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首页> 外文期刊>Computational intelligence and neuroscience >Modeling Spike-Train Processing in the Cerebellum Granular Layerand Changes in Plasticity Reveal Single Neuron Effects in NeuralEnsembles
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Modeling Spike-Train Processing in the Cerebellum Granular Layerand Changes in Plasticity Reveal Single Neuron Effects in NeuralEnsembles

机译:小脑颗粒层中的穗状花序加工模型和可塑性的变化揭示神经集成体中的单个神经元效应。

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The cerebellum input stage has been known to perform combinatorial operations on input signals. In this paper, two types of mathematical models were used to reproduce the role of feed-forward inhibition and computation in the granular layer microcircuitry to investigate spike train processing. A simple spiking model and a biophysically-detailed model of the network were used to study signal recoding in the granular layer and to test observations like center-surround organization and time-window hypothesis in addition to effects of induced plasticity. Simulations suggest that simple neuron models may be used to abstract timing phenomenon in large networks, however detailed models were needed to reconstruct population coding via evoked local field potentials (LFP) and for simulating changes in synaptic plasticity. Our results also indicated that spatio-temporal code of the granular network is mainly controlled by the feed-forward inhibition from the Golgi cell synapses. Spike amplitude and total number of spikes were modulated by LTP and LTD. Reconstructing granular layer evoked-LFP suggests that granular layer propagates the nonlinearities of individual neurons. Simulations indicate that granular layer network operates a robust population code for a wide range of intervals, controlled by the Golgi cell inhibition and is regulated by the post-synaptic excitability.
机译:已知小脑输入级对输入信号执行组合操作。在本文中,使用两种类型的数学模型来重现前馈抑制和计算在颗粒层微电路中的作用,以研究尖峰处理。该网络的简单尖峰模型和生物物理详细模型用于研究颗粒层中的信号记录,并测试除中心可塑性外还进行的中心环绕组织和时间窗口假设等观察。仿真表明,简单的神经元模型可用于抽象大型网络中的计时现象,但是需要详细的模型来通过诱发的局部场电位(LFP)重建种群编码并模拟突触可塑性的变化。我们的结果还表明,粒状网络的时空编码主要受高尔基细胞突触的前馈抑制作用控制。峰值幅度和峰值总数由LTP和LTD调制。重建粒状层诱发的LFP提示粒状层传播单个神经元的非线性。模拟表明,颗粒层网络在很宽的区间内运行强大的种群代码,受高尔基体细胞抑制作用控制,并受突触后兴奋性调节。

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