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.

Human Molecular Genetics
|November 27, 2018
PubMed

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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