最近提出的肌动蛋白聚合驱动的运动的自扩散电泳机制一致。提出了测量力-速度关系的新的体外实验。

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