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Colloquium Paper: Linear and nonlinear pathways of spectral information transmission in the cochlear nucleus

机译:专题讨论会:光谱信息的线性和非线性途径 在耳蜗核中传播

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摘要

At the level of the cochlear nucleus (CN), the auditory pathway divides into several parallel circuits, each of which provides a different representation of the acoustic signal. Here, the representation of the power spectrum of an acoustic signal is analyzed for two CN principal cells—chopper neurons of the ventral CN and type IV neurons of the dorsal CN. The analysis is based on a weighting function model that relates the discharge rate of a neuron to first- and second-order transformations of the power spectrum. In chopper neurons, the transformation of spectral level into rate is a linear (i.e., first-order) or nearly linear function. This transformation is a predominantly excitatory process involving multiple frequency components, centered in a narrow frequency range about best frequency, that usually are processed independently of each other. In contrast, type IV neurons encode spectral information linearly only near threshold. At higher stimulus levels, these neurons are strongly inhibited by spectral notches, a behavior that cannot be explained by level transformations of first- or second-order. Type IV weighting functions reveal complex excitatory and inhibitory interactions that involve frequency components spanning a wider range than that seen in choppers. These findings suggest that chopper and type IV neurons form parallel pathways of spectral information transmission that are governed by two different mechanisms. Although choppers use a predominantly linear mechanism to transmit tonotopic representations of spectra, type IV neurons use highly nonlinear processes to signal the presence of wide-band spectral features.
机译:在耳蜗核(CN)的水平上,听觉通路分为几个并行回路,每个回路提供不同的声音信号表示。在此,分析了两个CN主细胞(腹侧CN的斩波神经元和背侧CN的IV型神经元)的声信号功率谱表示。该分析基于加权函数模型,该模型将神经元的放电速率与功率谱的一阶和二阶变换相关联。在斩波神经元中,频谱水平到速率的转换是线性(即一阶)或接近线性的函数。这种转换是一个主要的激励过程,涉及多个频率分量,这些频率分量围绕最佳频率在一个狭窄的频率范围内,通常彼此独立地进行处理。相反,IV型神经元仅在阈值附近线性编码光谱信息。在较高的刺激水平下,这些神经元会受到频谱陷波的强烈抑制,这种行为无法通过一阶或二阶的电平转换来解释。 IV类加权 功能揭示了复杂的兴奋性和抑制性相互作用 涉及的频率分量比 菜刀。这些发现表明,斩波器和IV型神经元形成了 光谱信息传输的并行路径是 由两种不同的机制控制。尽管菜刀使用 主要线性机制来传递Tontopic表示的 频谱,IV型神经元使用高度非线性的过程来发出信号 宽带频谱特征的存在。

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