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Force generation by mammalian hair bundles supports a role in cochlear amplification

机译:哺乳动物发束产生的力支持耳蜗放大作用

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It is generally accepted that the acute sensitivity and frequency discrimination of mammalian hearing requires active mechanical amplification of the sound stimulus within the cochlea(1). The prevailing hypothesis is that this amplification stems from somatic electromotility of the outer hair cells attributable to the motor protein prestin(2,3). Thus outer hair cells contract and elongate in synchrony with the sound-evoked receptor potential(4,5). But problems arise with this mechanism at high frequencies, where the periodic component of the receptor potential will be attenuated by the membrane time constant. On the basis of work in non-mammalian vertebrates, force generation by the hair bundles has been proposed as an alternative means of boosting the mechanical stimulus(6,7). Here we show that hair bundles of mammalian outer hair cells can also produce force on a submillisecond timescale linked to adaptation of the mechano-transducer channels. Because the bundle motor may ultimately be limited by the deactivation rate of the channels, it could theoretically operate at high frequencies. Our results show the existence of another force generator in outer hair cells that may participate in cochlear amplification.
机译:人们普遍认为,哺乳动物听力的急性敏感性和频率歧视要求对耳蜗内的声音刺激进行积极的机械放大(1)。普遍的假设是,这种放大作用源于外毛细胞的体细胞电动性,可归因于运动蛋白prestin(2,3)。因此,外毛细胞与发声的受体电位同步收缩和伸长(4,5)。但是这种机制在高频下会出现问题,其中受体电位的周期性成分会被膜时间常数所衰减。根据在非哺乳动物脊椎动物中的工作,已提出通过发束产生力作为增强机械刺激的另一种方法(6,7)。在这里,我们显示哺乳动物外毛细胞的发束也可以在毫秒级的时间尺度上产生力,该时间尺度与机械换能器通道的适应性相关。由于束式电动机最终可能会受到通道停用率的限制,因此理论上它可以在高频下运行。我们的研究结果表明,外毛细胞中可能存在另一种可能参与耳蜗放大的力产生器。

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