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哺乳动物耳蜗中毛细胞的顶链接复合物的僵硬和张力梯度。

Stiffness and tension gradients of the hair cell's tip-link complex in the mammalian cochlea.

机构信息

Laboratoire Physico-Chimie Curie, Institut Curie, PSL Research University, CNRS UMR168, Paris, France.

Sorbonne Université, Paris, France.

出版信息

Elife. 2019 Apr 1;8:e43473. doi: 10.7554/eLife.43473.

Abstract

Sound analysis by the cochlea relies on frequency tuning of mechanosensory hair cells along a tonotopic axis. To clarify the underlying biophysical mechanism, we have investigated the micromechanical properties of the hair cell's mechanoreceptive hair bundle within the apical half of the rat cochlea. We studied both inner and outer hair cells, which send nervous signals to the brain and amplify cochlear vibrations, respectively. We find that tonotopy is associated with gradients of stiffness and resting mechanical tension, with steeper gradients for outer hair cells, emphasizing the division of labor between the two hair-cell types. We demonstrate that tension in the tip links that convey force to the mechano-electrical transduction channels increases at reduced Ca. Finally, we reveal gradients in stiffness and tension at the level of a single tip link. We conclude that mechanical gradients of the tip-link complex may help specify the characteristic frequency of the hair cell.

摘要

耳蜗的声音分析依赖于机械敏感毛细胞在音调轴上的频率调谐。为了阐明潜在的生物物理机制,我们研究了大鼠耳蜗顶部一半的毛细胞机械感受毛束的微机械特性。我们研究了内毛细胞和外毛细胞,它们分别向大脑发送神经信号并放大耳蜗振动。我们发现音调与刚度和静息机械张力的梯度有关,外毛细胞的梯度更陡,强调了两种毛细胞类型之间的分工。我们证明,向机电转换通道传递力的连接蛋白的张力在 Ca 减少时增加。最后,我们揭示了单个连接蛋白水平的刚度和张力梯度。我们得出结论,连接蛋白复合物的机械梯度可能有助于指定毛细胞的特征频率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b53/6464607/8ac8b97e59f8/elife-43473-fig1.jpg

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