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Synchronization of Firing in Cortical Fast-Spiking Interneurons at Gamma Frequencies: A Phase-Resetting Analysis

机译:γ频率的皮质快速加标中子的激发同步:相重置分析

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Fast-spiking (FS) cells in the neocortex are interconnected both by inhibitory chemical synapses and by electrical synapses, or gap-junctions. Synchronized firing of FS neurons is important in the generation of gamma oscillations, at frequencies between 30 and 80 Hz. To understand how these synaptic interactions control synchronization, artificial synaptic conductances were injected in FS cells, and the synaptic phase-resetting function (SPRF), describing how the compound synaptic input perturbs the phase of gamma-frequency spiking as a function of the phase at which it is applied, was measured. GABAergic and gap junctional conductances made distinct contributions to the SPRF, which had a surprisingly simple piecewise linear form, with a sharp midcycle break between phase delay and advance. Analysis of the SPRF showed how the intrinsic biophysical properties of FS neurons and their interconnections allow entrainment of firing over a wide gamma frequency band, whose upper and lower frequency limits are controlled by electrical synapses and GABAergic inhibition respectively.
机译:通过抑制性化学突触和电突触或间隙连接,新皮层中的快速掺入(FS)细胞相互连接。 FS神经元的同步激发在30至80 Hz频率的伽马振荡的产生中很重要。为了了解这些突触相互作用如何控制同步,在FS细胞中注入了人工突触电导,以及突触相位重置功能(SPRF),描述了复合突触输入如何扰动伽马频率尖峰的相位,作为该相位的函数。对其进行了测量。 GABA能和间隙连接电导对SPRF做出了独特的贡献,SPRF具有令人惊讶的简单分段线性形式,并且在相位延迟和超前之间出现了明显的中周期中断。对SPRF的分析表明,FS神经元的固有生物物理特性及其相互连接如何允许在较宽的伽玛频带上进行放电,伽玛频带的上限和下限分别由电突触和GABA抑制作用控制。

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