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Frequency-Tuned Cerebellar Channels and Burst-Induced LTD Lead to the Cancellation of Redundant Sensory Inputs

机译:调频小脑通道和爆发诱导的LTD导致冗余的感觉输入消除

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摘要

For optimal sensory processing, neural circuits must extract novel, unpredictable signals from the redundant sensory input in which they are embedded, but the detailed cellular and network mechanisms that implement such selective cancellation are presently unknown. Using a combination of modeling and experiment, we characterize in detail a cerebellar circuit in weakly electric fish, showing how it can carry out this computation. We use a model incorporating the wide range of experimentally estimated parallel fiber feedback delays and a burst-induced LTD rule derived from in vitro experiments to explain the precise cancellation of redundant signals observed in vivo. Our model demonstrates how the backpropagation-dependent burst dynamics adjusts the temporal pairing width of the plasticity mechanism to precisely match the frequency of the redundant signal. The model also makes the prediction that this cerebellar feedback pathway must be composed of frequency-tuned channels; this prediction is subsequently verified in vivo, highlighting a novel and general capability of cerebellar circuitry.
机译:为了获得最佳的感官处理,神经电路必须从嵌入它们的冗余感官输入中提取新颖的,不可预测的信号,但是目前尚不清楚实现这种选择性消除的详细细胞和网络机制。通过建模和实验相结合,我们详细描述了弱电鱼中的小脑电路,并说明了该电路如何执行此计算。我们使用一个模型,该模型结合了广泛的实验估计的并行光纤反馈延迟和源自体外实验的突发诱导LTD规则,以解释体内观察到的冗余信号的精确消除。我们的模型演示了反向传播相关的猝发动力学如何调整可塑性机制的时间配对宽度,以精确匹配冗余信号的频率。该模型还预测该小脑反馈路径必须由频率调谐的通道组成。该预测随后在体内得到证实,突出了小脑回路的新颖和通用功能。

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