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Failure of adaptive self-organized criticality during epileptic seizure attacks

C Meisel, A Storch, S Hallmeyer-Elgner, E Bullmore, T Gross

    Research output: Contribution to journalArticle (Academic Journal)peer-review

    146 Citations (Scopus)

    Abstract

    Critical dynamics are assumed to be an attractive mode for normal brain functioning as information processing and computational capabilities are found to be optimized there. Recent experimental observations of neuronal activity patterns following power-law distributions, a hallmark of systems at a critical state, have led to the hypothesis that human brain dynamics could be poised at a phase transition between ordered and disordered activity. A so far unresolved question concerns the medical significance of critical brain activity and how it relates to pathological conditions. Using data from invasive electroencephalogram recordings from humans we show that during epileptic seizure attacks neuronal activity patterns deviate from the normally observed power-law distribution characterizing critical dynamics. The comparison of these observations to results from a computational model exhibiting self-organized criticality (SOC) based on adaptive networks allows further insights into the underlying dynamics. Together these results suggest that brain dynamics deviates from criticality during seizures caused by the failure of adaptive SOC.
    Translated title of the contributionFailure of adaptive self-organized criticality during epileptic seizure attacks
    Original languageEnglish
    Article numbere1002312
    Number of pages8
    JournalPLOS Computational Biology
    Volume84
    DOIs
    Publication statusPublished - 2012

    Research Groups and Themes

    • Engineering Mathematics Research Group

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