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Phase Difference between Model Cortical Areas Determines Level of Information Transfer

机译:模型皮层区域之间的相位差决定了信息传递的水平

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摘要

Communication between cortical sites is mediated by long-range synaptic connections. However, these connections are relatively static, while everyday cognitive tasks demand a fast and flexible routing of information in the brain. Synchronization of activity between distant cortical sites has been proposed as the mechanism underlying such a dynamic communication structure. Here, we study how oscillatory activity affects the excitability and input-output relation of local cortical circuits and how it alters the transmission of information between cortical circuits. To this end, we develop model circuits showing fast oscillations by the PING mechanism, of which the oscillatory characteristics can be altered. We identify conditions for synchronization between two brain circuits and show that the level of intercircuit coherence and the phase difference is set by the frequency difference between the intrinsic oscillations. We show that the susceptibility of the circuits to inputs, i.e., the degree of change in circuit output following input pulses, is not uniform throughout the oscillation period and that both firing rate, frequency and power are differentially modulated by inputs arriving at different phases. As a result, an appropriate phase difference between the circuits is critical for the susceptibility windows of the circuits in the network to align and for information to be efficiently transferred. We demonstrate that changes in synchrony and phase difference can be used to set up or abolish information transfer in a network of cortical circuits.
机译:皮质位点之间的通信是通过远程突触连接介导的。但是,这些连接是相对静态的,而日常的认知任务需要大脑中信息的快速灵活路由。已经提出了在远端皮层位点之间的活动同步作为这种动态通信结构的基础。在这里,我们研究振荡活动如何影响局部皮质回路的兴奋性和输入输出关系,以及它如何改变皮质回路之间的信息传递。为此,我们开发了通过PING机制显示快速振荡的模型电路,其振荡特性可以改变。我们确定了两个大脑电路之间同步的条件,并表明电路间相干性和相位差的级别由固有振荡之间的频率差设置。我们表明,电路对输入的敏感性,即输入脉冲之后电路输出的变化程度在整个振荡周期内是不均匀的,并且点火速率,频率和功率都受到到达不同相位的输入的差分调制。结果,电路之间的适当相位差对于网络中电路对准的磁化率窗口和有效地传递信息至关重要。我们证明,同步性和相位差的变化可用于建立或取消皮质电路网络中的信息传递。

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