Hair cells in the cochlea must tune resonant modes to the edge of instability without destabilizing collective modes.

ArXiv Pub Date : 2024-12-18
Asheesh S Momi, Michael C Abbott, Julian Rubinfien, Benjamin B Machta, Isabella R Graf
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Abstract

Sound produces surface waves along the cochlea's basilar membrane. To achieve the ear's astonishing frequency resolution and sensitivity to faint sounds, dissipation in the cochlea must be canceled via active processes in hair cells, effectively bringing the cochlea to the edge of instability. But how can the cochlea be globally tuned to the edge of instability with only local feedback? To address this question, we use a discretized version of a standard model of basilar membrane dynamics, but with an explicit contribution from active processes in hair cells. Surprisingly, we find the basilar membrane supports two qualitatively distinct sets of modes: a continuum of localized modes and a small number of collective extended modes. Localized modes sharply peak at their resonant position and are largely uncoupled. As a result, they can be amplified almost independently from each other by local hair cells via feedback reminiscent of self-organized criticality. However, this amplification can destabilize the collective extended modes; avoiding such instabilities places limits on possible molecular mechanisms for active feedback in hair cells. Our work illuminates how and under what conditions individual hair cells can collectively create a critical cochlea.

耳蜗中的毛细胞必须将共振模式调整到不稳定的边缘,而不破坏集体模式的稳定。
声音会沿着耳蜗基底膜产生表面波。为了实现耳朵惊人的频率分辨率和对微弱声音的灵敏度,耳蜗中的耗散必须通过毛细胞的活跃过程来抵消,从而有效地将耳蜗调到不稳定的边缘。但是,耳蜗如何能在只有局部反馈的情况下全局调谐到不稳定边缘呢?为了解决这个问题,我们使用了基底膜动力学标准模型的离散化版本,但明确加入了毛细胞的主动过程。令人惊讶的是,我们发现基底膜支持两组性质截然不同的模式:连续的局部模式和少量的集体扩展模式。局部模态在其共振位置达到尖锐峰值,并且基本上不耦合。因此,局部毛细胞可以通过令人联想到自组织临界状态的反馈,几乎独立地对它们进行放大。然而,这种放大会破坏集体扩展模式的稳定性;避免这种不稳定性会限制毛细胞中可能存在的主动反馈分子机制。我们的研究揭示了单个毛细胞如何以及在什么条件下可以集体创造临界耳蜗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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