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A Role for the Otoliths in the Mechanics of Cochlear Homeostasis

机译:耳蜗稳态机械障碍物的作用

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The role and function of the otolith organs might well hold continuing interest for those studying cochlear mechanics. The otoliths, utricle, saccule (and lagena in birds) are intriguing, not just because of their role in the evolutionary origins of inner ear function, but because, in mammals, their membranous structures are contained within the bony vestibule, directly in line with the action of the stapes[1]. Intriguingly they display highly-organised morphology[2]; [3]) and offer an apparently redundant low-frequency channel[4]. This duplication is puzzling considering cochlear low-frequency reception is generally less vulnerable than high. Unexplained is how pressures within the labyrinth are regulated[5]. A hypothesis is developed that the saccule's low-frequency pressure sensitivity may represent another function entirely, connected with the mechanics of cochlear homeostasis. A mathematical model is presented to illustrate how the otoliths may have two orthogonal modes, sensing otolith shear in differential mode, but sensing ambient pressure in common mode.
机译:耳石器官的作用和功能很可能继续持有那些学习耳蜗力学的兴趣。耳石,椭圆囊,球囊(和lagena鸟类)正密谋,不只是因为他们的内耳功能的进化起源的作用,但因为在哺乳动物中,其膜结构与包含骨前庭内,直接在线路镫骨[1]的动作。有趣的是它们显示高度有组织的形态[2]; [3]),并提供一个明显的冗余低频信道[4]。这种重复是令人费解考虑耳蜗低频接收通常比高那么脆弱。原因不明的是如何迷宫内的压力进行调节[5]。一个假设是开发了球囊的低频压力灵敏度可表示完全另一种功能,人工耳蜗内稳态的力学连接。的数学模型被呈现来说明如何耳石可以具有两个正交模式,感测耳石剪切在差分模式下,但感测共模环境压力。

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