Cai H, Carney L H, Colburn H S
Department of Biomedical Engineering, Boston University, Massachusetts 02215, USA.
J Acoust Soc Am. 1998 Jan;103(1):475-93. doi: 10.1121/1.421100.
A model was developed that simulates the binaural response properties of low-frequency inferior colliculus (IC) neurons in response to several types of stimuli. The model incorporates existing models for auditory-nerve fibers, bushy cells in the cochlear nucleus, and cells in medial superior olive (MSO). The IC model neuron receives two inputs, one excitatory from an ipsilateral MSO model cell and one inhibitory from a contralateral MSO model cell. The membrane potential of the IC model neuron (and the other model neurons) is described by Hodgkin-Huxley type equations. Responses of IC neurons are simulated for pure-tone stimuli, binaural beat stimuli, interaural phase-modulated tones, single binaural clicks, and pairs of binaural clicks. The simulation results show most of the observed properties of IC discharge patterns, including the bimodal and unimodal interaural time difference (ITD) functions, sensitivities to direction and rate of change of ITD, ITD-dependent echo suppression, and early and late inhibitions in response to clicks. This study demonstrates that these response properties can be generated by a simple model incorporating ITD-dependent excitation and inhibition from binaural neurons.
开发了一个模型,该模型可模拟低频下丘(IC)神经元对几种类型刺激的双耳反应特性。该模型整合了针对听神经纤维、耳蜗核中的浓密细胞以及内侧上橄榄核(MSO)中的细胞的现有模型。IC模型神经元接收两个输入,一个来自同侧MSO模型细胞的兴奋性输入,一个来自对侧MSO模型细胞的抑制性输入。IC模型神经元(以及其他模型神经元)的膜电位由霍奇金-赫胥黎类型方程描述。针对纯音刺激、双耳节拍刺激、双耳相位调制音、单个双耳点击以及双耳点击对,模拟了IC神经元的反应。模拟结果显示了IC放电模式的大多数观察到的特性,包括双峰和单峰双耳时间差(ITD)函数、对ITD方向和变化率的敏感性、ITD依赖的回声抑制以及对点击的早期和晚期抑制。这项研究表明,这些反应特性可以由一个简单的模型产生,该模型包含来自双耳神经元的ITD依赖的兴奋和抑制。