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Mechanical control of the directional stepping dynamics of the kinesin motor

机译:驱动电机定向步进动力学的机械控制

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摘要

Among the multiple steps constituting the kinesin mechanochemical cycle, one of the most interesting events is observed when kinesins move an 8-nm step from one microtubule (MT)-binding site to another. The stepping motion that occurs within a relatively short time scale (≈100 μs) is, however, beyond the resolution of current experiments. Therefore, a basic understanding to the real-time dynamics within the 8-nm step is still lacking. For instance, the rate of power stroke (or conformational change) that leads to the undocked-to-docked transition of neck-linker is not known, and the existence of a substep during the 8-nm step still remains a controversial issue in the kinesin community. By using explicit structures of the kinesin dimer and the MT consisting of 13 protofilaments, we study the stepping dynamics with varying rates of power stroke (kp). We estimate that kp−1 ≲ 20 μs to avoid a substep in an averaged time trace. For a slow power stroke with kp−1 > 20 μs, the averaged time trace shows a substep that implies the existence of a transient intermediate, which is reminiscent of a recent single-molecule experiment at high resolution. We identify the intermediate as a conformation in which the tethered head is trapped in the sideway binding site of the neighboring protofilament. We also find a partial unfolding (cracking) of the binding motifs occurring at the transition state ensemble along the pathways before binding between the kinesin and MT.
机译:在构成驱动蛋白力学化学循环的多个步骤中,当驱动蛋白从一个微管(MT)结合位点向另一个位置移动8 nm步时,观察到最有趣的事件之一。但是,在相对较短的时间范围内(约100μs)发生的步进运动超出了当前实验的分辨率。因此,仍然缺乏对8纳米步骤内实时动态的基本了解。例如,导致颈部连接物未停靠到对接过渡的功率冲程(或构象变化)速率未知,并且在8 nm步骤中是否存在子步骤仍然是争议性的问题。驱动蛋白社区。通过使用驱动蛋白二聚体和由13个原型丝组成的MT的显式结构,我们研究了具有不同功率冲程(kp)速率的步进动力学。我们估计kp -1 ≲20μs,以避免在平均时间轨迹中出现子步。对于kp -1

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