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Published on: July 6, 2022
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.
Background:
Fragile X syndrome (FXS) is the leading monogenic cause of Autism. No broadly effective support option currently exists for FXS, and drug development has suffered many failures in clinical trials based on promising preclinical findings. Thus, effective translational biomarkers of treatment outcomes are needed. Recently, electroencephalography (EEG) has been proposed as a translational biomarker in FXS. Recent years have seen an exciting emergence of novel EEG signal analyses from FXS patients. However, there is a notable gap in corresponding analyses conducted on animal models of the disorder. Being X-linked, FXS is more prevalent in males than females, and there exist significant phenotype differences between males and females with FXS. Recent studies involving male FXS participants and rodent models have identified an increase in absolute gamma EEG power, while alpha power is found to be either decreased or unchanged. However, there is not enough research on female FXS patients or models. In addition, studying EEG activity in both young and adult FXS patients or rodent models is crucial for better understanding of the disorder's effects on brain development. Therefore, using the well-established fmr1 knockout (KO) mouse model of FXS, we aim to compare EEG signal between female wild-type (WT) and female model mice at both juvenile and adult ages.
Methods:
Frontal-parietal differential EEG was recorded using a stand-alone Open-Source Electrophysiology Recording system for Rodents (OSERR). EEG activity was recorded in three different conditions: a) in the subject's home cage, and in the arenas for b) light-dark test and c) open field test. Absolute and relative EEG power as well as peak alpha frequency, theta-beta ratio, phase-amplitude and amplitude-amplitude coupling, and EEG signal complexity were computed for each condition. Analyses of absolute and relative power, particularly gamma power, were a priori confirmatory based on established findings in human and rodent FXS literature. All additional EEG features (peak alpha frequency, theta-beta ratio, cross-frequency coupling, and signal complexity) were treated as exploratory.
Results:
In our study, we found EEG signals were stable across different recording conditions. Our results indicate that absolute alpha, beta, gamma and total EEG power is increased in the female model compared to WT controls, and the difference is more pronounced at the adult age. Alongside, relative theta power is decreased in the model. Additionally, phase-amplitude and amplitude-amplitude coupling are altered in the model. Furthermore, peak alpha frequency is increased, and theta-beta ratio is decreased in the model. Lastly, no change in EEG signal complexity is found.
Discussion And Conclusion:
Consistent with most findings from FXS patients and rodent models, our results demonstrated an increase in gamma power in fmr1KO female mice, reinforcing gamma power as a robust and reliable EEG phenotype across FXS models. Additionally, theta-gamma cross frequency amplitude coupling is inversely coupled in female FXS model, which is similar to what has been reported in FXS patients. Overall, our findings reveal that some, but not all EEG biomarkers observed in FXS patients are replicated in the female FXS model. For example, amplitude-amplitude coupling exhibited a similar trend between the fmr1KO mouse models and FXS patients, supporting its potential as a translational EEG biomarker. In contrast, other measures such as peak alpha frequency, theta-beta ratio, and brain signal complexity showed notable discrepancies between the mouse models and human data. Additionally, when compared to previously reported EEG changes in male FXS mouse models, our results highlight the presence of a potential sex-based difference in EEG phenotypes at both juvenile and adult stages of fmr1KO mouse models. Together, our study indicates that certain EEG parameters may be more translatable between rodent models and FXS patients than others and underscore the importance of considering sex and developmental stage as a critical factor when using EEG as a biomarker in FXS research.
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.
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