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HIGH-FREQUENCY MOTILITY OF OUTER HAIR CELLS AND THE COCHLEAR AMPLIFIER

机译:外部毛发细胞的高频运动性和耳蜗放大器

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Outer hair cells undergo somatic elongation-contraction cycles in vitro when electrically stimulated. This ''electromotile'' response is assumed to underlie the high sensitivity and frequency selectivity of amplification in the mammalian cochlea. This process, presumably operating on a cycle-by-cycle basis at the frequency of the stimulus, is believed to provide mechanical feedback in vivo. However, if driven by the receptor potential of the cell, the mechanical feedback is expected to be severely attenuated at high frequencies because of electrical low-pass filtering by the outer hair cell basolateral membrane. It is proposed that electromotility at high frequencies is driven instead by extracellular potential gradients across the hair cell, and it is shown that this driving voltage is not subject to low-pass filtering and is sufficiently large. It is further shown that if the filtering properties of the cell membrane are canceled, taking advantage of the electrical characteristics of isolated outer hair cells in a partitioning glass microchamber, then the lower bound of the motor's bandwidth is approximately 22 kilohertz, a number determined only by the limitations of our instrumentation.
机译:当电刺激时,外毛细胞在体外经历体细胞伸长-收缩循环。假定这种“电动力”响应是哺乳动物耳蜗中扩增的高灵敏度和频率选择性的基础。据信,该过程大概以刺激的频率逐周期地进行,从而在体内提供了机械反馈。但是,如果受到细胞受体电位的驱动,则由于外部毛细胞基底外侧膜的电低通滤波,机械反馈预计会在高频下严重衰减。提出了高频电动力是由跨毛细胞的细胞外电势梯度驱动的,并且表明该驱动电压不受低通滤波的影响并且足够大。进一步显示,如果利用分隔玻璃微腔室中隔离的外部毛细胞的电特性消除了细胞膜的过滤特性,则电动机带宽的下限约为22 kHz,该数字仅由受我们仪器的局限性。

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