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人类听觉脑干对宽带刺激反应的功能建模

Functional modeling of the human auditory brainstem response to broadband stimulation.

作者信息

Verhulst Sarah, Bharadwaj Hari M, Mehraei Golbarg, Shera Christopher A, Shinn-Cunningham Barbara G

机构信息

Cluster of Excellence "Hearing4all" and Medizinische Physik, Department of Medical Physics and Acoustics, Oldenburg University, Carl-von-Ossietzky Strasse 9-11, 26129 Oldenburg, Germany.

Center of Computational Neuroscience and Neural Technology, Boston University, 677 Beacon Street, Boston, Massachusetts 02215, USA.

出版信息

J Acoust Soc Am. 2015 Sep;138(3):1637-59. doi: 10.1121/1.4928305.

Abstract

Population responses such as the auditory brainstem response (ABR) are commonly used for hearing screening, but the relationship between single-unit physiology and scalp-recorded population responses are not well understood. Computational models that integrate physiologically realistic models of single-unit auditory-nerve (AN), cochlear nucleus (CN) and inferior colliculus (IC) cells with models of broadband peripheral excitation can be used to simulate ABRs and thereby link detailed knowledge of animal physiology to human applications. Existing functional ABR models fail to capture the empirically observed 1.2-2 ms ABR wave-V latency-vs-intensity decrease that is thought to arise from level-dependent changes in cochlear excitation and firing synchrony across different tonotopic sections. This paper proposes an approach where level-dependent cochlear excitation patterns, which reflect human cochlear filter tuning parameters, drive AN fibers to yield realistic level-dependent properties of the ABR wave-V. The number of free model parameters is minimal, producing a model in which various sources of hearing-impairment can easily be simulated on an individualized and frequency-dependent basis. The model fits latency-vs-intensity functions observed in human ABRs and otoacoustic emissions while maintaining rate-level and threshold characteristics of single-unit AN fibers. The simulations help to reveal which tonotopic regions dominate ABR waveform peaks at different stimulus intensities.

摘要

诸如听觉脑干反应(ABR)之类的群体反应通常用于听力筛查,但单单元生理学与头皮记录的群体反应之间的关系尚未得到很好的理解。将单单元听神经(AN)、耳蜗核(CN)和下丘(IC)细胞的生理现实模型与宽带外周兴奋模型相结合的计算模型,可用于模拟ABR,从而将动物生理学的详细知识与人类应用联系起来。现有的功能性ABR模型未能捕捉到经验观察到的1.2 - 2毫秒ABR波V潜伏期与强度的下降,这种下降被认为是由不同音调区域的耳蜗兴奋和放电同步的水平依赖性变化引起的。本文提出了一种方法,其中反映人类耳蜗滤波器调谐参数的水平依赖性耳蜗兴奋模式驱动听神经纤维,以产生ABR波V现实的水平依赖性特性。自由模型参数的数量最少,产生了一个模型,在该模型中可以轻松地在个体和频率依赖的基础上模拟各种听力损失来源。该模型拟合了在人类ABR和耳声发射中观察到的潜伏期与强度函数,同时保持了单单元听神经纤维的速率 - 水平和阈值特征。模拟有助于揭示在不同刺激强度下哪些音调区域主导ABR波形峰值。

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