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.

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.

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