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Tension in Skinned Frog Muscle Fibers in Solutions of Varying Ionic Strength and Neutral Salt Composition

机译:在离子强度和中性盐组成变化的溶液中蛙皮肌肉纤维的张力

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摘要

The maximal calcium-activated isometric tension produced by a skinned frog single muscle fiber falls off as the ionic strength of the solution bathing this fiber is elevated declining to zero near 0.5 M as the ionic strength is varied using KCl. When other neutral salts are used, the tension always declines at high ionic strength, but there is some difference between the various neutral salts used. The anions and cations can be ordered in terms of their ability to inhibit the maximal calcium-activated tension. The order of increasing inhibition of tension (decreasing tension) at high ionic strength for anions is propionate- ≃ SO4 -- < Cl- < Br-. The order of increasing inhibition of calcium-activated tension for cations is K+ ≃ Na+ ≃ TMA+ < TEA+ < TPrA+ < TBuA+. The decline of maximal calcium-activated isometric tension with elevated salt concentration (ionic strength) can quantitatively explain the decline of isometric tetanic tension of a frog muscle fiber bathed in a hypertonic solution if one assumes that the internal ionic strength of a muscle fiber in normal Ringer's solution is 0.14–0.17 M. There is an increase in the base-line tension of a skinned muscle fiber bathed in a relaxing solution (no added calcium and 3 mM EGTA) of low ionic strength. This tension, which has no correlate in the intact fiber in hypotonic solutions, appears to be a noncalcium-activated tension and correlates more with a declining ionic strength than with small changes in [MgATP], [Mg], pH buffer, or [EGTA]. It is dependent upon the specific neutral salts used with cations being ordered in increasing inhibition of this noncalcium-activated tension (decreasing tension) as TPrA+ < TMA+ < K+ ≃ Na+. Measurements of potentials inside these skinned muscle fibers bathed in relaxing solutions produced occasional small positive values (<6 mV) which were not significantly different from zero.
机译:当使用KCl改变离子强度时,皮肤青蛙单肌纤维产生的最大钙激活等轴测张力会降低,因为浸入该纤维的溶液的离子强度升高,在0.5 M附近下降至零。当使用其他中性盐时,在高离子强度下张力总是下降,但是所使用的各种中性盐之间存在一些差异。可以根据它们抑制最大钙激活张力的能力来排列阴离子和阳离子。阴离子在高离子强度下对张力的抑制作用增大(减小的张力)的顺序为丙酸-≃SO4 - -
-。钙激活张力对阳离子的抑制作用增加的顺序为K + ≃Na + ≃TMA + + + + 。如果假定高渗溶液中浸泡的青蛙肌纤维的内部离子强度在正常范围内,则钙激活的最大等轴测张力随盐浓度(离子强度)的升高而下降,可以定量解释浸泡在高渗溶液中的青蛙肌纤维的等轴测张量的下降。林格氏溶液为0.14-0.17M。浸泡在离子强度低的松弛溶液(未添加钙和3 mM EGTA)中的皮肤肌肉纤维的基线张力会增加。该张力在低渗溶液中与完整纤维无关,似乎是非钙激活的张力,与[MgATP],[Mg],pH缓冲液或[EGTA]的微小变化相比,与离子强度下降的相关性更大。 ]。这取决于与阳离子配合使用的特定中性盐,它们在增加对这种非钙激活张力的抑制(减小张力)时的顺序,如TPrA + + + ≃Na + 。测量在松弛溶液中沐浴的这些皮肤肌肉纤维内部的电势,偶尔会产生小的正值(<6 mV),该值与零没有显着差异。

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