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Broadband Criticality of Human Brain Network Synchronization

Self-organized criticality is an attractive model for human brain dynamics, but there has been little direct evidence for its existence in large-scale systems measured by neuroimaging. In general, critical systems are associated with fractal or power law scaling, long-range correlations in space and...

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Autores principales: Kitzbichler, Manfred G., Smith, Marie L., Christensen, Søren R., Bullmore, Ed
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2647739/
https://www.ncbi.nlm.nih.gov/pubmed/19300473
http://dx.doi.org/10.1371/journal.pcbi.1000314
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author Kitzbichler, Manfred G.
Smith, Marie L.
Christensen, Søren R.
Bullmore, Ed
author_facet Kitzbichler, Manfred G.
Smith, Marie L.
Christensen, Søren R.
Bullmore, Ed
author_sort Kitzbichler, Manfred G.
collection PubMed
description Self-organized criticality is an attractive model for human brain dynamics, but there has been little direct evidence for its existence in large-scale systems measured by neuroimaging. In general, critical systems are associated with fractal or power law scaling, long-range correlations in space and time, and rapid reconfiguration in response to external inputs. Here, we consider two measures of phase synchronization: the phase-lock interval, or duration of coupling between a pair of (neurophysiological) processes, and the lability of global synchronization of a (brain functional) network. Using computational simulations of two mechanistically distinct systems displaying complex dynamics, the Ising model and the Kuramoto model, we show that both synchronization metrics have power law probability distributions specifically when these systems are in a critical state. We then demonstrate power law scaling of both pairwise and global synchronization metrics in functional MRI and magnetoencephalographic data recorded from normal volunteers under resting conditions. These results strongly suggest that human brain functional systems exist in an endogenous state of dynamical criticality, characterized by a greater than random probability of both prolonged periods of phase-locking and occurrence of large rapid changes in the state of global synchronization, analogous to the neuronal “avalanches” previously described in cellular systems. Moreover, evidence for critical dynamics was identified consistently in neurophysiological systems operating at frequency intervals ranging from 0.05–0.11 to 62.5–125 Hz, confirming that criticality is a property of human brain functional network organization at all frequency intervals in the brain's physiological bandwidth.
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spelling pubmed-26477392009-03-20 Broadband Criticality of Human Brain Network Synchronization Kitzbichler, Manfred G. Smith, Marie L. Christensen, Søren R. Bullmore, Ed PLoS Comput Biol Research Article Self-organized criticality is an attractive model for human brain dynamics, but there has been little direct evidence for its existence in large-scale systems measured by neuroimaging. In general, critical systems are associated with fractal or power law scaling, long-range correlations in space and time, and rapid reconfiguration in response to external inputs. Here, we consider two measures of phase synchronization: the phase-lock interval, or duration of coupling between a pair of (neurophysiological) processes, and the lability of global synchronization of a (brain functional) network. Using computational simulations of two mechanistically distinct systems displaying complex dynamics, the Ising model and the Kuramoto model, we show that both synchronization metrics have power law probability distributions specifically when these systems are in a critical state. We then demonstrate power law scaling of both pairwise and global synchronization metrics in functional MRI and magnetoencephalographic data recorded from normal volunteers under resting conditions. These results strongly suggest that human brain functional systems exist in an endogenous state of dynamical criticality, characterized by a greater than random probability of both prolonged periods of phase-locking and occurrence of large rapid changes in the state of global synchronization, analogous to the neuronal “avalanches” previously described in cellular systems. Moreover, evidence for critical dynamics was identified consistently in neurophysiological systems operating at frequency intervals ranging from 0.05–0.11 to 62.5–125 Hz, confirming that criticality is a property of human brain functional network organization at all frequency intervals in the brain's physiological bandwidth. Public Library of Science 2009-03-20 /pmc/articles/PMC2647739/ /pubmed/19300473 http://dx.doi.org/10.1371/journal.pcbi.1000314 Text en Kitzbichler et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Kitzbichler, Manfred G.
Smith, Marie L.
Christensen, Søren R.
Bullmore, Ed
Broadband Criticality of Human Brain Network Synchronization
title Broadband Criticality of Human Brain Network Synchronization
title_full Broadband Criticality of Human Brain Network Synchronization
title_fullStr Broadband Criticality of Human Brain Network Synchronization
title_full_unstemmed Broadband Criticality of Human Brain Network Synchronization
title_short Broadband Criticality of Human Brain Network Synchronization
title_sort broadband criticality of human brain network synchronization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2647739/
https://www.ncbi.nlm.nih.gov/pubmed/19300473
http://dx.doi.org/10.1371/journal.pcbi.1000314
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