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轴突传导延迟塑造了听觉脑干尖峰神经网络模型中空间听觉的精度。

Axonal Conduction Delay Shapes the Precision of the Spatial Hearing in A Spiking Neural Network Model of Auditory Brainstem.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2021 Nov;2021:4238-4241. doi: 10.1109/EMBC46164.2021.9629932.

Abstract

One method by which the mammalian sound localization pathway localizes sound sources is by analyzing the microsecond-level difference between the arrival times of a sound at the two ears. However, how the neural circuits in the auditory brainstem precisely integrate signals from the two ears, and what the underlying mechanisms are, remains to be understood. Recent studies have reported that variations of axon myelination in the auditory brainstem produces various axonal conduction velocities and sophisticated temporal dynamics, which have not been well characterized in most existing models of sound localization circuits. Here, we present a spiking neural network model of the auditory brainstem to investigate how axon myelinations affect the precision of sound localization. Sound waves with different interaural time differences (ITDs) are encoded and used as stimuli, and the axon properties in the network are adjusted, and the corresponding axonal conduction delays are computed with a multi-compartment axon model. Through the simulation, the sensitivity of ITD perception varies with the myelin thickness of axons in the contralateral input pathways to the medial superior olive (MSO). The ITD perception becomes more precise when the contralateral inhibitory input propagates faster than the contralateral excitatory input. These results indicate that axon myelination and contralateral spike timing influence spatial hearing perception.

摘要

哺乳动物通过分析声音到达双耳的微秒级时间差来定位声源。然而,听觉脑干中的神经回路如何精确地整合来自双耳的信号,以及潜在的机制是什么,仍有待理解。最近的研究报告称,听觉脑干中的轴突髓鞘化变化会产生各种轴突传导速度和复杂的时间动态,但在大多数现有的声音定位电路模型中,这些特性尚未得到很好的描述。在这里,我们提出了一个听觉脑干的尖峰神经网络模型,以研究轴突髓鞘化如何影响声音定位的精度。具有不同两耳时间差(ITD)的声波被编码并用作刺激,网络中的轴突特性被调整,并使用多腔轴突模型计算相应的轴突传导延迟。通过模拟,发现中内侧橄榄(MSO)对侧输入通路上的轴突髓鞘厚度变化会影响 ITD 感知的敏感性。当对侧抑制性输入比对侧兴奋性输入传播得更快时,ITD 感知变得更加精确。这些结果表明,轴突髓鞘化和对侧尖峰时间会影响空间听觉感知。

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