Electroencephalography signals in a female Fragile X Syndrome mouse model

Asim Ahmed1, Veronica Rasheva1, MoonYoung Bae1

  • 1Faculty of Veterinary Medicine, University of Calgary, Calgary, AB, Canada.; Hotchkiss Brain Institute, Cumming School of Medicine, University of Calgary, Calgary, AB, Canada.; Alberta Children's Hospital Research Institute, Cumming School of Medicine, University of Calgary, Calgary, AB, Canada.

Neuroimage
|March 21, 2026
PubMed
Abstract

Insights

This study investigated electroencephalography (EEG) biomarkers in female Fragile X syndrome (FXS) mouse models. Findings show altered EEG power and coupling, suggesting some EEG markers are translatable but sex and age are critical factors.

Area of Science:

  • Neuroscience
  • Genetics
  • Biomarker Research

Background:

  • Fragile X syndrome (FXS), a leading genetic cause of autism, lacks effective treatments, necessitating translational biomarkers.
  • Electroencephalography (EEG) shows promise as a biomarker, but research gaps exist, particularly concerning female models and developmental stages.
  • Existing studies on male FXS models show increased gamma power and altered alpha power, yet female FXS EEG phenotypes remain under-researched.

Purpose of the Study:

  • To compare EEG signals between female wild-type (WT) and fmr1 knockout (KO) mice, modeling Fragile X syndrome.
  • To investigate EEG signal differences at both juvenile and adult developmental stages in female FXS models.
  • To assess the translational potential of specific EEG biomarkers by comparing findings in female FXS mice to human FXS data.

Main Methods:

  • Frontal-parietal differential EEG was recorded in female WT and fmr1 KO mice across home cage, light-dark, and open field test conditions.
  • EEG analyses included absolute and relative power (gamma, alpha, theta), peak alpha frequency, theta-beta ratio, cross-frequency coupling, and signal complexity.
  • A priori analyses focused on power spectra, while other features were exploratory, aiming to validate findings against human FXS literature.

Main Results:

  • Female fmr1 KO mice exhibited increased absolute alpha, beta, gamma, and total EEG power compared to WT controls, with greater differences in adults.
  • Relative theta power decreased, while peak alpha frequency increased and theta-beta ratio decreased in the female FXS model.
  • Altered phase-amplitude and amplitude-amplitude coupling were observed, alongside stable EEG signal complexity across conditions.

Conclusions:

  • Increased gamma power in female fmr1 KO mice supports its role as a reliable EEG phenotype for Fragile X syndrome.
  • Altered theta-gamma coupling in female FXS models mirrors findings in FXS patients, indicating translational potential for this biomarker.
  • Discrepancies in peak alpha frequency and signal complexity highlight the need to consider sex and developmental stage for accurate EEG biomarker translation in FXS research.

Related Concept Videos