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Metastable brain waves

机译:亚稳态脑电波

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Traveling patterns of neuronal activity-brain waves-have been observed across a breadth of neuronal recordings, states of awareness, and species, but their emergence in the human brain lacks a firm understanding. Here we analyze the complex nonlinear dynamics that emerge from modeling large-scale spontaneous neural activity on a whole-brain network derived from human tractography. We find a rich array of three-dimensional wave patterns, including traveling waves, spiral waves, sources, and sinks. These patterns are metastable, such that multiple spatiotemporal wave patterns are visited in sequence. Transitions between states correspond to reconfigurations of underlying phase flows, characterized by nonlinear instabilities. These metastable dynamics accord with empirical data from multiple imaging modalities, including electrical waves in cortical tissue, sequential spatiotemporal patterns in resting-state MEG data, and large-scale waves in human electrocorticography. By moving the study of functional networks from a spatially static to an inherently dynamic (wave-like) frame, our work unifies apparently diverse phenomena across functional neuroimaging modalities and makes specific predictions for further experimentation.
机译:在整个神经元记录,意识状态和物种的广度上都观察到了神经元活动脑波的传播方式,但是它们在人脑中的出现却缺乏深刻的了解。在这里,我们分析了在人类人体影像学得出的全脑网络上对大规模自发神经活动进行建模所产生的复杂非线性动力学。我们发现了丰富的三维波型,包括行波,螺旋波,源和汇。这些模式是亚稳态的,因此可以依次访问多个时空波模式。状态之间的过渡对应于以非线性不稳定性为特征的基础相流的重新配置。这些亚稳态动力学与来自多种成像方式的经验数据相符,包括皮质组织中的电波,静止状态MEG数据中的连续时空模式以及人体电皮质图谱中的大规模波。通过将功能网络的研究从空间静态转变为固有的动态(波状)框架,我们的工作统一了功能神经成像模态中明显不同的现象,并为进一步的实验做出了具体的预测。

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