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Processivity of single-headed kinesin motors

机译:单头驱动电机的工作效率

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The processive movement of single-headed kinesins is studied by using a ratchet model of non-Markov process, which is built on the experimental evidence that the strong binding of kinesin to microtubule in rigor state induces a large apparent change in the local microtubule conformation. In the model, the microtubule plays a crucial active role in the kinesin movement, in contrast to the previous belief that the microtubule only acts as a passive track for the kinesin motility. The unidirectional movement of single-headed kinesin is resulted from the asymmetric periodic potential between kinesin and microtubule while its processivity is determined by its binding affinity for microtubule in the weak ADP state. Using the model, various experimental results for monomeric kinesin KIF1A, such as the mean step size, the step-size distribution, the long run length and the mean velocity versus load, can be well explained quantitatively. This local conformational change of the microtubule may also play important roles in the processive movement of conventional two-headed kinesins. An experiment to verify the model is suggested. (C) 2007 Elsevier B.V.All rights reserved.
机译:通过使用非马尔可夫过程的棘轮模型研究单头驱动蛋白的进行性运动,该模型基于实验证据表明,驱动蛋白在严格状态下与微管的牢固结合会引起局部微管构象的明显变化。在模型中,微管在驱动蛋白的运动中起着至关重要的主动作用,这与以前的观点相反,即微管仅作为驱动蛋白运动的被动途径。单头驱动蛋白的单向运动是由驱动蛋白和微管之间的不对称周期性电势引起的,而其合成能力则取决于其对弱ADP状态下微管的结合亲和力。使用该模型,可以定量地解释单体驱动蛋白KIF1A的各种实验结果,例如平均步长,步长分布,长期运行长度以及平均速度与负载的关系。微管的这种局部构象变化在常规的双头驱动蛋白的过程性运动中也可能起重要作用。建议进行实验以验证模型。 (C)2007 Elsevier B.V.保留所有权利。

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