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动态电路模式是节律性增益控制、门控和整合的基础。

Dynamic circuit motifs underlying rhythmic gain control, gating and integration.

机构信息

1] Department of Biology, York University, Toronto, Ontario, Canada. [2] Centre for Vision Research, York University, Toronto, Ontario, Canada.

1] Division of Fundamental Neurobiology, Toronto Western Research Institute, Toronto, Ontario, Canada. [2] Division of Neurosurgery, Department of Surgery, University of Toronto, Toronto, Ontario, Canada.

出版信息

Nat Neurosci. 2014 Aug;17(8):1031-9. doi: 10.1038/nn.3764. Epub 2014 Jul 28.

Abstract

Brain circuitry processes information by rapidly and selectively engaging functional neuronal networks. The dynamic formation of networks is often evident in rhythmically synchronized neuronal activity and tightly correlates with perceptual, cognitive and motor performances. But how synchronized neuronal activity contributes to network formation and how it relates to the computation of behaviorally relevant information has remained difficult to discern. Here we structure recent empirical advances that link synchronized activity to the activation of so-called dynamic circuit motifs. These motifs explicitly relate (1) synaptic and cellular properties of circuits to (2) identified timescales of rhythmic activation and to (3) canonical circuit computations implemented by rhythmically synchronized circuits. We survey the ubiquitous evidence of specific cell and circuit properties underlying synchronized activity across theta, alpha, beta and gamma frequency bands and show that their activation likely implements gain control, context-dependent gating and state-specific integration of synaptic inputs. This evidence gives rise to the dynamic circuit motifs hypothesis of synchronized activation states, with its core assertion that activation states are linked to uniquely identifiable local circuit structures that are recruited during the formation of functional networks to perform specific computational operations.

摘要

大脑回路通过快速而有选择性地参与功能性神经网络来处理信息。网络的动态形成通常在节律同步的神经元活动中明显可见,并且与感知、认知和运动表现密切相关。但是,同步神经元活动如何有助于网络形成,以及它如何与行为相关信息的计算相关联,一直难以辨别。在这里,我们总结了最近的实证进展,这些进展将同步活动与所谓的动态电路模式的激活联系起来。这些模式明确地将(1)电路的突触和细胞特性与(2)已识别的节律激活时间尺度和(3)由节律同步电路实现的典型电路计算联系起来。我们调查了在 theta、alpha、beta 和 gamma 频带中同步活动背后特定细胞和电路特性的普遍证据,并表明它们的激活可能实现了增益控制、上下文相关门控和突触输入的状态特定整合。这一证据产生了同步激活状态的动态电路模式假说,其核心主张是激活状态与在形成功能性网络时被招募以执行特定计算操作的可识别的局部电路结构相关联。

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