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通过瞬态同步实现灵活的信息路由。

Flexible information routing by transient synchrony.

机构信息

Max Planck Institute for Dynamics and Self-organization, Göttingen, Germany.

Bernstein Center for Computational Neuroscience, Göttingen, Germany.

出版信息

Nat Neurosci. 2017 Jul;20(7):1014-1022. doi: 10.1038/nn.4569. Epub 2017 May 22.

Abstract

Perception, cognition and behavior rely on flexible communication between microcircuits in distinct cortical regions. The mechanisms underlying rapid information rerouting between such microcircuits are still unknown. It has been proposed that changing patterns of coherence between local gamma rhythms support flexible information rerouting. The stochastic and transient nature of gamma oscillations in vivo, however, is hard to reconcile with such a function. Here we show that models of cortical circuits near the onset of oscillatory synchrony selectively route input signals despite the short duration of gamma bursts and the irregularity of neuronal firing. In canonical multiarea circuits, we find that gamma bursts spontaneously arise with matched timing and frequency and that they organize information flow by large-scale routing states. Specific self-organized routing states can be induced by minor modulations of background activity.

摘要

感知、认知和行为依赖于不同皮质区域的微电路之间的灵活通讯。这种微电路之间快速信息重路由的机制尚不清楚。有人提出,局部γ节律之间相干性模式的变化支持灵活的信息重路由。然而,体内γ振荡的随机和瞬态性质很难与这种功能相协调。在这里,我们表明,在振荡同步开始时的皮质电路模型,尽管γ爆发的持续时间短和神经元放电不规则,仍选择性地传输输入信号。在典型的多区域电路中,我们发现γ爆发自发地以匹配的时间和频率出现,并且它们通过大规模路由状态组织信息流。通过对背景活动的微小调制,可以诱导特定的自组织路由状态。

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