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影响兴奋-收缩偶联的动作电位参数。

Action potential parameters affecting excitation-contraction coupling.

作者信息

Taylor S R, Preiser H, Sandow A

出版信息

J Gen Physiol. 1972 Apr;59(4):421-36. doi: 10.1085/jgp.59.4.421.

Abstract

In quantifying type B potentiation effects, given earlier merely qualitatively, it is found that Zn(2+), 1-50 microM, causes increases in action potential duration, twitch tension, and twitch contraction period time, which are all directly proportional to the log of the concentration. Hence, the duration of the action potential, i.e. the magnitude of its mechanically effective period, is a causal factor quantitatively determining the degree of mechanical activation in the isometric twitch. In higher concentrations of Zn(2+) up to 1000 microM, the spike duration and the contraction time continue to increase but the twitch tension is disproportionately smaller, evidently because the high zinc (500-1000 microM) raises the mechanical threshold of excitation-contraction (E-C) coupling and reduces the intrinsic strength of the contractile system. Eserine (1.5 mM) and also high Zn(2+) not only cause type B potentiation effects, but also slow the rise of the spike, thus causing retardation of the very onset of tension production, which is even greater for high Zn(2+) because of the raised mechanical threshold. This retardation is then succeeded by the faster tension output characteristic of type B potentiation resulting from spike prolongation. Thus, the changes in the consecutive, rising and falling phases of the action potential explicitly register their separate effects in the respective very earliest and directly following periods of twitch output; i.e., each phase of the action potential produces its own mechanical "transform." These transforms, and other effects, suggest that the release of activator Ca(2+) from the sarcoplasmic reticulum during E-C coupling can be graded in both the rate and the total amount of the release.

摘要

在对先前仅作定性描述的B型增强效应进行量化时,发现1 - 50微摩尔的锌离子(Zn(2+))会使动作电位持续时间、单收缩张力和单收缩收缩期时间增加,这些均与浓度的对数成正比。因此,动作电位的持续时间,即其机械有效期的长短,是定量决定等长单收缩中机械激活程度的一个因果因素。在高达1000微摩尔的较高锌离子浓度下,峰电位持续时间和收缩时间继续增加,但单收缩张力却不成比例地变小,显然是因为高浓度锌(500 - 1000微摩尔)提高了兴奋 - 收缩(E - C)偶联的机械阈值并降低了收缩系统的内在强度。毒扁豆碱(1.5毫摩尔)以及高浓度锌离子不仅会引起B型增强效应,还会减缓峰电位的上升,从而导致张力产生起始的延迟,对于高浓度锌离子来说,由于机械阈值升高,这种延迟更为明显。这种延迟之后是由峰电位延长导致的B型增强所特有的更快的张力输出。因此,动作电位连续的上升和下降阶段的变化明确记录了它们在单收缩输出的各自最早和紧接着的时期的单独影响;也就是说,动作电位的每个阶段都会产生其自身的机械“转变”。这些转变以及其他效应表明,在E - C偶联过程中,肌浆网中激活钙(Ca(2+))的释放速率和总量都可以分级。

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