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Responses of neurons in the feline inferior colliculus to modulated electrical stimuli applied on and within the ventral cochlear nucleus; Implications for an advanced auditory brainstem implant

机译:猫下丘脑神经元对腹侧耳蜗核上和内耳调制电刺激的反应;对高级听觉脑干植入的影响

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摘要

Auditory brainstem implants (ABIs) can restore useful hearing to persons with deafness who cannot benefit from cochlear implants. However, the quality of hearing restored by ABIs rarely is comparable to that provided by cochlear implants in persons for whom those are appropriate. In an animal model, we evaluated elements of a prototype of an ABI in which the functions of macroelectrodes on the surface of the dorsal cochlear nucleus would be integrated with the function of multiple penetrating microelectrodes implanted into the ventral cochlear nucleus. The surface electrodes would convey most of the range of loudness percepts while the intranuclear microelectrodes would sharpen and focus pitch percepts. In the present study, stimulating electrodes were implanted chronically on the surface of the animal’s dorsal cochlear nucleus (DCN) and also within their ventral cochlear nucleus (VCN). Recording microelectrodes were implanted into the central nucleus of the inferior colliculus (ICC). The electrical stimuli were sinusoidally modulated stimulus pulse trains applied on the DCN and within the VCN. Temporal encoding of neuronal responses was quantified as vector strength (VS) and as full-cycle rate of neuronal activity in the ICC. VS and full-cycle AP rate were measured for 4 stimulation modes; continuous and transient amplitude modulation of the stimulus pulse trains, each delivered via the macroelectrode on the surface of the DCN and then by the intranuclear penetrating microelectrodes. In the proposed clinical device the functions of the surface and intranuclear microelectrodes could best be integrated if there is minimal variation in the neuronal responses across the range of modulation depth, modulation frequencies, and across the four stimulation modes. In this study VS did vary as much as 34% across modulation frequency and modulation depth within a stimulation mode, and up to 40% between modulation modes. However, these intra- and inter-mode variances differed for different stimulation rates, and at 500 Hz the inter-mode differences in VS and across the range of modulation frequencies and modulation depths was <= 24% and the intra-modal differences were <= 15%. The findings were generally similar for rate encoding of modulation depth, although the depth of transient amplitude modulation delivered by the surface electrode was weakly encoded as full-cycle rate. Overall, our findings support the concept of a clinical ABI that employs surface stimulation and intranuclear microstimulation in an integrated manner.
机译:听觉脑干植入物(ABI)可以为无法从人工耳蜗中受益的耳聋者恢复有用的听力。但是,ABI所能恢复的听力质量几乎无法与适合的人的人工耳蜗所提供的质量相提并论。在动物模型中,我们评估了ABI原型的元素,在该模型中,背侧耳蜗核表面上的大电极功能与植入腹侧耳蜗核中的多个穿透性微电极的功能集成在一起。表面电极将传达响度感知的大部分范围,而核内微电极将锐化并聚焦音调感知。在本研究中,将刺激性电极长期植入到动物的背侧耳蜗核(DCN)的表面以及其腹侧耳蜗核(VCN)内。记录微电极被植入下丘脑(ICC)的中心核。电刺激是应用于DCN和VCN内的正弦调制刺激脉冲序列。神经元反应的时间编码被量化为矢量强度(VS)和ICC中神经元活动的全周期速率。在4种刺激模式下测量VS和全周期AP率;刺激脉冲序列的连续和瞬时幅度调制,每个都通过DCN表面的大电极传递,然后通过核内穿透微电极传递。在所提出的临床装置中,如果在调制深度,调制频率和四种刺激模式的范围内,神经元响应的变化最小,则表面和核内微电极的功能可以得到最佳整合。在这项研究中,在刺激模式下,VS在调制频率和调制深度之间的变化幅度高达34%,而在调制模式之间变化高达40%。但是,这些模内和模间差异对于不同的刺激速率是不同的,并且在500 Hz时,VS内以及整个调制频率和调制深度范围内的模间差异<= 24%,而模内差异为< = 15%。对于调制深度的速率编码,发现通常是相似的,尽管表面电极传递的瞬变幅度调制深度被弱编码为全周期速率。总的来说,我们的发现支持了临床ABI的概念,该ABI以整合的方式采用表面刺激和核内微刺激。

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