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The nonlinear chemo-mechanic coupled dynamics of the F1-ATPase molecular motor

机译:F1-ATPase分子马达的非线性化学-机械耦合动力学

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摘要

The ATP synthase consists of two opposing rotary motors, F0 and F1, coupled to each other. When the F1 motor is not coupled to the F0 motor, it can work in the direction hydrolyzing ATP, as a nanomotor called F1-ATPase. It has been reported that the stiffness of the protein varies nonlinearly with increasing load. The nonlinearity has an important effect on the rotating rate of the F1-ATPase. Here, considering the nonlinearity of the γ shaft stiffness for the F1-ATPase, a nonlinear chemo-mechanical coupled dynamic model of F1 motor is proposed. Nonlinear vibration frequencies of the γ shaft and their changes along with the system parameters are investigated. The nonlinear stochastic response of the elastic γ shaft to thermal excitation is analyzed. The results show that the stiffness nonlinearity of the γ shaft causes an increase of the vibration frequency for the F1 motor, which increases the motor’s rotation rate. When the concentration of ATP is relatively high and the load torque is small, the effects of the stiffness nonlinearity on the rotating rates of the F1 motor are obvious and should be considered. These results are useful for improving calculation of the rotating rate for the F1 motor and provide insight about the stochastic wave mechanics of F1-ATPase.
机译:ATP合酶由两个相互耦合的相对的旋转电机F0和F1组成。当F1电动机未与F0电动机耦合时,它可以在水解ATP的方向上工作,就像称为F1-ATPase的纳米电动机一样。据报道,蛋白质的刚度随负荷的增加而非线性变化。非线性度对F1-ATPase的旋转速率具有重要影响。在此,考虑到F1-ATPase的γ轴刚度的非线性,提出了F1电机的非线性化学机械耦合动力学模型。研究了γ轴的非线性振动频率及其变化以及系统参数。分析了弹性γ轴对热激励的非线性随机响应。结果表明,γ轴的刚度非线性导致F1电机的振动频率增加,从而提高了电机的转速。当ATP浓度较高且负载转矩较小时,刚度非线性对F1电机转速的影响是明显的,应予以考虑。这些结果对于改进F1电动机的转速计算非常有用,并有助于了解F1-ATPase的随机波力学。

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