EEG Signal Complexity Is Reduced During Resting-State in Fragile X Syndrome

Proteau-Lemieux, Mélodie and Knoth, Inga Sophia and Agbogba, Kristian and Côté, Valérie and Barlahan Biag, Hazel Maridith and Thurman, Angela John and Martin, Charles-Olivier and Bélanger, Anne-Marie and Rosenfelt, Cory and Tassone, Flora and Abbeduto, Leonard J. and Jacquemont, Sébastien and Hagerman, Randi and Bolduc, François and Hessl, David and Schneider, Andrea and Lippé, Sarah (2021) EEG Signal Complexity Is Reduced During Resting-State in Fragile X Syndrome. Frontiers in Psychiatry, 12. ISSN 1664-0640

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Abstract

Introduction: Fragile X syndrome (FXS) is a genetic disorder caused by a mutation of the fragile X mental retardation 1 gene (FMR1). FXS is associated with neurophysiological abnormalities, including cortical hyperexcitability. Alterations in electroencephalogram (EEG) resting-state power spectral density (PSD) are well-defined in FXS and were found to be linked to neurodevelopmental delays. Whether non-linear dynamics of the brain signal are also altered remains to be studied.

Methods: In this study, resting-state EEG power, including alpha peak frequency (APF) and theta/beta ratio (TBR), as well as signal complexity using multi-scale entropy (MSE) were compared between 26 FXS participants (ages 5–28 years), and 77 neurotypical (NT) controls with a similar age distribution. Subsequently a replication study was carried out, comparing our cohort to 19 FXS participants independently recorded at a different site.

Results: PSD results confirmed the increased gamma, decreased alpha power and APF in FXS participants compared to NT controls. No alterations in TBR were found. Importantly, results revealed reduced signal complexity in FXS participants, specifically in higher scales, suggesting that altered signal complexity is sensitive to brain alterations in this population. The replication study mostly confirmed these results and suggested critical points of stagnation in the neurodevelopmental curve of FXS.

Conclusion: Signal complexity is a powerful feature that can be added to the electrophysiological biomarkers of brain maturation in FXS.

Item Type: Article
Subjects: ArticleGate > Medical Science
Depositing User: Managing Editor
Date Deposited: 13 Jan 2023 09:31
Last Modified: 22 Oct 2024 04:22
URI: http://ebooks.pubstmlibrary.com/id/eprint/1293

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