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Impact of gamma-oscillatory inhibition on the signal transmission of a cortical pyramidal neuron

机译:γ振荡抑制对皮质锥体神经元信号传递的影响

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Networks of synchronized fast-spiking interneurons are thought to be key elements in the generation of gamma (γ) oscillations (30–80 Hz) in the brain. We examined how such γ-oscillatory inhibition regulates the output of a cortical pyramidal cell. Specifically, we modeled a situation where a pyramidal cell receives inputs from γ-synchronized fast-spiking inhibitory interneurons. This model successfully reproduced several important aspects of a recent experimental result regarding the γ-inhibitory regulation of pyramidal cellular firing that is presumably associated with the sensation of whisker stimuli. Through an in-depth analysis of this model system, we show that there is an obvious rhythmic gating effect of the γ-oscillated interneuron networks on the pyramidal neuron’s signal transmission. This effect is further illustrated by the interactions of this interneuron network and the pyramidal neuron. Prominent power in the γ frequency range can emerge provided that there are appropriate delays on the excitatory connections and inhibitory synaptic conductance between interneurons. These results indicate that interactions between excitation and inhibition are critical for the modulation of coherence and oscillation frequency of network activities.
机译:同步快速爆发的中间神经网络被认为是大脑中伽马(γ)振荡(30–80 Hz)产生的关键因素。我们检查了这种γ振荡抑制如何调节皮质锥体细胞的输出。具体而言,我们对一种情况进行了建模,其中锥体细胞从γ同步快速加标抑制性中间神经元接收输入。该模型成功地再现了有关锥体细胞发射的γ抑制调节的最新实验结果的几个重要方面,这可能与晶须刺激有关。通过对该模型系统的深入分析,我们发现γ振荡的中间神经元网络对锥体神经元的信号传递具有明显的节律门控作用。该中间神经网络与锥体神经元的相互作用进一步说明了这种作用。如果在兴奋性连接和中间神经元之间的抑制性突触传导上有适当的延迟,则可以出现在γ频率范围内的强大功率。这些结果表明,激发和抑制之间的相互作用对于网络活动的相干性和振荡频率的调制至关重要。

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