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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Longitudinally propagating traveling waves of the mammalian tectorial membrane
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Longitudinally propagating traveling waves of the mammalian tectorial membrane

机译:纵向传播的哺乳动物保护膜的行波

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摘要

Sound-evoked vibrations transmitted into the mammalian cochlea produce traveling waves that provide the mechanical tuning necessary for spectral decomposition of sound. These traveling waves of motion that have been observed to propagate longitudinally along the basilar membrane (BM) ultimately stimulate the mechano-sensory receptors. The tectorial membrane (TM) plays a key role in this process, but its mechanical function remains unclear. Here we show that the TM supports traveling waves that are an intrinsic feature of its visco-elastic structure. Radial forces applied at audio frequencies (2-20 kHz) to isolated TM segments generate longitudinally propagating waves on the TM with velocities similar to those of the BM traveling wave near its best frequency place. We compute the dynamic shear storage modulus and shear viscosity of the TM from the propagation velocity of the waves and show that segments of the TM from the basal turn are stiffer than apical segments are. Analysis of loading effects of hair bundle stiffness, the limbal attachment of the TM, and viscous damping in the subtectorial space suggests that TM traveling waves can occur in vivo. Our results show the presence of a traveling wave mechanism through the TM that can functionally couple a significant longitudinal extent of the cochlea and may interact with the BM wave to greatly enhance cochlear sensitivity and tuning.
机译:传给哺乳动物耳蜗的声诱发振动产生行波,行波为声音的频谱分解提供必要的机械调谐。已经观察到沿基底膜(BM)纵向传播的这些行进的运动波最终会刺激机械感觉受体。盖膜(TM)在此过程中起关键作用,但其机械功能仍不清楚。在这里,我们表明TM支持行波,这是其粘弹性结构的固有特征。以音频频率(2-20 kHz)施加到孤立的TM段的径向力在TM上生成纵向传播的波,其速度类似于BM行波在其最佳频率位置附近的速度。我们根据波浪的传播速度计算了TM的动态剪切储能模量和剪切粘度,结果表明,来自基弯的TM片段比顶部更坚硬。分析发束的刚度,TM的角膜缘附着以及在亚皮下空间的粘性阻尼的载荷效应表明,TM的行波可以在体内发生。我们的结果表明存在通过TM的行波机制,该行波机制可以在功能上耦合很大的耳蜗纵向范围,并且可能与BM波相互作用,从而大大增强了耳蜗的灵敏度和音调。

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