首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Prestin-based outer hair cell electromotility in knockin mice does not appear to adjust the operating point of a cilia-based amplifier
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Prestin-based outer hair cell electromotility in knockin mice does not appear to adjust the operating point of a cilia-based amplifier

机译:敲除小鼠中基于Prestin的外部毛细胞电动力似乎无法调节基于纤毛的放大器的工作点

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摘要

The remarkable sensitivity and frequency selectivity of the mammalian cochlea is attributed to a unique amplification process that resides in outer hair cells (OHCs). Although the mammalian-specific somatic motility is considered a substrate of cochlear amplification, it has also been proposed that somatic motility in mammals simply acts as an operating-point adjustment for the ubiquitous stereocilia-based amplifier. To address this issue, we created a mouse model in which a mutation (C1) was introduced into the OHC motor protein prestin, based on previous results in transfected cells. In C1/C1 knockin mice, localization of C1-prestin, as well as the length and number of OHCs, were all normal. In OHCs isolated from C1/C1 mice, nonlinear capacitance and somatic motility were both shifted toward hyperpolarization, so that, compared with WT controls, the amplitude of cycle-by-cycle (alternating, or AC) somatic motility remained the same, but the unidirectional (DC) component reversed polarity near the OHC's presumed in vivo resting membrane potential. No physiological defects in cochlear sensitivity or frequency selectivity were detected in C1/C1 or C1/+ mice. Hence, our results do not support the idea that OHC somatic motility adjusts the operating point of a stereocilia-based amplifier. However, they are consistent with the notion that the AC component of OHC somatic motility plays a dominant role in mammalian cochlear amplification.
机译:哺乳动物耳蜗的出色灵敏度和频率选择性归因于驻留在外毛细胞(OHC)中的独特扩增过程。尽管哺乳动物特定的躯体运动被认为是耳蜗放大的底物,但也有人提出哺乳动物中的躯体运动只是充当了普遍存在的基于纤毛的放大器的工作点调节。为了解决这个问题,我们基于之前在转染细胞中的结果,创建了一个小鼠模型,其中将突变(C1)引入了OHC运动蛋白蛋白素中。在C1 / C1敲入小鼠中,C1-prestin的定位以及OHC的长度和数量均正常。在从C1 / C1小鼠中分离出的OHC中,非线性电容和体细胞运动都朝着超极化方向移动,因此,与WT对照相比,逐周期(交流或交流)体细胞运动的幅度保持不变,但是单向(DC)组件在OHC假定的体内静息膜电位附近反转了极性。在C1 / C1或C1 / +小鼠中未检测到耳蜗敏感性或频率选择性方面的生理缺陷。因此,我们的结果不支持OHC体细胞运动调节基于纤毛的放大器的工作点的想法。但是,它们与OHC体细胞运动的AC成分在哺乳动物耳蜗放大中起主导作用的观点是一致的。

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