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我们对耳蜗的了解有多深入?

How well do we understand the cochlea?

作者信息

Nobili R, Mammano F, Ashmore J

机构信息

Dipartimento di Fisica, Università di Padova, Italy.

出版信息

Trends Neurosci. 1998 Apr;21(4):159-67. doi: 10.1016/s0166-2236(97)01192-2.

Abstract

As sensory cells, hair cells within the mammalian inner ear convert sounds into receptor potentials when their projecting stereocilia are deflected. The organ of Corti of the cochlea contains two types of hair cell, inner and outer hair cells, which differ in function. It has been appreciated for over two decades that although inner hair cells act as the primary receptor cell for the auditory system, the outer hair cells can also act as motor cells. Outer hair cells respond to variation in potential, and change length at rates unequalled by other motile cells. The forces generated by outer hair cells are capable of altering the delicate mechanics of the cochlear partition, increasing hearing sensitivity and frequency selectivity. The discovery of such hair-cell motility has modified the view of the cochlea as a simple frequency analyser into one where it is an active non-linear filter that allows only the prominent features of acoustic signals to be transmitted to the acoustic nerve by the inner hair cells. In this view, such frequency selectivity arises through the suppression of adjacent frequencies, a mechanical effect equivalent to lateral inhibition in neural structures. These processes are explained by the interplay between the hydrodynamic interactions among different parts of the cochlear partition and the effective non-linear behaviour of the cell motor.

摘要

作为感觉细胞,哺乳动物内耳中的毛细胞在其伸出的静纤毛发生偏转时,会将声音转化为感受器电位。耳蜗的柯蒂氏器包含两种类型的毛细胞,即内毛细胞和外毛细胞,它们在功能上有所不同。二十多年来人们已经认识到,尽管内毛细胞是听觉系统的主要感受器细胞,但外毛细胞也可以充当运动细胞。外毛细胞对电位变化做出反应,并以其他运动细胞所无法比拟的速度改变长度。外毛细胞产生的力能够改变耳蜗隔板的精细力学结构,提高听力灵敏度和频率选择性。这种毛细胞运动性的发现,已将耳蜗作为一个简单频率分析仪的观点,转变为一种认为它是一个主动非线性滤波器的观点,即只有声音信号的突出特征才能由内毛细胞传递到听神经。按照这种观点,这种频率选择性是通过抑制相邻频率产生的,这是一种类似于神经结构中侧向抑制的机械效应。这些过程可以通过耳蜗隔板不同部分之间的流体动力相互作用与细胞运动的有效非线性行为之间的相互作用来解释。

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