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Kv1 通道调节禽类耳蜗核角状部中峰电位模式和时间可靠性的变化。

Kv1 channels regulate variations in spike patterning and temporal reliability in the avian cochlear nucleus angularis.

机构信息

Department of Biology, University of Maryland, College Park, Maryland.

出版信息

J Neurophysiol. 2022 Jan 1;127(1):116-129. doi: 10.1152/jn.00460.2021. Epub 2021 Nov 24.

Abstract

Diverse physiological phenotypes in a neuronal population can broaden the range of computational capabilities within a brain region. The avian cochlear nucleus angularis (NA) contains a heterogeneous population of neurons whose variation in intrinsic properties results in electrophysiological phenotypes with a range of sensitivities to temporally modulated input. The low-threshold potassium conductance (G) is a key feature of neurons involved in fine temporal structure coding for sound localization, but a role for these channels in intensity or spectrotemporal coding has not been established. To determine whether G affects the phenotypical variation and temporal properties of NA neurons, we applied dendrotoxin-I (DTX), a potent antagonist of Kv1-type potassium channels, to chick brain stem slices in vitro during whole cell patch-clamp recordings. We found a cell-type specific subset of NA neurons that was sensitive to DTX: single-spiking NA neurons were most profoundly affected, as well as a subset of tonic-firing neurons. Both tonic I (phasic onset bursting) and tonic II (delayed firing) neurons showed DTX sensitivity in their firing rate and phenotypical firing pattern. Tonic III neurons were unaffected. Spike time reliability and fluctuation sensitivity measured in DTX-sensitive NA neurons was also reduced with DTX. Finally, DTX reduced spike threshold adaptation in these neurons, suggesting that G contributes to the temporal properties that allow coding of rapid changes in the inputs to NA neurons. These results suggest that variation in Kv1 channel expression may be a key factor in functional diversity in the avian cochlear nucleus. The dendrotoxin-sensitive voltage-gated potassium conductance typically associated with neuronal coincidence detection in the timing pathway for sound localization is demonstrated to affect spiking patterns and temporal input sensitivity in the intensity pathway in the avian auditory brain stem. The Kv1-family channels appear to be present in a subset of cochlear nucleus angularis neurons, regulate spike threshold dynamics underlying high-pass membrane filtering, and contribute to intrinsic firing diversity.

摘要

神经元群体中的不同生理表型可以拓宽大脑区域的计算能力范围。鸟类耳蜗核角状(NA)包含异质的神经元群体,其内在特性的变化导致对时间调制输入具有一系列敏感性的电生理表型。低阈值钾电导(G)是参与声音定位精细时间结构编码的神经元的关键特征,但这些通道在强度或频谱时间编码中的作用尚未确定。为了确定 G 是否会影响 NA 神经元的表型变化和时间特性,我们在体外全细胞膜片钳记录期间,将树突毒素-I(DTX)应用于小鸡脑干切片,这是 Kv1 型钾通道的有效拮抗剂。我们发现 NA 神经元存在一种细胞类型特异性的亚群,对 DTX 敏感:单峰 NA 神经元受影响最大,还有一部分紧张型神经元。紧张 I(相位起始爆发)和紧张 II(延迟发射)神经元在其发射率和表型发射模式中均表现出 DTX 敏感性。紧张 III 神经元不受影响。在 DTX 敏感的 NA 神经元中测量的尖峰时间可靠性和波动敏感性也随 DTX 而降低。最后,DTX 降低了这些神经元的尖峰阈值适应,表明 G 有助于允许对 NA 神经元输入的快速变化进行编码的时间特性。这些结果表明,Kv1 通道表达的变化可能是鸟类耳蜗核功能多样性的关键因素。与声音定位定时途径中的神经元吻合检测相关的树突毒素敏感电压门控钾电导,被证明会影响听觉脑干中强度途径中的尖峰模式和时间输入敏感性。Kv1 家族通道似乎存在于耳蜗核角状神经元的亚群中,调节高通过滤膜的尖峰阈值动力学,并有助于内在放电多样性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea61/8742726/89cc747df104/jn-00460-2021r01.jpg

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