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Robust transmission of rate coding in the inhibitory Purkinje cell to cerebellar nuclei pathway in awake mice

机译:清醒小鼠中抑制性浦肯野细胞中速率编码的稳健传递至小脑核途径

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摘要

Neural coding through inhibitory projection pathways remains poorly understood. We analyze the transmission properties of the Purkinje cell (PC) to cerebellar nucleus (CN) pathway in a modeling study using a data set recorded in awake mice containing respiratory rate modulation. We find that inhibitory transmission from tonically active PCs can transmit a behavioral rate code with high fidelity. We parameterized the required population code in PC activity and determined that 20% of PC inputs to a full compartmental CN neuron model need to be rate-comodulated for transmission of a rate code. Rate covariance in PC inputs also accounts for the high coefficient of variation in CN spike trains, while the balance between excitation and inhibition determines spike rate and local spike train variability. Overall, our modeling study can fully account for observed spike train properties of cerebellar output in awake mice, and strongly supports rate coding in the cerebellum.
机译:通过抑制性投射途径的神经编码仍然知之甚少。我们在建模研究中使用包含呼吸频率调节的清醒小鼠中记录的数据集分析了浦肯野细胞(PC)到小脑核(CN)通路的传输特性。我们发现,从音调活跃的PC发出的抑制性传输可以以高保真度传输行为速率代码。我们在PC活动中对所需的人口代码进行了参数化,并确定对全间隔CN神经元模型的20%PC输入需要进行速率编码以传输速率代码。 PC输入中的速率协方差也说明了CN峰值序列的高变异系数,而激励和抑制之间的平衡决定了峰值速率和局部峰值序列的可变性。总的来说,我们的模型研究可以完全说明清醒小鼠中小脑输出的峰值运动特性,并强烈支持小脑中的速率编码。

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