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Updated: Nov 26, 2025

Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Mutant Huntingtin Is Cleared from the Brain via Active Mechanisms in Huntington Disease
Nicholas S Caron1, Raul Banos2, Christopher Yanick2
1Centre for Molecular Medicine and Therapeutics, British Columbia Children's Hospital Research Institute, Department of Medical Genetics, University of British Columbia, Vancouver, British Columbia V5Z 4H4, Canada.
Insights
Huntington disease (HD) research shows mutant huntingtin (mHTT) enters cerebrospinal fluid (CSF) via cell secretion and glymphatic clearance. This finding aids interpretation of CSF mHTT changes in HD clinical trials.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Huntington disease (HD) is a neurodegenerative disorder caused by a CAG repeat expansion in the huntingtin (HTT) gene.
- Lowering HTT levels is a therapeutic strategy for HD, with clinical trials underway.
- Cerebrospinal fluid (CSF) mutant HTT (mHTT) levels correlate with disease progression and are used as a marker for target engagement in clinical trials.
Purpose of the Study:
- To investigate the mechanisms of mHTT clearance from the brain in adult mice.
- To elucidate the significance of therapy-induced CSF mHTT changes in Huntington disease.
Main Methods:
- Studied mHTT clearance mechanisms in adult male and female Huntington disease model mice.
- Analyzed CSF mHTT concentrations in relation to neurodegeneration and HTT levels.
- Investigated the role of cellular secretion and glymphatic system in mHTT transport to CSF.
Main Results:
- Neurodegeneration increases CSF mHTT, but mHTT is also found in CSF without neurodegeneration.
- Secretion of mHTT from central nervous system cells followed by glymphatic clearance contributes to CSF mHTT.
- Wild-type HTT is secreted from healthy neurons, indicating HTT secretion is a normal physiological process.
Conclusions:
- Both passive release and active clearance mechanisms contribute to mHTT in the CSF.
- Treatment-induced changes in CSF mHTT may reflect both target engagement and neuroprotective effects.
- Findings have implications for interpreting CSF mHTT as a biomarker in Huntington disease clinical trials.
Abstract:
Huntington disease (HD) is a neurodegenerative disease caused by a CAG trinucleotide repeat expansion in the huntingtin (HTT) gene. Therapeutics that lower HTT have shown preclinical promise and are being evaluated in clinical trials. However, clinical assessment of brain HTT lowering presents challenges. We have reported that mutant HTT (mHTT) in the CSF of HD patients correlates with clinical measures, including disease burden as well as motor and cognitive performance. We have also shown that lowering HTT in the brains of HD mice results in correlative reduction of mHTT in the CSF, prompting the use of this measure as an exploratory marker of target engagement in clinical trials. In this study, we investigate the mechanisms of mHTT clearance from the brain in adult mice of both sexes to elucidate the significance of therapy-induced CSF mHTT changes. We demonstrate that, although neurodegeneration increases CSF mHTT concentrations, mHTT is also present in the CSF of mice in the absence of neurodegeneration. Importantly, we show that secretion of mHTT from cells in the CNS followed by glymphatic clearance from the extracellular space contributes to mHTT in the CSF. Furthermore, we observe secretion of wild type HTT from healthy control neurons, suggesting that HTT secretion is a normal process occurring in the absence of pathogenesis. Overall, our data support both passive release and active clearance of mHTT into CSF, suggesting that its treatment-induced changes may represent a combination of target engagement and preservation of neurons.SIGNIFICANCE STATEMENT: Changes in CSF mutant huntingtin (mHTT) are being used as an exploratory endpoint in HTT lowering clinical trials for the treatment of Huntington disease (HD). Recently, it was demonstrated that intrathecal administration of a HTT lowering agent leads to dose-dependent reduction of CSF mHTT in HD patients. However, little is known about how HTT, an intracellular protein, reaches the extracellular space and ultimately the CSF. Our findings that HTT enters CSF by both passive release and active secretion followed by glymphatic clearance may have significant implications for interpretation of treatment-induced changes of CSF mHTT in clinical trials for HD.
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