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Anatomical distribution of voltage-dependent membrane capacitance in frog skeletal muscle fibers

机译:青蛙骨骼肌纤维中电压依赖性膜电容的解剖分布

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摘要

Components of nonlinear capacitance, or charge movement, were localized in the membranes of frog skeletal muscle fibers by studying the effect of 'detubulation' resulting from sudden withdrawal of glycerol from a glycerol-hypertonic solution in which the muscles had been immersed. Linear capacitance was evaluated from the integral of the transient current elicited by imposed voltage clamp steps near the holding potential using bathing solutions that minimized tubular voltage attenuation. The dependence of linear membrane capacitance on fiber diameter in intact fibers was consistent with surface and tubular capacitances and a term attributable to the capacitance of the fiber end. A reduction in this dependence in detubulated fibers suggested that sudden glycerol withdrawal isolated between 75 and 100% of the transverse tubules from the fiber surface. Glycerol withdrawal in two stages did not cause appreciable detubulation. Such glycerol-treated but not detubulated fibers were used as controls. Detubulation reduced delayed (q gamma) charging currents to an extent not explicable simply in terms of tubular conduction delays. Nonlinear membrane capacitance measured at different voltages was expressed normalized to accessible linear fiber membrane capacitance. In control fibers it was strongly voltage dependent. Both the magnitude and steepness of the function were markedly reduced by adding tetracaine, which removed a component in agreement with earlier reports for q gamma charge. In contrast, detubulated fibers had nonlinear capacitances resembling those of q beta charge, and were not affected by adding tetracaine. These findings are discussed in terms of a preferential localization of tetracaine- sensitive (q gamma) charge in transverse tubule membrane, in contrast to a more even distribution of the tetracaine-resistant (q beta) charge in both transverse tubule and surface membranes. These results suggest that q beta and q gamma are due to different molecules and that the movement of q gamma in the transverse tubule membrane is the voltage- sensing step in excitation-contraction coupling.
机译:通过研究由于甘油从浸入肌肉的甘油-高渗溶液中突然撤出而产生的“脱管”效应,非线性电容或电荷运动的成分位于青蛙骨骼肌纤维的膜中。使用最小化管状电压衰减的沐浴溶液,通过在保持电位附近施加电压钳位步骤所引起的瞬态电流积分,来评估线性电容。线性膜电容对完整纤维中纤维直径的依赖性与表面和管状电容以及可归因于纤维末端电容的术语一致。降低对拔管纤维的依赖性的现象表明,甘油突然撤离从纤维表面分离出了75%至100%的横向小管。在两个阶段撤出甘油不会引起明显的脱管。将这种经甘油处理但未拔管的纤维用作对照。脱管可以将延迟的(qγ)充电电流降低到仅就管状传导延迟而言无法解释的程度。将在不同电压下测得的非线性膜电容表示为可及的线性纤维膜电容。在对照光纤中,它与电压密切相关。通过添加丁卡因,该功能的幅度和陡度均显着降低,这与先前关于qγ电荷的报道相符,删除了一个成分。相反,去管纤维具有类似于qβ电荷的非线性电容,并且不受丁卡因添加的影响。这些发现是根据对丁卡因敏感性(q gamma)电荷在横管膜中的优先定位进行讨论的,与对丁卡因(q beta)电荷在横管和表面膜中更均匀的分布形成了对比。这些结果表明,q beta和q gamma是由于分子不同而引起的,并且在横向-肾小管膜中q gamma的运动是激发-收缩耦合中的电压传感步骤。

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