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Published on: April 3, 2021
Allele-specific silencing of mutant Ataxin-7 in SCA7 patient-derived fibroblasts
Janine Scholefield1, Lauren Watson2, Danielle Smith3
1Department of Physiology, Anatomy and Genetics, University of Oxford, Oxford, UK.
Abstract:
Polyglutamine (polyQ) disorders are inherited neurodegenerative conditions defined by a common pathogenic CAG repeat expansion leading to a toxic gain-of-function of the mutant protein. Consequences of this toxicity include activation of heat-shock proteins (HSPs), impairment of the ubiquitin-proteasome pathway and transcriptional dysregulation. Several studies in animal models have shown that reducing levels of toxic protein using small RNAs would be an ideal therapeutic approach for such disorders, including spinocerebellar ataxia-7 (SCA7). However, testing such RNA interference (RNAi) effectors in genetically appropriate patient cell lines with a disease-relevant phenotype has yet to be explored. Here, we have used primary adult dermal fibroblasts from SCA7 patients and controls to assess the endogenous allele-specific silencing of ataxin-7 by two distinct siRNAs. We further identified altered expression of two disease-relevant transcripts in SCA7 patient cells: a twofold increase in levels of the HSP DNAJA1 and a twofold decrease in levels of the de-ubiquitinating enzyme, UCHL1. After siRNA treatment, the expression of both genes was restored towards normal levels. To our knowledge, this is the first time that allele-specific silencing of mutant ataxin-7, targeting a common SNP, has been demonstrated in patient cells. These findings highlight the advantage of an allele-specific RNAi-based therapeutic approach, and indicate the value of primary patient-derived cells as useful models for mechanistic studies and for measuring efficacy of RNAi effectors on a patient-to-patient basis in the polyQ diseases.
Insights
Small RNAs offer a promising therapeutic strategy for spinocerebellar ataxia-7 (SCA7) and other polyglutamine (polyQ) disorders. This study demonstrates allele-specific silencing of mutant ataxin-7 in patient cells, restoring gene expression.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Polyglutamine (polyQ) disorders result from CAG repeat expansions, causing toxic protein gain-of-function.
- Consequences include heat-shock protein (HSP) activation, impaired ubiquitin-proteasome pathway, and transcriptional dysregulation.
- Small RNA therapeutics show promise in animal models for polyQ disorders like spinocerebellar ataxia-7 (SCA7).
Purpose of the Study:
- To evaluate allele-specific RNA interference (RNAi) in patient-derived cells for SCA7.
- To assess the efficacy of small interfering RNAs (siRNAs) in silencing mutant ataxin-7.
- To investigate the impact of RNAi on disease-relevant gene expression in SCA7 patient cells.
Main Methods:
- Utilized primary adult dermal fibroblasts from SCA7 patients and controls.
- Assessed endogenous allele-specific silencing of ataxin-7 using two distinct siRNAs.
- Quantified expression levels of HSP DNAJA1 and UCHL1 transcripts.
Main Results:
- Achieved endogenous allele-specific silencing of mutant ataxin-7 in SCA7 patient cells.
- Observed restoration of HSP DNAJA1 and UCHL1 transcript levels towards normal following siRNA treatment.
- Demonstrated that SCA7 patient cells exhibit a twofold increase in HSP DNAJA1 and a twofold decrease in UCHL1.
Conclusions:
- This study presents the first demonstration of allele-specific silencing of mutant ataxin-7 targeting a common SNP in patient cells.
- Allele-specific RNAi offers a potential therapeutic advantage for polyQ disorders.
- Patient-derived cells are valuable models for studying polyQ disease mechanisms and evaluating RNAi efficacy on an individual basis.

