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首页> 外文期刊>Journal of Neurophysiology >Inferior colliculus responses to multichannel microstimulation of the ventral cochlear nucleus: implications for auditory brain stem implants.
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Inferior colliculus responses to multichannel microstimulation of the ventral cochlear nucleus: implications for auditory brain stem implants.

机译:下丘对腹侧耳蜗核多通道微刺激的反应:对听觉脑干植入物的影响。

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Multichannel techniques were used to assess the frequency specificity of activation in the central nucleus of the inferior colliculus (CIC) produced by electrical stimulation of localized regions within the ventral cochlear nucleus (VCN). Data were recorded in response to pure tones from 141 and 193 multiunit clusters in the rat VCN and the CIC, respectively. Of 141 VCN sites, 126 were individually stimulated while recording responses in the CIC. A variety of CIC response types were seen with an increase in both electrical and acoustic stimulation levels. The majority of sites exhibited monotonic rate-level types acoustically, whereas spike rate saturation was achieved predominantly with electrical stimulation. In 20.6% of the 364 characteristic frequency aligned VCN-CIC pairs, the CIC sites did not respond to stimulation. In 26% of the 193 CIC sites, a high correlation was observed between acoustic tuning and electrical tuning obtained through VCN stimulation. A high degree of frequency specificity was found in 58% of the 118 lowest threshold VCN-CIC pairs. This was dependent on electrode placement within the VCN because a higher degree of frequency specificity was achieved with stimulation of medial, central, and posterolateral VCN regions than more anterolateral regions. Broadness of acoustic tuning in the CIC played a role in frequency-specific activation. Narrowly tuned CIC sites showed the lowest degree of frequency specificity on stimulation of the anterolateral VCN regions. These data provide significant implications for auditory brain stem implant electrode placement, current localization, power requirements, and facilitation of information transfer to higher brain centers.
机译:多通道技术用于评估通过刺激腹侧耳蜗核(VCN)内局部区域产生的下丘脑(CIC)中央核的激活频率特异性。分别响应大鼠VCN和CIC中141个和193个多单元簇的纯音,记录了数据。在141个VCN站点中,在CIC中记录响应的同时分别刺激了126个站点。随着电刺激和声刺激水平的增加,可以看到多种CIC反应类型。大多数位置在声学上表现出单调的速率水平类型,而峰值速率的饱和主要通过电刺激实现。在364个特征频率对齐的VCN-CIC对中,有20.6%的CIC位点对刺激没有反应。在193个CIC站点中,有26%的站点通过VCN刺激获得了声学调谐和电调谐之间的高度相关性。在118个最低阈值VCN-CIC对中的58%中发现了高度的频率特异性。这取决于VCN内的电极位置,因为刺激内侧,中央和后外侧VCN区域所获得的频率特异性程度要高于更多的外侧区域。 CIC中声学调谐的广泛性在特定于频率的激活中起作用。狭窄调谐的CIC部位在刺激前外侧VCN区域时显示出最低程度的频率特异性。这些数据对听觉脑干植入电极的放置,当前的位置,功率要求以及信息向更高的大脑中心的传递的促进具有重要意义。

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