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首页> 外文期刊>Journal of Muscle Research and Cell Motility >A thermodynamic muscle model and a chemical basis for A.V. Hill's muscle equation.
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A thermodynamic muscle model and a chemical basis for A.V. Hill's muscle equation.

机译:热力学肌肉模型和A.V.的化学基础希尔的肌肉方程式。

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Direct measurements of a relationship between force and actin-myosin biochemistry in muscle suggest that molecular forces in active muscle rapidly equilibrate among. not within, individual myosin crossbridges [Baker et al. (1999) Biophys J 77: 2657 2664]. This observation suggests a thermodynamic model of muscle contraction in which muscle, not an individual myosin crossbridge, is treated as a near-equilibrium system. The general approach can be applied to any ensemble of molecular motors that undergo a physicochemical step against a constant external potential. In this paper we apply the model to a simple two-state crossbridge scheme like that proposed by A.F. Huxley (1957) [Prog Biophys 7: 255 317], and we immediately obtain A.V. Hill's muscle equation. We show that this equation accurately describes steady-state muscle mechanics, biochemistry and energetics. This thermodynamic model provides a novel description of force-dependent actin-myosin kinetics in muscle and provides precise chemical expressions for myosin cooperativity, myosinduty ratios, the number of working strokes per ATP hydrolyzed, muscle efficiency. and energy transfer.
机译:对力与肌动蛋白-肌球蛋白生物化学之间关系的直接测量表明,活跃肌肉中的分子力迅速平衡。单个肌球蛋白跨桥[Baker等。 (1999)Biophys J 77:2657 2664]。该观察结果表明了肌肉收缩的热力学模型,其中将肌肉而不是单个肌球蛋白横桥视为近平衡系统。通用方法可以应用于针对恒定的外部电势经过物理化学步骤的任何分子电动机集成体。在本文中,我们将该模型应用于简单的两态交叉桥方案,例如A.F. Huxley(1957)提出的方案[Prog Biophys 7:255 317],然后立即获得了希尔的肌肉方程式。我们表明,该方程式准确地描述了稳态肌肉力学,生物化学和能量学。该热力学模型提供了对肌肉中依赖于力的肌动蛋白-肌球蛋白动力学的新颖描述,并提供了肌球蛋白协同性,肌球蛋白比,每个ATP水解的工作行程数,肌肉效率的精确化学表达。和能量转移。

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