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Mechanisms for Phase Shifting in Cortical Networks and their Role in Communication through Coherence

机译:皮质网络中的相移机制及其在通过相干性进行通信中的作用

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摘要

In the primate visual cortex, the phase of spikes relative to oscillations in the local field potential (LFP) in the gamma frequency range (30–80 Hz) can be shifted by stimulus features such as orientation and thus the phase may carry information about stimulus identity. According to the principle of communication through coherence (CTC), the relative LFP phase between the LFPs in the sending and receiving circuits affects the effectiveness of the transmission. CTC predicts that phase shifting can be used for stimulus selection. We review and investigate phase shifting in models of periodically driven single neurons and compare it with phase shifting in models of cortical networks. In a single neuron, as the driving current is increased, the spike phase varies systematically while the firing rate remains constant. In a network model of reciprocally connected excitatory (E) and inhibitory (I) cells phase shifting occurs in response to both injection of constant depolarizing currents and to brief pulses to I cells. These simple models provide an account for phase-shifting observed experimentally and suggest a mechanism for implementing CTC. We discuss how this hypothesis can be tested experimentally using optogenetic techniques.
机译:在灵长类动物的视觉皮层中,相对于伽马频率范围(30–80 Hz)中局部场电势(LFP)振荡的尖峰相位可以通过诸如方向的刺激特征来移动,因此该相位可能携带有关刺激的信息身份。根据通过相干通信(CTC)的原理,发送和接收电路中LFP之间的相对LFP相位会影响传输的有效性。 CTC预测相移可用于刺激选择。我们审查和调查周期性驱动的单个神经元模型中的相移,并将其与皮层网络模型中的相移进行比较。在单个神经元中,随着驱动电流的增加,尖峰相位会系统地变化,而激发速率保持恒定。在相互连接的兴奋性(E)和抑制性(I)细胞的网络模型中,相移既响应于恒定去极化电流的注入,又响应于向I细胞的短暂脉冲。这些简单的模型为实验观察到的相移提供了解释,并提出了实施CTC的机制。我们讨论了如何使用光遗传学技术通过实验验证这一假设。

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