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横管延迟对哺乳动物骨骼肌中电荷移动动力学的影响。

The influence of transverse tubular delays on the kinetics of charge movement in mammalian skeletal muscle.

作者信息

Simon B J, Beam K G

出版信息

J Gen Physiol. 1985 Jan;85(1):21-42. doi: 10.1085/jgp.85.1.21.

Abstract

A model was developed to describe the kinetics of slow, voltage-dependent charge movement in the rat omohyoid muscle. To represent the electrically distributed nature of the transverse tubular system (t-system), we followed an approach similar to that described by Adrian and Peachey (1973 J. Physiol. [Lond.]. 235:103), and approximated the fiber with 12 concentric cylindrical shells. Incorporated into each shell were capacitative and conductive elements that represented the passive electrical properties of the t-system, and an element representing the mobile charge. The charge was assumed to obey a two-state scheme, in which the redistribution of charge is governed by a first-order reaction, and the rate constants linking the two states were assumed to depend on potential according to the constant field expression. The predictions of this "distributed two-state model" were compared with charge movements experimentally measured in individual fibers. For this comparison, first, the passive electrical parameters of the model were adjusted to fit the experimental linear capacity transient. Next, the Boltzmann expression was fitted to the steady state Q vs. V data of the fiber, thereby constraining the voltage dependence of the rate constants, but not their absolute magnitude. The absolute magnitude was determined by fitting the theory to an experimental charge movement at a single test potential, which in turn constrained the fits at all other test potentials. The distributed two-state model well described the rising and falling phases of ON, OFF, and stepped OFF charge movements at temperatures ranging from 3 to 25 degrees C. We thus conclude that tubular delays are sufficient to account for the rounded rising phase of experimental charge movements, and that it is unnecessary to postulate higher-order reaction schemes for the underlying charge redistribution.

摘要

开发了一个模型来描述大鼠肩胛舌骨肌中缓慢的、电压依赖性电荷移动的动力学。为了体现横管系统(t系统)的电分布特性,我们采用了与阿德里安和皮奇(1973年,《生理学杂志》[伦敦]。235:103)所描述的方法类似的方法,并用12个同心圆柱壳来近似纤维。每个壳中都包含代表t系统被动电学特性的电容性和导电性元件,以及一个代表移动电荷的元件。假设电荷服从双态模式,其中电荷的重新分布由一级反应控制,并且连接两个状态的速率常数根据恒定场表达式假设取决于电位。将这个“分布式双态模型”的预测结果与在单个纤维中实验测量的电荷移动进行了比较。为了进行这种比较,首先,调整模型的被动电学参数以拟合实验线性电容瞬变。接下来,将玻尔兹曼表达式拟合到纤维的稳态Q与V数据,从而限制速率常数的电压依赖性,但不限制其绝对值。通过将理论拟合到单个测试电位下的实验电荷移动来确定绝对值,这反过来又限制了在所有其他测试电位下的拟合。分布式双态模型很好地描述了在3至25摄氏度温度范围内的开启、关闭和阶梯式关闭电荷移动的上升和下降阶段。因此我们得出结论,管状延迟足以解释实验电荷移动的圆形上升阶段,并且没有必要为潜在的电荷重新分布假设高阶反应模式。

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