Scinovex
article Open AccessTop 1% cited

Criticality in Large-Scale Brain fMRI Dynamics Unveiled by a Novel Point Process Analysis

Frontiers in Physiology · 2012 · Vol. 3
Enzo TagliazucchiPablo BalenzuelaDaniel FraimanDante R. Chialvo

Abstract

Functional magnetic resonance imaging (fMRI) techniques have contributed significantly to our understanding of brain function. Current methods are based on the analysis of gradual and continuous changes in the brain blood oxygenated level dependent (BOLD) signal. Departing from that approach, recent work has shown that equivalent results can be obtained by inspecting only the relatively large amplitude BOLD signal peaks, suggesting that relevant information can be condensed in discrete events. This idea is further explored here to demonstrate how brain dynamics at resting state can be captured just by the timing and location of such events, i.e., in terms of a spatiotemporal point process. The method allows, for the first time, to define a theoretical framework in terms of an order and control parameter derived from fMRI data, where the dynamical regime could be interpreted as one corresponding to a system close to the critical point of a second order phase transition. The analysis of the data demonstrates that the resting brain spent most of its time near the critical point of such transition and exhibits avalanches of activity ruled by the same dynamical and statistical properties described previously for neuronal events at smaller scales. Given the demonstrated functional relevance of the resting state brain dynamics, its representation as a discrete process might facilitate large scale analysis of brain function both in health and disease.

Diffusion and Search DynamicsEcosystem dynamics and resilienceNeural dynamics and brain functionFunctional magnetic resonance imagingResting state fMRIRepresentation (politics)SIGNAL (programming language)Computer scienceStatistical physicsNeuroscienceScale (ratio)Brain activity and meditationPhysics

Funding

  • Consejo Nacional de Investigaciones Científicas y Técnicas
  • Universidad de Buenos Aires
  • National Institutes of Health
Citations
806
FWCI
16.91
field-weighted impact
References
83
Percentile
100%
vs. same field & year
Citations per year
Cited by
The entropic brain - revisited
Neuropharmacology · 2018 · 524 citations
References
Geometry from a Time Series
Physical Review Letters · 1980 · 3,850 citations
Emergent complex neural dynamics
Nature Physics · 2010 · 1,210 citations
Correspondence of the brain's functional architecture during activation and rest
Proceedings of the National Academy of Sciences · 2009 · 5,389 citations
An iterative technique for the rectification of observed distributions
The Astronomical Journal · 1974 · 3,737 citations
Probabilistic Independent Component Analysis for Functional Magnetic Resonance Imaging
IEEE Transactions on Medical Imaging · 2004 · 2,837 citations
Neuronal Avalanches in Neocortical Circuits
Journal of Neuroscience · 2003 · 2,326 citations
The human connectome: a complex network
Annals of the New York Academy of Sciences · 2011 · 1,412 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.