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在其步移循环过程中决定驱动蛋白马达处于主要单头结合或双头结合状态的因素。

Factors Determining Kinesin Motors in a Predominant One-Head-Bound or Two-Heads-Bound State During Its Stepping Cycle.

作者信息

Shi Xiao-Xuan, Liu Yu-Ru, Xie Ping

机构信息

School of Pharmaceutical Engineering, Chongqing Chemical Industry Vocational College, Chongqing 401220, China.

Laboratory of Soft Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

出版信息

Biomolecules. 2025 May 13;15(5):717. doi: 10.3390/biom15050717.

Abstract

At physiological or saturating ATP concentrations, some families of kinesin motors, such as kinesin-1 and kinesin-2, exhibit a predominant two-heads-bound (2HB) state during their stepping cycle on microtubules, while others, such as kinesin-3, exhibit a predominant one-head-bound (1HB) state. An interesting but unclear issue is what factors determine a kinesin motor in the predominant 1HB and 2HB states. Here, on the basis of the general chemomechanical pathway of the kinesin motors, a theory is given on fractions of 1HB and 2HB states. With the theory, the factors affecting a kinesin motor in the predominant 1HB and 2HB states are determined. The results about the effects of ATP concentration, ADP concentration and external load on the fractions of 1HB and 2HB states are presented. Furthermore, the theory is applied to kinesin-1, kinesin-2, kinesin-3, kinesin-5 and kinesin-13 motors, with the theoretical results agreeing well with published experimental data.

摘要

在生理或饱和ATP浓度下,一些驱动蛋白家族,如驱动蛋白-1和驱动蛋白-2,在其于微管上的步移循环过程中呈现出主要的双头结合(2HB)状态,而其他家族,如驱动蛋白-3,则呈现出主要的单头结合(1HB)状态。一个有趣但尚不清楚的问题是,哪些因素决定了驱动蛋白处于主要的1HB和2HB状态。在此,基于驱动蛋白的一般化学机械途径,给出了一个关于1HB和2HB状态比例的理论。利用该理论,确定了影响驱动蛋白处于主要1HB和2HB状态的因素。给出了关于ATP浓度、ADP浓度和外部负载对1HB和2HB状态比例影响的结果。此外,该理论被应用于驱动蛋白-1、驱动蛋白-2、驱动蛋白-3、驱动蛋白-5和驱动蛋白-13,理论结果与已发表的实验数据吻合良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eac8/12108896/f557f57c8a24/biomolecules-15-00717-g001.jpg

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