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A biophysical mechanism for muscle contraction and spontaneous oscillation

机译:肌肉收缩和自发振荡的生物物理机制

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Based on a simplified model of mechanochemical actin-activated myosin ATPase cycle the muscle state equation and muscle kinetic equation are deduced from the biochemical thermodynamic principles. A set of chemical kinetic equations describing the cycle is established. From the non-equilibrium steady state solution of the set of equations, the experimental data on the fraction of myosin heads in any biochemical state independent of the concentration of inorganic phosphate, [Pi], and the data on the active, isometric muscle force varying logarithmically with [Pi] are explained. Therefore, how force as a state variable coupled to chemical reaction in muscle system is clarified and the muscle state equation is set up. Based on the muscle state equation, by use of the worm-like chain fits on the force versus extension characteristic of elastic elements in muscle and taking the viscous frictional force into account, a kinetic equation for sarcomeres is given and through the solution of the equation, both contraction and spontaneous oscillation of sarcomeres are explained in a natural way. The computational results agree well with experimental data. In the last section of the paper the implications relating to the possibly existed power stroke in the actin-myosin system are explored briefly in terms of the proposed simplified model on actomyosin ATPase cycle.
机译:基于机械化学肌动蛋白激活的肌球蛋白ATPase循环的简化模型,从生化热力学原理推导了肌肉状态方程和肌肉动力学方程。建立了一组描述循环的化学动力学方程。从这组方程的非平衡稳态解,关于任何生物化学状态下肌球蛋白头部的分数的实验数据,与无机磷酸盐的浓度(Pi)无关,以及有效的,等距的肌肉力变化的数据用Pi对数地解释。因此,阐明了如何将力作为状态变量耦合到肌肉系统中的化学反应,并建立了肌肉状态方程。根据肌肉状态方程,利用蠕虫状链拟合肌肉中弹性元件的力与伸展特性,并考虑粘性摩擦力,得出肉瘤的动力学方程,并通过方程求解,以自然的方式解释了肉瘤的收缩和自发振荡。计算结果与实验数据吻合良好。在本文的最后一部分中,根据提出的放线肌球蛋白ATPase循环简化模型,简要探讨了肌动蛋白-肌球蛋白系统中可能存在的中风相关问题。

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