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Kinesin rotates unidirectionally and generates torque while walking on microtubules

机译:驱动蛋白在微管上行走时会单向旋转并产生扭矩

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摘要

Cytoskeletal motors drive many essential cellular processes. For example, kinesin-1 transports cargo in a step-wise manner along microtubules. To resolve rotations during stepping, we used optical tweezers combined with an optical microprotractor and torsion balance using highly birefringent microspheres to directly and simultaneously measure the translocation, rotation, force, and torque generated by individual kinesin-1 motors. While, at low adenosine 5′-triphosphate (ATP) concentrations, motors did not generate torque, we found that motors translocating along microtubules at saturating ATP concentrations rotated unidirectionally, producing significant torque on the probes. Accounting for the rotational work makes kinesin a highly efficient machine. These results imply that the motor’s gait follows a rotary hand-over-hand mechanism. Our method is generally applicable to study rotational and linear motion of molecular machines, and our findings have implications for kinesin-driven cellular processes.
机译:细胞骨架马达驱动许多重要的细胞过程。例如,kinesin-1以逐步方式沿微管运输货物。为了解决步进过程中的旋转,我们将光镊与光学微量角器结合使用,并使用高度双折射的微球体来实现扭力平衡,以直接并同时测量单个kinesin-1电机产生的移位,旋转,力和扭矩。虽然在低5'-三磷酸腺苷(ATP)浓度下,电动机不会产生扭矩,但我们发现,在饱和ATP浓度下沿微管移位的电动机会单向旋转,从而在探针上产生明显的扭矩。考虑到旋转功,驱动蛋白成为高效的机器。这些结果表明,电动机的步态遵循旋转移交机制。我们的方法通常适用于研究分子机器的旋转和线性运动,并且我们的发现对驱动蛋白驱动的细胞过程具有重要意义。

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