首页> 美国卫生研究院文献>Journal of Neurophysiology >Intrinsic firing properties in the avian auditory brain stem allow both integration and encoding of temporally modulated noisy inputs in vitro
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Intrinsic firing properties in the avian auditory brain stem allow both integration and encoding of temporally modulated noisy inputs in vitro

机译:鸟类听觉脑干的内在放电特性允许在体外整合和编码时间调制的噪声输入

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摘要

The intrinsic properties of tonically firing neurons in the cochlear nucleus contribute to representing average sound intensity by favoring synaptic integration across auditory nerve inputs, reducing phase locking to fine temporal acoustic structure and enhancing envelope locking. To determine whether tonically firing neurons of the avian cochlear nucleus angularis (NA) resemble ideal integrators, we investigated their firing responses to noisy current injections during whole cell patch-clamp recordings in brain slices. One subclass of neurons (36% of tonically firing neurons, mainly subtype tonic III) showed no significant changes in firing rate with noise fluctuations, acting like pure integrators. In contrast, many tonically firing neurons (>60%, mainly subtype tonic I or II) showed a robust sensitivity to noisy current fluctuations, increasing their firing rates with increased fluctuation amplitudes. For noise-sensitive tonic neurons, the firing rate vs. average current curves with noise had larger maximal firing rates, lower gains, and wider dynamic ranges compared with FI curves for current steps without noise. All NA neurons showed fluctuation-driven patterning of spikes with a high degree of temporal reliability and millisecond spike time precision. Single-spiking neurons in NA also responded to noisy currents with higher firing rates and reliable spike trains, although less precisely than nucleus magnocellularis neurons. Thus some NA neurons function as integrators by encoding average input levels over wide dynamic ranges regardless of current fluctuations, others detect the degree of coherence in the inputs, and most encode the temporal patterns contained in their inputs with a high degree of precision.
机译:耳蜗核中声调发射神经元的内在特性通过促进跨听觉神经输入的突触整合,将相位锁定减少到精细的时空声学结构并增强包络锁定,有助于代表平均声音强度。为了确定鸟耳蜗神经核(NA)的声调放电神经元是否类似于理想的积分器,我们在脑切片的全细胞膜片钳记录中调查了它们对嘈杂电流注入的放电响应。一个神经元的亚类(36%的声发射神经元,主要是补品III型)显示出发射速率没有明显的变化,且具有噪声波动,就像纯积分器一样。相比之下,许多具有调音作用的神经元(> 60%,主要是亚型补品I或II)对噪声电流波动表现出强大的敏感性,并随着波动幅度的增加而提高了其发射速率。对于噪声敏感的强直神经元,与无噪声电流阶跃的FI曲线相比,有噪声的激发速率与平均电流曲线具有更大的最大激发率,更低的增益和更宽的动态范围。所有NA神经元都显示出波动驱动的尖峰模式,具有高度的时间可靠性和毫秒级的尖峰时间精度。 NA中的单尖峰神经元对噪声电流的响应也具有较高的发射率和可靠的尖峰序列,尽管其精度不如粗细胞神经元核。因此,一些NA神经元通过在宽动态范围内编码平均输入电平而与电流波动无关地起积分器的作用,其他一些神经元则检测输入中的相干程度,并且大多数编码它们的输入中包含的时间模式都具有很高的精度。

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