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外毛细胞运动相关门控电荷的畸变成分分析

Distortion component analysis of outer hair cell motility-related gating charge.

作者信息

Takahashi S, Santos-Sacchi J

机构信息

Sections of Otolaryngology and Neurobiology, Yale University School of Medicine, New Haven, CT 06510, USA.

出版信息

J Membr Biol. 1999 Jun 1;169(3):199-207. doi: 10.1007/s002329900531.

Abstract

The underlying Boltzmann characteristics of motility-related gating currents of the outer hair cell (OHC) are predicted to generate distortion components in response to sinusoidal transmembrane voltages. We studied this distortion since it reflects the mechanical activity of the cell that may contribute to peripheral auditory system distortion. Distortion components in the OHC electrical response were analyzed using the whole-cell voltage clamp technique, under conditions where ionic conductances were blocked. Single or double-sinusoidal transmembrane voltage stimulation was delivered at various holding voltages, and distortion components of the current responses were detected by Fourier analysis. Current response magnitude and phase of each distortion component as a function of membrane potential were compared with characteristics of the voltage-dependent capacitance, obtained by voltage stair-step transient analysis or dual-frequency admittance analysis. The sum distortion was most prominent among the distortion components at all holding voltages. Notches in the sum (f1+f2), difference (f2-f1) and second harmonic (2f) components occur at the voltage where peak voltage-dependent capacitance resides (VpkCm). Rapid phase reversals also occurred at VpkCm, but phase remained fairly stable at more depolarized and hyperpolarized potentials. Thus, it is possible to extract Boltzmann parameters of the motility-related charge movement from these distortion components. In fact, we have developed a technique to follow changes in the voltage dependence of OHC motility and charge movement by tracking the voltage at phase reversal of the f2-f1 product. When intracellular turgor pressure was changed, VpkCm and distortion notch voltages shifted in the same direction. These data have important implications for understanding cochlear nonlinearity, and more generally, indicate the usefulness of distortion analysis to study displacement currents.

摘要

外毛细胞(OHC)运动相关门控电流的潜在玻尔兹曼特性预计会在响应正弦跨膜电压时产生失真成分。我们研究了这种失真,因为它反映了细胞的机械活动,可能会导致外周听觉系统失真。在离子电导被阻断的条件下,使用全细胞电压钳技术分析了OHC电反应中的失真成分。在不同的钳制电压下施加单正弦或双正弦跨膜电压刺激,并通过傅里叶分析检测电流反应的失真成分。将每个失真成分的电流反应幅度和相位作为膜电位的函数,与通过电压阶跃瞬态分析或双频导纳分析获得的电压依赖性电容的特性进行比较。在所有钳制电压下,总和失真在失真成分中最为突出。总和(f1 + f2)、差值(f2 - f1)和二次谐波(2f)成分中的凹陷出现在电压依赖性电容峰值所在的电压(VpkCm)处。在VpkCm处也会发生快速的相位反转,但在更去极化和超极化电位下相位保持相当稳定。因此,有可能从这些失真成分中提取与运动相关的电荷运动的玻尔兹曼参数。事实上,我们已经开发出一种技术,通过跟踪f2 - f1乘积的相位反转处的电压来跟踪OHC运动性和电荷运动的电压依赖性变化。当细胞内膨压改变时,VpkCm和失真凹陷电压会向相同方向移动。这些数据对于理解耳蜗非线性具有重要意义,更普遍地说,表明了失真分析在研究位移电流方面的有用性。

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