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The Impact of Structural Heterogeneity on Excitation-Inhibition Balance in Cortical Networks

机译:皮质网络中结构异质性对兴奋抑制平衡的影响

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Models of cortical dynamics often assume a homogeneous connectivity structure. However, we show that heterogeneous input connectivity can prevent the dynamic balance between excitation and inhibition, a hallmark of cortical dynamics, and yield unrealistically sparse and temporally regular firing. Anatomically based estimates of the connectivity of layer 4 (L4) rat barrel cortex and numerical simulations of this circuit indicate that the local network possesses substantial heterogeneity in input connectivity, sufficient to disrupt excitation-inhibition balance. We show that homeostatic plasticity in inhibitory synapses can align the functional connectivity to compensate for structural heterogeneity. Alternatively, spike-frequency adaptation can give rise to a novel state in which local firing rates adjust dynamically so that adaptation currents and synaptic inputs are balanced. This theory is supported by simulations of L4 barrel cortex during spontaneous and stimulus-evoked conditions. Our study shows how synaptic and cellular mechanisms yield fluctuation-driven dynamics despite structural heterogeneity in cortical circuits.
机译:皮质动力学模型通常采用均质的连通性结构。但是,我们表明,异构输入连接可以阻止激发和抑制之间的动态平衡,皮质动力学的标志,并产生不切实际的稀疏和时间上规则的触发。基于解剖学的第4层(L4)大鼠桶状皮质连通性估计和该电路的数值模拟表明,本地网络在输入连通性方面具有显着的异质性,足以破坏激发抑制平衡。我们表明抑制突触中的稳态可塑性可以对齐功能连接性,以补偿结构异质性。可替代地,尖峰频率适应可以引起一种新颖的状态,在该状态中,局部点火速率可以动态地调节,从而使适应电流和突触输入平衡。 L4桶皮层在自发和刺激诱发条件下的模拟为该理论提供了支持。我们的研究表明,尽管皮质回路中存在结构异质性,但突触和细胞机制如何产生波动驱动的动力学。

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