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Updated: Jun 12, 2025

Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Suppression of Huntington's Disease Somatic Instability by Transcriptional Repression and Direct CAG Repeat Binding
Ella W Mathews1,2, Sydney R Coffey2, Annette Gärtner3
1Department of Neurology, University of Washington, Seattle WA 98104, USA.
Insights
Huntington's disease therapies that target DNA show promise for reducing mutant huntingtin (HTT) toxicity and somatic instability (SI). DNA-binding proteins protect against SI without lowering HTT levels, suggesting a novel therapeutic strategy.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Huntington's disease (HD) is caused by CAG repeat expansion in the huntingtin (HTT) gene.
- Mutant HTT (mHTT) toxicity and somatic instability (SI) of the CAG repeat contribute to HD pathogenesis.
- Current HD therapies aim to lower mHTT levels, but the relationship between HTT lowering and SI is unexplored.
Purpose of the Study:
- To investigate the relationship between HTT lowering and SI in HD models.
- To evaluate therapeutically-relevant HTT-lowering strategies for their impact on SI.
- To identify therapeutic approaches that address both mHTT toxicity and SI.
Main Methods:
- Utilized HD knock-in mouse models.
- Assessed various HTT-lowering modalities including antisense oligonucleotides, CRISPR-Cas9, and zinc finger proteins (ZFPs).
- Investigated the effect of transcriptional repression and DNA-binding proteins on mHTT and SI.
Main Results:
- Repressing mutant Htt (mHtt) transcription robustly protected against SI using diverse methods.
- Small interfering RNA (siRNA) lowered HTT levels but did not affect SI.
- Modified ZFPs binding the mHtt locus protected from SI without reducing HTT levels, suggesting DNA interaction is key.
Conclusions:
- DNA-targeted HTT-lowering treatments may offer advantages over other approaches by addressing both mHTT toxicity and SI.
- Interaction of DNA-binding proteins with HTT's CAG repeats can protect against SI while preserving normal HTT expression.
- These findings suggest novel therapeutic strategies for Huntington's disease.
Abstract:
Huntington's disease (HD) arises from a CAG expansion in the huntingtin (HTT) gene beyond a critical threshold. A major thrust of current HD therapeutic development is lowering levels of mutant HTT mRNA (mHTT) and protein (mHTT) with the aim of reducing the toxicity of these product(s). Human genetic data also support a key role for somatic instability (SI) in HTT's CAG repeat - whereby it lengthens with age in specific somatic cell types - as a key driver of age of motor dysfunction onset. Thus, an attractive HD therapy would address both mHTT toxicity and SI, but to date the relationship between SI and HTT lowering remains unexplored. Here, we investigated multiple therapeutically-relevant HTT-lowering modalities to establish the relationship between HTT lowering and SI in HD knock-in mice. We find that repressing transcription of mutant Htt (mHtt) provides robust protection from SI, using diverse genetic and pharmacological approaches (antisense oligonucleotides, CRISPR-Cas9 genome editing, the Lac repressor, and virally delivered zinc finger transcriptional repressor proteins, ZFPs). However, we find that small interfering RNA (siRNA), a potent HTT-lowering treatment, lowers HTT levels without influencing SI and that SI is also normal in mice lacking 50% of total HTT levels, suggesting HTT levels, per se, do not modulate SI in trans. Remarkably, modified ZFPs that bind the mHtt locus, but lack a repressive domain, robustly protect from SI, despite not reducing HTT mRNA or protein levels. These results have important therapeutic implications in HD, as they suggest that DNA-targeted HTT-lowering treatments may have significant advantages compared to other HTT-lowering approaches, and that interaction of a DNA-binding protein and HTT's CAG repeats may provide protection from SI while sparing HTT expression.
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