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Updated: Jun 20, 2026

Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Normal and mutant HTT interact to affect clinical severity and progression in Huntington disease
N A Aziz1, C K Jurgens, G B Landwehrmeyer
1Leiden University Medical Center, Department of Neurology, Leiden, The Netherlands. N.A.Aziz@lumc.nl
Insights
The size of the normal CAG repeat in Huntington disease (HD) influences disease severity and progression. Larger normal repeats can lessen the impact of the expanded mutant CAG repeat in the HTT gene.
Area of Science:
- Neurogenetics
- Neurodegenerative Diseases
Background:
- Huntington disease (HD) is a fatal autosomal dominant neurodegenerative disorder.
- It is caused by an expanded CAG repeat in the huntingtin (HTT) gene.
Purpose of the Study:
- To investigate the interaction between CAG repeat sizes on mutant and normal alleles.
- To determine if this interaction impacts HD disease severity and progression.
Main Methods:
- Linear regression and mixed-effects models were used.
- Analysis included age at onset, clinical progression, and basal ganglia volume.
- Data from 921 HD patients and 16 premanifest carriers were analyzed.
Main Results:
- CAG repeat sizes on both alleles significantly influenced age at onset, clinical progression, and basal ganglia volume.
- In low-range expansions, larger normal repeats correlated with worse outcomes.
- In high-range expansions, larger normal repeats correlated with better outcomes.
Conclusions:
- Normal allele CAG repeat size modulates the effect of mutant expansions on HD.
- This interaction has implications for predicting disease trajectory and therapeutic strategies.
- Further research into the underlying molecular mechanisms is warranted.
Objective:
Huntington disease (HD) is an autosomal dominant neurodegenerative disorder caused by a CAG repeat expansion in the HD gene (HTT). We aimed to assess whether interaction between CAG repeat sizes in the mutant and normal allele could affect disease severity and progression.
Methods:
Using linear regression and mixed-effects models, the influence of mutant and normal CAG repeat sizes interaction was assessed on 1) age at onset in 921 patients with HD, 2) clinical severity and progression in 512 of these patients with follow-up data available, and 3) basal ganglia volume on magnetic resonance images in 16 premanifest HD mutation carriers.
Results:
Normal and mutant CAG repeat sizes interacted to influence 1) age at onset (p = 0.001), 2) severity or progression of motor, cognitive, and functional, but not behavioral, symptoms in patients with HD (all p < 0.05), and 3) in premanifest subjects, basal ganglia volumes (p < 0.05). In subjects with mutant CAG expansions in the low range, increasing size of the normal repeat correlated with more severe symptoms and pathology, whereas for those subjects with expansions in the high range, increasing size of the normal repeat correlated with less severe symptoms and pathology.
Conclusions:
Increasing CAG repeat size in normal HTT diminishes the association between mutant CAG repeat size and disease severity and progression in Huntington disease. The underlying mechanism may involve interaction of the polyglutamine domains of normal and mutant huntingtin (fragments) and needs further elucidation. These findings may have predictive value and are essential for the design and interpretation of future therapeutic trials.
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