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Chemical and electrical synapses perform complementary roles in the synchronization of interneuronal networks

机译:化学和电气突触在神经元间网络的同步中起互补作用

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Electrical and chemical synapses exist within the same networks of inhibitory cells, and each kind of synapse is known to be able to foster synchrony among oscillating neurons. Using numerical and analytical techniques, we show here that the electrical and inhibitory coupling play different roles in the synchronization of rhythms in inhibitory networks. The parameter range chosen is motivated by gamma rhythms, in which the gamma-aminobutyric acid type A (GABAA)-mediated inhibition is relatively strong. Under this condition, addition of a small electrical conductance can increase the degree of synchronization far more than a much larger increase in inhibitory conductance. The inhibitory synapses act to eliminate the effects of different initial conditions, whereas the electrical synapses mitigate suppression of firing due to heterogeneity in the network. Analytical techniques include tracking trajectories of coupled cells between spikes; the analysis shows that, in networks in which the degree of excitability is heterogeneous, inhibition can increase the dispersion of the voltages between spikes, whereas electrical coupling reduces such dispersion.
机译:电气和化学突触存在于相同的抑制细胞网络中,并且已知每种突触都能够促进振荡神经元之间的同步。使用数值和分析技术,我们在这里显示出电和抑制耦合在抑制网络的节奏同步中扮演不同的角色。所选参数范围受伽玛节律驱动,其中伽玛-氨基丁酸A型(GABAA)介导的抑制作用相对较强。在这种情况下,添加较小的电导率可以大大提高同步程度,而与抑制电导率的增加幅度相比要大得多。抑制性突触的作用是消除不同初始条件的影响,而电突触可减轻由于网络异质性引起的放电抑制。分析技术包括跟踪尖峰之间耦合细胞的轨迹;分析表明,在励磁程度不同的网络中,抑制会增加尖峰之间电压的离散,而电耦合会减小这种离散。

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