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Efficient and Scalable Production of Full-length Human Huntingtin Variants in Mammalian Cells using a Transient Expression System
Published on: December 10, 2021
New developments in Huntington's disease and other triplet repeat diseases: DNA repair turns to the dark side
1Centre for Chromosome Biology and Galway Neuroscience Center, National University of Ireland, Galway, Newcastle Road, Galway H91W2TY, Ireland.
Insights
Genetic variants in DNA repair genes influence Huntington's disease (HD) progression by promoting CAG repeat expansions in the HTT gene. Therapies may need to target both mutant huntingtin protein and repeat expansions for maximum effect.
Area of Science:
- Neurogenetics
- Molecular Biology
- Genomics
Background:
- Huntington's disease (HD) is an inherited neurodegenerative disorder caused by CAG triplet repeat expansion in the HTT gene.
- Disease progression and onset are traditionally attributed to toxic huntingtin protein effects.
- Recent genome-wide association studies (GWAS) identified genetic variants outside the HTT gene influencing HD.
Purpose of the Study:
- To investigate the role of genetic variants outside the HTT gene in Huntington's disease.
- To explore the impact of DNA repair factors on somatic CAG repeat expansions in HD.
Main Methods:
- Genome-wide association studies (GWAS) were utilized to identify genetic variants associated with HD.
- Analysis focused on genes encoding DNA repair factors and their potential role in somatic CAG repeat expansions.
Main Results:
- GWAS revealed significant associations between variants in DNA repair genes and HD.
- These DNA repair factors appear to promote somatic CAG repeat expansions in the HTT gene.
- This suggests a role for DNA repair mechanisms in modulating HD pathogenesis.
Conclusions:
- Genetic variants in DNA repair genes significantly influence Huntington's disease onset and progression.
- Somatic expansion of CAG repeats, driven by DNA repair proteins, may augment disease burden.
- Future therapeutic strategies for HD may require combination approaches targeting both mutant huntingtin protein and somatic repeat expansions.
Abstract:
Huntington's disease (HD) is a fatal, inherited neurodegenerative disease that causes neuronal death, particularly in medium spiny neurons. HD leads to serious and progressive motor, cognitive and psychiatric symptoms. Its genetic basis is an expansion of the CAG triplet repeat in the HTT gene, leading to extra glutamines in the huntingtin protein. HD is one of nine genetic diseases in this polyglutamine (polyQ) category, that also includes a number of inherited spinocerebellar ataxias (SCAs). Traditionally it has been assumed that HD age of onset and disease progression were solely the outcome of age-dependent exposure of neurons to toxic effects of the inherited mutant huntingtin protein. However, recent genome-wide association studies (GWAS) have revealed significant effects of genetic variants outside of HTT. Surprisingly, these variants turn out to be mostly in genes encoding DNA repair factors, suggesting that at least some disease modulation occurs at the level of the HTT DNA itself. These DNA repair proteins are known from model systems to promote ongoing somatic CAG repeat expansions in tissues affected by HD. Thus, for triplet repeats, some DNA repair proteins seem to abandon their normal genoprotective roles and, instead, drive expansions and accelerate disease. One attractive hypothesis-still to be proven rigorously-is that somatic HTT expansions augment the disease burden of the inherited allele. If so, therapeutic approaches that lower levels of huntingtin protein may need blending with additional therapies that reduce levels of somatic CAG repeat expansions to achieve maximal effect.
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