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Updated: Dec 4, 2025

Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Interrupting sequence variants and age of onset in Huntington's disease: clinical implications and emerging therapies
Galen E B Wright1, Hailey Findlay Black2, Jennifer A Collins2
1Centre for Molecular Medicine and Therapeutics, Department of Medical Genetics, University of British Columbia, Vancouver, BC, Canada; BC Children's Hospital Research Institute, Vancouver, BC, Canada; Neuroscience Research Program, Kleysen Institute for Advanced Medicine, Department of Pharmacology and Therapeutics, University of Manitoba, Winnipeg, MB, Canada.
Insights
Genetic variants in the huntingtin (HTT) gene, specifically CAA interruptions within CAG repeats, significantly impact Huntington's disease (HD) onset. Loss of these interruptions correlates with earlier HD onset, especially in reduced penetrance alleles, suggesting new therapeutic targets.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Huntington's disease (HD) is a fatal neurodegenerative disorder caused by CAG-CAA repeat expansion in the huntingtin (HTT) gene.
- Current models predicting HD onset based on polyglutamine length explain limited variability, as identical repeat lengths can lead to decades-apart clinical presentations.
- Genetic modifiers of HD age of onset are actively researched due to the limitations of current predictive assays.
Purpose of the Study:
- To investigate the role of CAA variants within CAG repeat expansions in modifying the age of onset for Huntington's disease.
- To explore the association between specific DNA sequence variations and clinical presentation in HD patients, particularly those with reduced penetrance alleles.
- To identify potential new therapeutic targets by understanding the mechanisms underlying HD onset modification.
Main Methods:
- Analysis of genetic studies examining three independent cohorts of Huntington's disease patients.
- Correlation of specific glutamine-encoding CAA variants (interrupting CAG tracts) with age of onset.
- Investigation of somatic repeat instability and DNA repair pathways as potential mediators of the observed effects.
Main Results:
- Glutamine-encoding CAA variants that interrupt DNA CAG repeat tracts, without altering polyglutamine length, are associated with significant differences in HD age of onset.
- A loss of CAA interruption is linked to earlier HD onset, particularly in individuals with reduced penetrance alleles (CAG 36-39).
- Approximately one-third of clinically manifesting carriers of reduced penetrance alleles possess this loss-of-interruption variant, suggesting its clinical relevance.
Conclusions:
- DNA sequence variations, specifically CAA interruptions within CAG repeats, are critical genetic modifiers of Huntington's disease age of onset.
- Somatic repeat instability, influenced by interrupted CAG tracts, is the likely mechanism mediating these onset differences.
- Future research should focus on diverse populations, disease-relevant tissues, and therapeutic strategies targeting DNA repair and repeat instability to modify HD onset.
Background:
Huntington's disease is a fatal neurodegenerative disorder that is caused by CAG-CAA repeat expansion, encoding polyglutamine, in the huntingtin (HTT) gene. Current age-of-clinical-onset prediction models for Huntington's disease are based on polyglutamine length and explain only a proportion of the variability in age of onset observed between patients. These length-based assays do not interrogate the underlying genetic variation, because known genetic variants in this region do not alter the protein coding sequence. Given that individuals with identical repeat lengths can present with Huntington's disease decades apart, the search for genetic modifiers of clinical age of onset has become an active area of research.
Recent Developments:
Results from three independent genetic studies of Huntington's disease have shown that glutamine-encoding CAA variants that interrupt DNA CAG repeat tracts, but do not alter polyglutamine length or polyglutamine homogeneity, are associated with substantial differences in age of onset of Huntington's disease in carriers. A variant that results in the loss of CAA interruption is associated with early onset and is particularly relevant to individuals that carry alleles in the reduced penetrance range (ie, CAG 36-39). Approximately a third of clinically manifesting carriers of reduced penetrance alleles, defined by current diagnostics, carry this variant. Somatic repeat instability, modified by interrupted CAG tracts, is the most probable cause mediating this effect. This relationship is supported by genome-wide screens for disease modifiers, which have revealed the importance of DNA-repair genes in Huntington's disease (ie, FAN1, LIG1, MLH1, MSH3, PMS1, and PMS2). WHERE NEXT?: Focus needs to be placed on refining our understanding of the effect of the loss-of-interruption and duplication-of-interruption variants and other interrupting sequence variants on age of onset, and assessing their effect in disease-relevant brain tissues, as well as in diverse population groups, such as individuals from Africa and Asia. Diagnostic tests should be augmented or updated, since current tests do not assess the underlying DNA sequence variation, especially when assessing individuals that carry alleles in the reduced penetrance range. Future studies should explore somatic repeat instability and DNA repair as new therapeutic targets to modify age of onset in Huntington's disease and in other repeat-mediated disorders. Disease-modifying therapies could potentially be developed by therapeutically targeting these processes. Promising approaches include therapeutically targeting the expanded repeat or directly perturbing key DNA-repair genes (eg, with antisense oligonucleotides or small molecules). Targeting the CAG repeat directly with naphthyridine-azaquinolone, a compound that induces contractions, and altering the expression of MSH3, represent two viable therapeutic strategies. However, as a first step, the capability of such novel therapeutic approaches to delay clinical onset in animal models should be assessed.
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