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Longitudinal spread of mechanical excitation through tectorial membrane traveling waves

机译:透过膜的行波传播机械激发的纵向分布

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摘要

The mammalian inner ear separates sounds by their frequency content, and this separation underlies important properties of human hearing, including our ability to understand speech in noisy environments. Studies of genetic disorders of hearing have demonstrated a link between frequency selectivity and wave properties of the tectorial membrane (TM). To understand these wave properties better, we developed chemical manipulations that systematically and reversibly alter TM stiffness and viscosity. Using microfabricated shear probes, we show that (i) reducing pH reduces TM stiffness with little change in TM viscosity and (ii) adding PEG increases TM viscosity with little change in TM stiffness. By applying these manipulations in measurements of TM waves, we show that TM wave speed is determined primarily by stiffness at low frequencies and by viscosity at high frequencies. Both TM viscosity and stiffness affect the longitudinal spread of mechanical excitation through the TM over a broad range of frequencies. Increasing TM viscosity or decreasing stiffness reduces longitudinal spread of mechanical excitation, thereby coupling a smaller range of best frequencies and sharpening tuning. In contrast, increasing viscous loss or decreasing stiffness would tend to broaden tuning in resonance-based TM models. Thus, TM wave and resonance mechanisms are fundamentally different in the way they control frequency selectivity.
机译:哺乳动物的内耳通过声音的频率成分来分离声音,这种分离是人类听力的重要属性的基础,包括我们在嘈杂环境中理解语音的能力。听力遗传障碍的研究表明,频率选择性与盖膜(TM)的波特性之间存在联系。为了更好地理解这些波动特性,我们开发了化学方法,可系统地和可逆地改变TM的刚度和粘度。使用微细剪切探头,我们发现(i)降低pH值可降低TM硬度,而TM粘度变化不大;(ii)添加PEG可增加TM粘度,而TM硬度变化不大。通过在TM波的测量中应用这些操作,我们表明TM波的速度主要取决于低频时的刚度和高频时的粘度。 TM粘度和刚度都会影响在很宽的频率范围内通过TM的机械激励的纵向分布。 TM粘度的增加或刚度的减小会减小机械激励的纵向分布,从而耦合较小范围的最佳频率并锐化调谐。相反,在基于共振的TM模型中,增加的粘性损失或降低的刚度往往会扩大调节范围。因此,TM波和共振机制在控制频率选择性的方式上根本不同。

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