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Updated: May 14, 2026

Generation of Native, Untagged Huntingtin Exon1 Monomer and Fibrils Using a SUMO Fusion Strategy
Published on: June 27, 2018
Aberrant splicing of HTT generates the pathogenic exon 1 protein in Huntington disease
Kirupa Sathasivam1, Andreas Neueder, Theresa A Gipson
1Department of Medical and Molecular Genetics, King's College London, London SE1 9RT, United Kingdom.
Insights
Huntington disease (HD) pathogenesis involves aberrant splicing of the HTT gene, producing a toxic exon 1 HTT protein. This discovery offers a mechanistic basis for HD and suggests reviewing current RNA-targeted therapies.
Area of Science:
- Neurodegenerative diseases
- Molecular genetics
- Protein biochemistry
Background:
- Huntington disease (HD) is an inherited neurodegenerative disorder caused by a CAG repeat expansion in the HTT gene.
- The huntingtin protein (HTT) fragments, particularly N-terminal ones, are implicated in HD molecular pathogenesis.
- The precise generation mechanism and length of these pathogenic HTT fragments remain unknown.
Purpose of the Study:
- To elucidate the mechanism of pathogenic HTT fragment generation in Huntington disease.
- To investigate the role of aberrant splicing in the production of exon 1 HTT protein.
Main Methods:
- Analysis of HTT gene splicing in HD models.
- Detection and characterization of HTT mRNA and protein fragments.
- Assessment of exon 1 HTT protein pathogenicity in HD mouse models.
Main Results:
- CAG repeat length-dependent aberrant splicing of HTT exon 1 generates a short, polyadenylated mRNA.
- This aberrant mRNA is translated into a pathogenic exon 1 HTT protein.
- Mutant exon 1 HTT proteins are highly pathogenic in HD mouse models.
Conclusions:
- Aberrant splicing of HTT mRNA provides a mechanistic basis for Huntington disease molecular pathogenesis.
- The findings highlight the critical role of exon 1 HTT protein in HD.
- Current RNA-targeted therapies may need re-evaluation as they might not prevent exon 1 HTT production.
Abstract:
Huntington disease (HD) is a devastating, late-onset, inherited neurodegenerative disorder that manifests with personality changes, movement disorders, and cognitive decline. It is caused by a CAG repeat expansion in exon 1 of the HTT gene that translates to a polyglutamine tract in the huntingtin protein (HTT). The formation of HTT fragments has been implicated as an essential step in the molecular pathogenesis of HD and several proteases that cleave HTT have been identified. However, the importance of smaller N-terminal fragments has been highlighted by their presence in HD postmortem brains and by the fact that nuclear inclusions are only detected by antibodies to the N terminus of HTT. Despite an intense research effort, the precise length of these fragments and the mechanism by which they are generated remains unknown. Here we show that CAG repeat length-dependent aberrant splicing of exon 1 HTT results in a short polyadenylated mRNA that is translated into an exon 1 HTT protein. Given that mutant exon 1 HTT proteins have consistently been shown to be highly pathogenic in HD mouse models, the aberrant splicing of HTT mRNA provides a mechanistic basis for the molecular pathogenesis of HD. RNA-targeted therapeutic strategies designed to lower the levels of HTT are under development. Many of these approaches would not prevent the production of exon 1 HTT and should be reviewed in light of our findings.
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