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A Brownian Ratchet Model Explains the Biased Sidestepping of Single-Headed Kinesin-3 KIF1A

机译:布朗棘轮模型解释了单头Kinesin-3 KIF1A的偏见偏见

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摘要

The kinesin-3 motor KIF1A is involved in long-ranged axonal transport in neurons. To ensure vesicular delivery, motors need to navigate the microtubule lattice and overcome possible roadblocks along the way. The single-headed form of KIF1A is a highly diffusive motor that has been shown to be a prototype of a Brownian motor by virtue of a weakly bound diffusive state to the microtubule. Recently, groups of single-headed KIF1A motors were found to be able to sidestep along the microtubule lattice, creating left-handed helical membrane tubes when pulling on giant unilamellar vesicles in vitro. A possible hypothesis is that the diffusive state enables the motor to explore the microtubule lattice and switch protofilaments, leading to a left-handed helical motion. Here, we study the longitudinal rotation of microtubules driven by single-headed KIF1A motors using fluorescence-interference contrast microscopy. We find an average rotational pitch of ≃1.5μm, which is remarkably robust to changes in the gliding velocity, ATP concentration, microtubule length, and motor density. Our experimental results are compared to stochastic simulations of Brownian motors moving on a two-dimensional continuum ratchet potential, which quantitatively agree with the fluorescence-interference contrast experiments. We find that single-headed KIF1A sidestepping can be explained as a consequence of the intrinsic handedness and polarity of the microtubule lattice in combination with the diffusive mechanochemical cycle of the motor.
机译:驱动蛋白3马达KIF1A参与神经元长程轴突运输。为了确保水泡交货,电机需要导航微管格和克服前进的道路上可能的障碍。 KIF1A的单头形式是已经被证明是凭借弱结合漫射状态到微管的原型布朗马达的高扩散电机。最近,发现单头KIF1A电机组能够沿着微管格台阶,在体外对大单层囊泡拉动时产生左手螺旋膜管。一个可能的假设是,扩散状态使得马达探索微管晶格和开关原丝,导致左手螺旋运动。在这里,我们研究使用荧光干涉对比显微镜单头KIF1A电机驱动的微管的纵向旋转。我们发现≃1.5μm的平均旋转间距,这是非常稳健的滑行速度马达密度变化,ATP浓度,微管的长度,和。我们的实验结果进行比较,以布朗马达上移动二维连续棘轮潜在的随机模拟,它定量与荧光干涉对比实验一致。我们发现,单头KIF1A偏离主航道可以作为组合的微管晶格与电机的扩散机械化学周期的内在手段和极性的结果来解释。

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