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Updated: Feb 2, 2026

A Simple Composite Phenotype Scoring System for Evaluating Mouse Models of Cerebellar Ataxia
Published on: May 21, 2010
Metabolic pathways modulate the neuronal toxicity associated with fragile X-associated tremor/ataxia syndrome
Ha Eun Kong1, Junghwa Lim1, Feiran Zhang1
1Department of Human Genetics, School of Medicine, Emory University, Atlanta, GA.
Abstract:
Fragile X-associated tremor/ataxia syndrome (FXTAS) is an adult-onset neurodegenerative disorder that affects premutation carriers (55-200 CGG repeats) of the fragile X mental retardation 1 (FMR1) gene. Much remains unknown regarding the metabolic alterations associated with FXTAS, especially in the brain, and the most affected region, the cerebellum. Investigating the metabolic changes in FXTAS will aid in the identification of biomarkers as well as in understanding the pathogenesis of disease. To identify the metabolic alterations associated with FXTAS, we took advantage of our FXTAS mouse model that expresses 90 CGG repeats in cerebellar Purkinje neurons and exhibits the key phenotypic features of FXTAS. We performed untargeted global metabolic profiling of age-matched control and FXTAS mice cerebella at 16-20 weeks and 55 weeks. Out of 506 metabolites measured in cerebellum, we identified 186 metabolites that demonstrate significant perturbations due to the (CGG)90 repeat (P<0.05) and found that these differences increase dramatically with age. To identify key metabolic changes in FXTAS pathogenesis, we performed a genetic screen using a Drosophila model of FXTAS. Out of 28 genes that we tested in the fly, 8 genes showed significant enhanced neuronal toxicity associated with CGG repeats, such as Schlank (ceramide synthase), Sk2 (sphingosine kinase) and Ras (IMP dehydrogenase). By combining metabolic profiling with a Drosophila genetic screen to identify genetic modifiers of FXTAS, we demonstrate an effective method for functional validation of high-throughput metabolic data and show that sphingolipid and purine metabolism are significantly perturbed in FXTAS pathogenesis.
Insights
Metabolic changes in the cerebellum, including sphingolipid and purine pathways, are linked to Fragile X-associated tremor/ataxia syndrome (FXTAS). These alterations worsen with age in a mouse model, suggesting potential biomarkers for this neurodegenerative disorder.
Area of Science:
- Neuroscience
- Genetics
- Metabolomics
Background:
- Fragile X-associated tremor/ataxia syndrome (FXTAS) is an adult-onset neurodegenerative disorder affecting FMR1 premutation carriers.
- The cerebellum is a primary affected region in FXTAS, but its metabolic alterations remain poorly understood.
- Identifying metabolic changes can reveal disease biomarkers and pathogenic mechanisms.
Purpose of the Study:
- To investigate metabolic alterations in the cerebellum of an FXTAS mouse model.
- To identify key genes involved in FXTAS pathogenesis using a Drosophila model.
Main Methods:
- Untargeted global metabolic profiling of cerebella from control and FXTAS mice at different ages.
- Genetic screening in a Drosophila model to identify genes modifying CGG repeat toxicity.
Main Results:
- 186 out of 506 measured cerebellar metabolites were significantly perturbed in FXTAS mice, with changes increasing with age.
- Sphingolipid metabolism (e.g., ceramide synthase, sphingosine kinase) and purine metabolism (e.g., IMP dehydrogenase) were identified as significantly perturbed pathways.
- Eight out of 28 tested genes in Drosophila showed enhanced neuronal toxicity with CGG repeats, validating metabolic findings.
Conclusions:
- Metabolic profiling combined with genetic screening provides a robust method for validating high-throughput metabolic data.
- Sphingolipid and purine metabolism are significantly implicated in the pathogenesis of FXTAS.
- Age-dependent metabolic perturbations in the cerebellum highlight potential therapeutic targets and biomarkers for FXTAS.
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