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自由能与生化途径的动力学,包括主动运输。

Free energy and the kinetics of biochemical diagrams, including active transport.

作者信息

Hill T L

出版信息

Biochemistry. 1975 May 20;14(10):2127-37. doi: 10.1021/bi00681a014.

Abstract

In earlier papers on muscle contraction it was found very useful to relate the actual (not standard) free energy levels of the different states in the biochemical diagram of the myosin cross-bridge to the first-order rate constants governing transitions between these states and to the details of the conversion of ATP free energy into mechanical work. This same approach is applied here to other macromolecular biochemical systems, for example, carriers in active transport, and simple enzyme reactions. With the definition of free energy changes between states of diagram used here (and in the muscle papers), the rate constants of the diagram are firat order, the macromolecular transitions are effectively isomeric, the equilibrium constants are dimensionless, the free energy changes are directly related to first-order rate constant ratios, and the ratio of products of forward and backward rate constants around any cycle of the diagram is related to operational free energy changes (e.g. the in vivo free energy of ADP HYDROLYSIS). These general points are illustrated by means of particular arbitrary models, especially transport models. In contrast to the muscle case, the free energy conversion question in other biochemical systems can be handled at the less detailed, complete-cycle level rather than at the elementary transition level. There is a corresponding complete-cycle kinetics, with composite first-order rate constants for the different possible cycles (in both directions). An introductory stochastic treatment of cycle kinetics is included.

摘要

在早期关于肌肉收缩的论文中,人们发现将肌球蛋白横桥生化图中不同状态的实际(而非标准)自由能水平与控制这些状态之间转变的一级速率常数以及ATP自由能转化为机械功的细节联系起来非常有用。这里将同样的方法应用于其他大分子生化系统,例如主动运输中的载体以及简单的酶反应。根据此处(以及关于肌肉的论文中)所使用的图中各状态之间自由能变化的定义,图中的速率常数为一级,大分子转变实际上是异构的,平衡常数是无量纲的,自由能变化与一级速率常数之比直接相关,并且图中任何循环的正向和反向速率常数乘积之比与操作自由能变化(例如体内ADP水解的自由能)相关。这些一般要点通过特定的任意模型,特别是运输模型进行说明。与肌肉情况不同,其他生化系统中的自由能转化问题可以在不太详细的全循环水平而非基本转变水平上处理。存在相应的全循环动力学,对于不同可能的循环(双向)有复合一级速率常数。文中还包括了循环动力学的初步随机处理。

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