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Some Effects of Hypertonic Solutions on Contraction and Excitation-Contraction Coupling in Frog Skeletal Muscles

机译:高渗溶液对青蛙骨骼肌收缩与兴奋-收缩耦合的影响

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摘要

In frog fast skeletal muscle, we find a decline of twitch, tetanus, and maximum K and caffeine contracture tensions as tonicity of the bathing solution is increased. The decline of tension independent of the method of producing contraction indicates that the major effect of hypertonicity is directly on contractile tension probably because of the increased internal ionic strength. However, there is some apparent disruption of excitation-contraction (E-C) coupling in solutions made three times the normal tonicity (3T solutions) since: (a) in 3T solutions tetanic and K contracture tensions decline to zero from a value near the average maximum caffeine contracture tension at this tonicity (10% of 1T tetanic tension). At this time, caffeine contractures of 10% of 1T tetanic tension can be elicited; (b) once the K contracture tension has declined, elevated [Ca++]o, 19.8 mM, restores K contracture tension to 13% of 1T tetanic tension. This probable disruption is not caused by changes in mechanical threshold since in 2T solutions the mechanical threshold is shifted by 12 mv in the hyperpolarizing direction. This is consistent with neutralization of fixed negative charges on the inside of the membrane. The repriming curve is also shifted in the hyperpolarizing direction in 2T solutions. Shifts of the repriming curve coupled with membrane depolarizations in 3T solutions (about 20 mv) may produce loss of repriming ability at the resting potential and disruption of E-C coupling.
机译:在青蛙快速骨骼肌中,随着沐浴液的张度增加,我们发现抽搐,破伤风以及最大K和咖啡因挛缩张力下降。张力的降低与产生收缩的方法无关,这表明高渗的主要作用直接是对收缩张力的影响,可能是由于内部离子强度的增加所致。但是,在三倍于普通张度的溶液(3T溶液)中,兴奋-收缩(EC)耦合受到明显破坏,原因是:(a)在3T溶液中,破伤风和K挛缩张力从接近平均最大值的值下降到零咖啡因挛缩张力在这种张力下(1T强直张力的10%)。此时,咖啡因挛缩可引起1T强直性张力的10%。 (b)一旦K挛缩张力下降,[Ca ++ ] o升高至19.8 mM,可使K挛缩张力恢复至1T强直张力的13%。这种可能的破坏不是由机械阈值的变化引起的,因为在2T解决方案中,机械阈值在超极化方向上偏移了12 mv。这与膜内部固定负电荷的中和相一致。在2T解决方案中,重新启动曲线也会在超极化方向上移动。在3T溶液(约20 mv)中,引发曲线的移动与膜去极化相结合,可能会导致静止电位处的引发能力丧失,并破坏E-C耦合。

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