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Adaptation and shunting inhibition leads to pyramidal/interneuron gamma with sparse firing of pyramidal cells

机译:适应和分流抑制导致锥体细胞/中间神经元γ的锥体细胞稀疏放电

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Gamma oscillations are a prominent phenomenon related to a number of brain functions. Data show that individual pyramidal neurons can fire at rate below gamma with the population showing clear gamma oscillations and synchrony. In one kind of idealized model of such weak gamma, pyramidal neurons fire in clusters. Here we provide a theory for clustered gamma PING rhythms with strong inhibition and weaker excitation. Our simulations of biophysical models show that the adaptation of pyramidal neurons coupled with their low firing rate leads to cluster formation. A partially analytic study of a canonical model shows that the phase response curves with a near zero flat region, caused by the presence of the slow adaptive current, are the key to the formation of clusters. Furthermore we examine shunting inhibition and show that clusters become robust and generic.
机译:伽马振荡是与许多脑功能有关的突出现象。数据显示,单个锥体神经元可以以低于伽马的速率发射,并且群体显示出清晰的伽马振荡和同步性。在这种弱伽玛的一种理想化模型中,锥体神经元呈簇状发射。在这里,我们为具有强抑制作用和较弱激发作用的聚集γPING节律提供了理论。我们对生物物理模型的仿真表明,锥体神经元的适应性及其低激发速率导致簇形成。对典范模型的部分分析研究表明,由于缓慢的自适应电流的存在,具有接近零平坦区域的相位响应曲线是形成簇的关键。此外,我们研究了分流抑制,并显示出簇变得健壮和通用。

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