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Unbinding of Kinesin from Microtubule in the Strongly Bound States Enhances under Assisting Forces

机译:在强烈的态势中从微管中解除kinesin,在强烈的状态下增强了辅助力量

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Abstract The ability to predict the cellular dynamics of intracellular transport has enormous potential to impact human health. A key transporter is kinesin‐1, an ATP‐driven molecular motor that shuttles cellular cargos along microtubules (MTs). The dynamics of kinesins depends critically on their unbinding rate from MT, which varies depending on the force direction applied on the motor, i.e. the force‐unbinding rate relation is asymmetric. However, it remains unclear how changing the force direction from resisting (applied against the motion direction) to assisting (applied in the motion direction) alters the kinesin's unbinding and stepping. Here, we propose a theoretical model for the influence of the force direction on the stepping dynamics of a single kinesin. The model shows that the asymmetry of the force‐unbinding rate relation is independent of ATP concentration. It also reveals that the synthesis of ATP from backward stepping under assisting forces is less likely than under resisting forces. It then finds that the unbinding of kinesin in the strongly MT‐bound kinetic states enhances under assisting forces.
机译:摘要预测细胞内转运细胞动力学的能力具有影响人类健康的巨大潜力。钥匙转运仪是Kinesin-1,ATP驱动的分子电机,其沿着微管(MTS)穿梭蜂窝尸体。 Kinesins的动态统治性地依赖于MT的剥削速率,这根据施加在电动机上的力方向而变化,即力 - 解速关系是不对称的。然而,仍然不明确于如何将力方向改变抵抗(施加在运动方向)以辅助(在运动方向上施加)改变了Kinesin的未绑定和踩踏。在这里,我们提出了一种理论模型,用于对力方向对单个kinesin的步进动力学的影响。该模型表明,力 - 解速关系的不对称性与ATP浓度无关。它还表明,在辅助力下的落后踩踏的ATP的合成不太可能在抵抗力下的可能性。然后,它发现在强大的MT结合的动力状态下,Kinesin的解除在辅助力量下增强。

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