首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Noisy Juxtacellular Stimulation In Vivo Leads to Reliable Spiking and Reveals High-Frequency Coding in Single Neurons
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Noisy Juxtacellular Stimulation In Vivo Leads to Reliable Spiking and Reveals High-Frequency Coding in Single Neurons

机译:体内嘈杂的邻近细胞刺激导致可靠的突触,并揭示单个神经元的高频编码。

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摘要

Single cells in the motor and somatosensory cortex of rats were stimulated in vivo with broadband fluctuating currents applied juxtacellularly. Unlike the DC current steps used previously, fluctuating stimulation currents reliably evoked spike trains with precise timing of individual spikes. Fluctuating currents resulted in strong cellular responses at stimulation frequencies beyond the inverse membrane time constant and the mean firing rate of the neuron. Neuronal firing was associated with high rates of information transmission, even for the high-frequency components of the stimulus. Such response characteristics were also revealed in additional experiments with sinusoidal juxtacellular stimulation. For selected cells, we could reproduce these statistics with compartmental models of varying complexity. We also developed a method to generate Gaussian stimuli that evoke spike trains with prescribed spike times (under the constraint of a certain rate and coefficient of variation) and exemplify its ability to achieve precise and reliable spiking in cortical neurons in vivo. Our results demonstrate a novel method for precise control of spike timing by juxtacellular stimulation, confirm and extend earlier conclusions from ex vivo work about the capacity of cortical neurons to generate precise discharges, and contribute to the understanding of the biophysics of information transfer of single neurons in vivo at high frequencies.
机译:在大鼠的运动皮层和体感皮层中的单细胞通过在细胞附近施加的宽带波动电流在体内被刺激。与以前使用的直流电流阶跃不同,波动的刺激电流可靠地诱发了尖峰列,并具有各个尖峰的精确定时。电流波动导致刺激细胞的强烈细胞反应超过膜时间常数倒数和神经元的平均放电速率。神经元放电与高信息传递率相关,即使是刺激的高频成分也是如此。这种反应特征在正弦近细胞刺激的其他实验中也得到了揭示。对于选定的单元格,我们可以使用具有不同复杂性的间隔模型来重现这些统计信息。我们还开发了一种生成高斯刺激的方法,该方法可以在规定的尖峰时间(在一定速率和变异系数的约束下)唤起尖峰序列,并举例说明其在体内皮层神经元中实现精确可靠的尖峰的能力。我们的结果证明了一种新的方法,该方法可通过近细胞刺激来精确控制穗时序,证实并扩展了有关皮层神经元产生精确放电的能力的离体研究的早期结论,并有助于理解单个神经元信息传递的生物物理学。体内高频率。

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