Synchrony, metastability, dynamic integration, and competition in the spontaneous functional connectivity of the human brain

被引:33
|
作者
Wens, Vincent [1 ,2 ]
Bourguignon, Mathieu [1 ,3 ,4 ]
Vander Ghinst, Marc [1 ]
Mary, Alison [5 ]
Marty, Brice [1 ]
Coquelet, Nicolas [1 ]
Naeije, Gilles [1 ]
Peigneux, Philippe [6 ]
Goldman, Serge [1 ,2 ]
De Tiege, Xavier [1 ,2 ]
机构
[1] ULB, UNI ULB Neurosci Inst, LCFC, Brussels, Belgium
[2] CUB Hop Erasme, Serv Nucl Med, Dept Funct Neuroimaging, Magnetoencephalog Unit, 808 Route Lenn, B-1070 Brussels, Belgium
[3] ULB, UNI ULB Neurosci Inst, Lab Cognit Langage & Dev, Brussels, Belgium
[4] BCBL Basque Ctr Cognit Brain & Language, San Sebastian 20009, Spain
[5] PSL Res Univ, UNICAEN, EPHE, INSERM,U1077,CHU Caen Neuropsychol & Imagerie Mem, Caen, France
[6] ULB, UNI ULB Neurosci Inst, CRCN, UR2NF Neuropsychol & Funct Neuroimaging Res Unit, Brussels, Belgium
关键词
Connectivity state transition; Dynamic functional connectivity; Independent component analysis; Magnetoencephalography; Network mixture model; Resting state; INDEPENDENT COMPONENT ANALYSIS; RESTING-STATE NETWORKS; CORTICAL CORRELATION STRUCTURE; ELECTROPHYSIOLOGICAL BASIS; BAND OSCILLATIONS; MOTOR-CORTEX; MEG; EEG; VARIABILITY; MECHANISMS;
D O I
10.1016/j.neuroimage.2019.05.081
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The human brain is functionally organized into large-scale neural networks that are dynamically interconnected. Multiple short-lived states of resting-state functional connectivity (rsFC) identified transiently synchronized networks and cross-network integration. However, little is known about the way brain couplings covary as rsFC states wax and wane. In this magnetoencephalography study, we explore the synchronization structure among the spontaneous interactions of well-known resting-state networks (RSNs). To do so, we extracted modes of dynamic coupling that reflect rsFC synchrony and analyzed their spatio-temporal features. These modes identified transient, sporadic rsFC changes characterized by the widespread integration of RSNs across the brain, most prominently in the beta band. This is in line with the metastable rsFC state model of resting-state dynamics, wherein our modes fit as state transition processes. Furthermore, the default-mode network (DMN) stood out as being structured into competitive cross-network couplings with widespread DMN-RSN interactions, especially among the beta-band modes. These results substantiate the theory that the DMN is a core network enabling dynamic global brain integration in the beta band.
引用
收藏
页码:313 / 324
页数:12
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