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Generation of Native, Untagged Huntingtin Exon1 Monomer and Fibrils Using a SUMO Fusion Strategy
Published on: June 27, 2018
Exon 1-targeting miRNA reduces the pathogenic exon 1 HTT protein in Huntington's disease models
Marina Sogorb-Gonzalez1,2, Christian Landles3, Nicholas S Caron4
1Department of Research & Development, uniQure Biopharma BV, Amsterdam 1105 BP, The Netherlands.
Insights
Gene therapy using AAV5-miHTT effectively reduces both full-length mutant huntingtin (HTT) and the toxic HTT exon 1 protein in mouse models of Huntington's disease (HD). This dual-targeting approach shows promise for greater therapeutic benefit in treating this fatal neurodegenerative disorder.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Huntington's disease (HD) is a fatal neurodegenerative disorder caused by a mutation in the huntingtin gene (HTT).
- Both full-length (FL) mutant HTT and a shorter, toxic HTT exon 1 protein (HTTexon1) from aberrant splicing contribute to HD pathology.
- Targeting both forms of mutant HTT may offer greater therapeutic benefit than targeting FL HTT alone.
Purpose of the Study:
- To evaluate the efficacy of an engineered microRNA targeting HTT exon 1 (miHTT) delivered via adeno-associated virus serotype 5 (AAV5) in reducing HTT1a mRNA and HTTexon1 protein in HD mouse models.
- To assess the impact of AAV5-miHTT on both FL HTT and HTT1a mRNA and protein levels in the brain.
Main Methods:
- Development of an engineered microRNA (miHTT) targeting the HTT exon 1 sequence.
- Delivery of miHTT using adeno-associated virus serotype 5 (AAV5) via intrastriatal administration in zQ175 knock-in and Hu128/21 mouse models of HD.
- Quantification of HTT1a mRNA and HTTexon1 protein levels in brain tissues and neuronal cultures post-treatment.
Main Results:
- AAV5-miHTT administration led to dose-dependent expression of miHTT in the brain.
- Significant reduction in both FL HTT and HTT1a mRNA levels was observed at 2 months post-injection.
- Mutant HTT and HTTexon1 protein levels were significantly decreased in the striatum and cortex of treated mice.
Conclusions:
- AAV5-miHTT gene therapy effectively reduces both FL HTT and pathogenic HTTexon1 levels in preclinical HD models.
- This dual-targeting strategy holds potential for additive therapeutic benefits in Huntington's disease treatment.
- Further clinical studies are warranted to explore the therapeutic potential of AAV5-miHTT for HD patients.
Abstract:
Huntington's disease (HD) is a fatal neurodegenerative disease caused by a trinucleotide repeat expansion in exon 1 of the huntingtin gene (HTT) that results in toxic gain of function and cell death. Despite its monogenic cause, the pathogenesis of HD is highly complex, and increasing evidence indicates that, in addition to the full-length (FL) mutant HTT protein, the expanded exon 1 HTT (HTTexon1) protein that is translated from the HTT1a transcript generated by aberrant splicing is prone to aggregate and might contribute to HD pathology. This finding suggests that reducing the expression of HTT1a might achieve a greater therapeutic benefit than targeting only FL mutant HTT. Conversely, strategies that exclusively target FL HTT might not completely prevent the pathogenesis of HD. We have developed an engineered microRNA targeting the HTT exon 1 sequence (miHTT), delivered via adeno-associated virus serotype 5 (AAV5). The target sequence of miHTT is present in both FL HTT and HTT1a transcripts. Preclinical studies with AAV5-miHTT have demonstrated efficacy in several rodent and large animal models by reducing FL HTT mRNA and protein and rescuing HD-like phenotypes and have been the rationale for phase I/II clinical studies now ongoing in the USA and Europe. In the present study, we evaluated the ability of AAV5-miHTT to reduce the levels of aberrantly spliced HTT1a mRNA and the HTTexon1 protein in the brain of two mouse models of HD (heterozygous zQ175 knock-in mice and humanized Hu128/21 mice). Polyadenylated HTT1a mRNA and HTTexon1 protein were detected in the striatum and cortex of heterozygous zQ175 knock-in mice, but not in wild-type littermate control mice. Intrastriatal administration of AAV5-miHTT resulted in dose-dependent expression of mature miHTT microRNA in cortical brain regions, accompanied by significant lowering of both FL HTT and HTT1a mRNA expression at 2 months postinjection. Mutant HTT and HTTexon1 protein levels were also significantly reduced in the striatum and cortex of heterozygous zQ175 knock-in mice at 2 months after AAV5-miHTT treatment and in humanized Hu128/21 mice 7 months post-treatment. The effects were confirmed in primary Hu128/21 neuronal cultures. These results demonstrate that AAV5-miHTT gene therapy is an effective approach to lower both FL HTT and the pathogenic HTTexon1 levels, which could potentially have an additive therapeutic benefit in comparison to other HTT-targeting modalities.

