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听觉扭曲:起源与功能。

Auditory distortions: origins and functions.

出版信息

Physiol Rev. 2013 Oct;93(4):1563-619. doi: 10.1152/physrev.00029.2012.

Abstract

To enhance weak sounds while compressing the dynamic intensity range, auditory sensory cells amplify sound-induced vibrations in a nonlinear, intensity-dependent manner. In the course of this process, instantaneous waveform distortion is produced, with two conspicuous kinds of interwoven consequences, the introduction of new sound frequencies absent from the original stimuli, which are audible and detectable in the ear canal as otoacoustic emissions, and the possibility for an interfering sound to suppress the response to a probe tone, thereby enhancing contrast among frequency components. We review how the diverse manifestations of auditory nonlinearity originate in the gating principle of their mechanoelectrical transduction channels; how they depend on the coordinated opening of these ion channels ensured by connecting elements; and their links to the dynamic behavior of auditory sensory cells. This paper also reviews how the complex properties of waves traveling through the cochlea shape the manifestations of auditory nonlinearity. Examination methods based on the detection of distortions open noninvasive windows on the modes of activity of mechanosensitive structures in auditory sensory cells and on the distribution of sites of nonlinearity along the cochlear tonotopic axis, helpful for deciphering cochlear molecular physiology in hearing-impaired animal models. Otoacoustic emissions enable fast tests of peripheral sound processing in patients. The study of auditory distortions also contributes to the understanding of the perception of complex sounds.

摘要

为了在压缩动态强度范围的同时增强弱音,听觉感觉细胞以非线性、强度依赖的方式放大声音引起的振动。在这个过程中,会产生瞬时波形失真,伴随着两种明显交织的后果,即引入原始刺激中不存在的新声音频率,这些频率在耳道中作为耳声发射是可听和可检测的,以及干扰声音抑制探针音响应的可能性,从而增强频率成分之间的对比度。我们回顾了听觉非线性的各种表现形式如何源于其机电转换通道的门控原理;它们如何取决于连接元件确保的这些离子通道的协调打开;以及它们与听觉感觉细胞动态行为的联系。本文还回顾了波在耳蜗中传播的复杂特性如何塑造听觉非线性的表现形式。基于失真检测的检查方法为听觉感觉细胞中机械敏感结构的活动模式以及耳蜗音位轴上非线性位点的分布提供了非侵入性窗口,有助于解析听力受损动物模型中的耳蜗分子生理学。耳声发射使患者能够快速测试外围声音处理。对听觉失真的研究还有助于理解复杂声音的感知。

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