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耳蜗背侧核神经回路中的频谱边缘敏感性。

Spectral edge sensitivity in neural circuits of the dorsal cochlear nucleus.

作者信息

Reiss Lina A J, Young Eric D

机构信息

Center for Hearing Sciences and Department of Biomedical Engineering, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205, USA.

出版信息

J Neurosci. 2005 Apr 6;25(14):3680-91. doi: 10.1523/JNEUROSCI.4963-04.2005.

Abstract

One possible function of the dorsal cochlear nucleus (DCN) is discrimination of head-related transfer functions (HRTFs), spectral cues used for vertical sound localization. Recent psychophysical and physiological studies suggest that steep, rising spectral edges may be the features used to identify HRTFs. Here we showed, using notch noise and noise band stimuli presented over a range of frequencies, that a subclass of DCN type IV neurons responded with a response peak when the rising spectral edge of a notch or band was aligned near best frequency (BF). This edge sensitivity was correlated with weak or inhibited responses to broadband noise and inhibition in receptive fields at frequencies below BF. Some aspects of the inhibition shaping the response peak, namely inhibition to rising edges below BF and to falling edges at BF, could be explained by the properties of type II interneurons with BFs below those of the type IV neurons. However, many type IV neurons also showed inhibitory responses with the rising spectral edge just above BF, and these responses could not be reproduced by current models of DCN circuitry. Therefore, a new component of the DCN circuit is needed to fully explain the responses to rising spectral edges. This shaping of edge sensitivity by inhibition to rising spectral edges both below and above BF suggests the specialization of DCN for spectral edge coding along the tonotopic gradient.

摘要

耳蜗背侧核(DCN)的一个可能功能是辨别头部相关传递函数(HRTF),这是用于垂直声音定位的频谱线索。最近的心理物理学和生理学研究表明,陡峭的、上升的频谱边缘可能是用于识别HRTF的特征。在这里,我们使用在一系列频率上呈现的陷波噪声和噪声带刺激表明,当陷波或频段的上升频谱边缘与最佳频率(BF)附近对齐时,DCN IV型神经元的一个亚类会以反应峰值做出反应。这种边缘敏感性与对宽带噪声的微弱或抑制反应以及BF以下频率处感受野中的抑制作用相关。塑造反应峰值的抑制作用的某些方面,即对BF以下上升边缘和BF处下降边缘的抑制作用,可以通过BF低于IV型神经元的II型中间神经元的特性来解释。然而,许多IV型神经元在BF上方的上升频谱边缘也表现出抑制反应,而当前的DCN电路模型无法再现这些反应。因此,需要DCN电路的一个新组件来充分解释对上升频谱边缘的反应。通过对BF以下和以上上升频谱边缘的抑制作用来塑造边缘敏感性,这表明DCN在沿音调拓扑梯度进行频谱边缘编码方面具有特殊性。

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