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Propagating Waves Can Explain Irregular Neural Dynamics

机译:传播的波可以解释不规则的神经动力学

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摘要

Cortical neurons in vivo fire quite irregularly. Previous studies about the origin of such irregular neural dynamics have given rise to two major models: a balanced excitation and inhibition model, and a model of highly synchronized synaptic inputs. To elucidate the network mechanisms underlying synchronized synaptic inputs and account for irregular neural dynamics, we investigate a spatially extended, conductance-based spiking neural network model. We show that propagating wave patterns with complex dynamics emerge from the network model. These waves sweep past neurons, to which they provide highly synchronized synaptic inputs. On the other hand, these patterns only emerge from the network with balanced excitation and inhibition; our model therefore reconciles the two major models of irregular neural dynamics. We further demonstrate that the collective dynamics of propagating wave patterns provides a mechanistic explanation for a range of irregular neural dynamics, including the variability of spike timing, slow firing rate fluctuations, and correlated membrane potential fluctuations. In addition, in our model, the distributions of synaptic conductance and membrane potential are non-Gaussian, consistent with recent experimental data obtained using whole-cell recordings. Our work therefore relates the propagating waves that have been widely observed in the brain to irregular neural dynamics. These results demonstrate that neural firing activity, although appearing highly disordered at the single-neuron level, can form dynamical coherent structures, such as propagating waves at the population level.
机译:体内的皮质神经元非常不规则地发射。先前关于这种不规则神经动力学起源的研究产生了两个主要模型:平衡的激发和抑制模型,以及高度同步的突触输入模型。为了阐明同步突触输入基础的网络机制并解释不规则的神经动力学,我们研究了空间扩展,基于电导的尖峰神经网络模型。我们表明,具有复杂动力学的传播波型从网络模型中出现。这些波扫过神经元,向它们提供高度同步的突触输入。另一方面,这些模式仅在具有平衡的激发和抑制的情况下从网络中出现。因此,我们的模型调和了不规则神经动力学的两个主要模型。我们进一步证明,传播波型的集体动力学为一系列不规则的神经动力学提供了机械解释,包括尖峰时间的变化,缓慢的发射速率波动以及相关的膜电位波动。此外,在我们的模型中,突触电导和膜电位的分布是非高斯分布的,与使用全细胞记录获得的最新实验数据一致。因此,我们的工作将在大脑中广泛观察到的传播波与不规则的神经动力学联系起来。这些结果表明,神经放电活动虽然在单神经元水平上表现出高度无序性,但可以形成动态的相干结构,例如在种群水平上传播的波。

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