4.4 Article

Modular co-organization of functional connectivity and scale-free dynamics in the human brain

Journal

NETWORK NEUROSCIENCE
Volume 1, Issue 2, Pages 143-165

Publisher

MIT PRESS
DOI: 10.1162/netn_a_00008

Keywords

Scale-free dynamics; Functional connectome; Modular networks; Neuronal avalanches; Long-range temporal correlations

Categories

Funding

  1. Academy of Finland [253130, 256472, 1126967]
  2. Helsinki University Research Funds [29 604102]
  3. European Union Seventh Framework Programme (FP7/2007-2013) [29 604102]
  4. Italian Ministry of Health [RF-2010-2319316]
  5. Academy of Finland (AKA) [256472] Funding Source: Academy of Finland (AKA)

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Scale-free neuronal dynamics and interareal correlations are emergent characteristics of spontaneous brain activity. How such dynamics and the anatomical patterns of neuronal connectivity are mutually related in brain networks has, however, remained unclear. We addressed this relationship by quantifying the network colocalization of scale-free neuronal activity-both neuronal avalanches and long-range temporal correlations (LRTCs)-and functional connectivity (FC) by means of intracranial and noninvasive human resting-state electrophysiological recordings. We found frequency-specific colocalization of scale-free dynamics and FC so that the interareal couplings of LRTCs and the propagation of neuronal avalanches were most pronounced in the predominant pathways of FC. Several control analyses and the frequency specificity of network colocalization showed that the results were not trivial by-products of either brain dynamics or our analysis approach. Crucially, scale-free neuronal dynamics and connectivity also had colocalized modular structures at multiple levels of network organization, suggesting that modules of FC would be endowed with partially independent dynamic states. These findings thus suggest that FC and scale-free dynamics-hence, putatively, neuronal criticality as well-coemerge in a hierarchically modular structure in which the modules are characterized by dense connectivity, avalanche propagation, and shared dynamic states.

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