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Peak I of the human auditory brainstem response results from the somatic regions of type I spiral ganglion cells: Evidence from computer modeling

机译:人类听觉脑干反应的峰I来自I型螺旋神经节细胞的体细胞区域:计算机建模的证据

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摘要

Early neural responses to acoustic signals can be electrically recorded as a series of waves, termed the auditory brainstem response (ABR). The latencies of the ABR waves are important for clinical and neurophysiological evaluations. Using a biophysical model of transmembrane currents along spiral ganglion cells, we show that in human (i) the non-myelinated somatic regions of type I cells, which innervate inner hair cells, predominantly contribute to peak I, (ii) the supra-strong postsynaptic stimulating current (400 pA) and transmembrane currents of the myelinated peripheral axons of type I cells are an order smaller; such postsynaptic currents correspond to the short latencies of a small recordable ABR peak I’, (iii) the ABR signal involvement of the central axon of bipolar type I cells is more effective than their peripheral counterpart as the doubled diameter causes larger transmembrane currents and a larger spike dipole-length, (iv) non-myelinated fibers of type II cells which innervate the outer hair cells generate essentially larger transmembrane currents but their ABR contribution is small because of the small ratio type II/type I cells, low firing rates and a short dipole length of spikes propagating slowly in non-myelinated fibers. Using a finite element model of a simplified head, peaks In and II (where In is the negative peak after peak I) are found to be stationary potentials when volleys of spikes cross the external electrical conductivity barrier at the bone&dura/CSF and at the CSF/brainstem interface whereas peaks I’ and I may be generated by strong local transmembrane currents as postsynaptic events at the distal ending and the soma region of type I cells, respectively. All simulated human inter-peak times (I–I′, II–I, In–I) are close to published data.
机译:早期对声信号的神经反应可以电记录为一系列波,称为听性脑干反应(ABR)。 ABR波的潜伏期对于临床和神经生理学评估非常重要。使用跨螺旋神经节细胞跨膜电流的生物物理模型,我们表明在人类(i)支配内部毛细胞的I型细胞的非髓鞘体细胞区域主要促成峰值I,(ii)超强突触后刺激电流(400pA)和I型细胞髓鞘外周轴突的跨膜电流小一个数量级;这样的突触后电流对应于一个小的可记录的ABR峰I'的短时延,(iii)双极性I型细胞的中央轴突的ABR信号参与比其外周对应物更有效,因为直径加倍会引起更大的跨膜电流和(iv)支配外毛细胞的II型细胞的非尖峰状偶极长纤维会产生实质上更大的跨膜电流,但由于II型/ I型细胞的比例小,激发速率低和在非髓鞘纤维中缓慢传播的尖峰的短偶极子长度。使用简化头部的有限元模型,当尖峰跨越骨和硬脑膜/ CSF以及CSF处的外部电导屏障时,发现In和II峰(其中In是峰I之后的负峰)是稳定电位/ brainstem界面,而峰I'和I可能是由强局部跨膜电流分别作为I型细胞远端和体细胞区域的突触后事件而产生的。所有模拟的人类峰间时间(I–I',II–I,In–I)都接近已发布的数据。

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