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Effects of membrane potential on the voltage dependence of motility-related charge in outer hair cells of the guinea-pig

机译:膜电位对豚鼠外毛细胞运动相关电荷的电压依赖性的影响

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摘要

class="enumerated" style="list-style-type:decimal">Isolated outer hair cells (OHCs) from the guinea-pig were whole-cell voltage clamped to study the influence of initial voltage on the voltage dependence of motility-related gating current or, equivalently, on the voltage dependence of membrane capacitance.Prepulse delivery caused changes in the magnitude of motility-related gating currents, which are due predominantly to shifts in the voltage at peak capacitance (VpkCm). Depolarization shifts VpkCm in the hyperpolarizing direction, and hyperpolarization does the opposite. The mean shift between −120 and +40 mV prepulse states with long-term holding potentials (> 2 min) at −80 mV was 14.67 ± 0.95 mV (n = 10; mean ± s.e.m.).The effect of initial membrane potential is sigmoidal, with a voltage dependence of 23 mV per e-fold change in VpkCm, and maximum slope within the physiological range of OHC resting potentials. This indicates that the cell is poised to respond maximally to changes in resting potential.The kinetics of prepulse effects are slow compared with motility-related gating current kinetics. High-resolution measurement of membrane capacitance (Cm) using two voltage sinusoids indicates that shifts in VpkCm induce Cm changes with time courses fitted by two exponentials (τ0, 0.070 ± 0.003 s; τ1, 1.28 ± 0.07 s; A0, 1.54 ± 0.13 pF; A1, 1.51 ± 0.13 pF; means ± s.e.m.; n = 22; step from +50 to −80 mV). Recovery of prepulse effects exhibits a similar time course.Prepulse effects are resistant to intracellular enzymatic digestion, to fast intracellular calcium buffers, and to intracellular pressure. Through modelling, we indicate how the effect may be explained by an intrinsic voltage-induced tension generated by the molecular motors residing in the lateral membrane.
机译:class =“ enumerated” style =“ list-style-type:decimal”> <!-list-behavior =枚举前缀-word = mark-type = decimal max-label-size = 0-> 将豚鼠的离体外毛细胞(OHC)进行全细胞电压钳制,以研究初始电压对与运动相关的门控电流的电压依赖性或等效地对膜电容的电压依赖性的影响。 2 min)且在-80 mV时具有-120和+40 mV的预脉冲状态之间的平均偏移为14.67±0.95 mV(n = 10;平均值±sem)。 初始膜电位的影响是S形的,VpkCm的每e倍变化具有23 mV的电压依赖性,并且在OHC静息电位的生理范围内具有最大斜率。这表明细胞已准备好对静止电位的变化做出最大反应。 与运动相关的门控电流动力学相比,前脉冲效应的动力学较慢。使用两个电压正弦波对膜电容(Cm)进行高分辨率测量表明,VpkCm的变化会引起Cm随两个指数(τ0,0.070±0.003 s;τ1,1.28±0.07 s; A0,1.54±0.13 pF)拟合的时间变化; A1,1.51±0.13 pF;表示±sem; n = 22;从+50到-80 mV步进)。前脉冲效应的恢复表现出相似的时间过程。 前脉冲效应对细胞内酶消化,快速的细胞内钙缓冲液和细胞内压力具有抵抗力。通过建模,我们指出了如何通过驻留在侧膜中的分子马达产生的固有电压感应张力来解释这种效应。

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