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Updated: Dec 1, 2025

Measuring RAN Peptide Toxicity in C. elegans
Published on: April 30, 2020
RAN Translation of the Expanded CAG Repeats in the SCA3 Disease Context
Magdalena Jazurek-Ciesiolka1, Adam Ciesiolka1, Alicja A Komur1
1Department of Medical Biotechnology, Institute of Bioorganic Chemistry, Polish Academy of Sciences, Noskowskiego 12/14, 61-704 Poznan, Poland.
Abstract:
Spinocerebellar ataxia type 3 (SCA3) is a progressive neurodegenerative disorder caused by a CAG repeat expansion in the ATXN3 gene encoding the ataxin-3 protein. Despite extensive research the exact pathogenic mechanisms of SCA3 are still not understood in depth. In the present study, to gain insight into the toxicity induced by the expanded CAG repeats in SCA3, we comprehensively investigated repeat-associated non-ATG (RAN) translation in various cellular models expressing translated or non-canonically translated ATXN3 sequences with an increasing number of CAG repeats. We demonstrate that two SCA3 RAN proteins, polyglutamine (polyQ) and polyalanine (polyA), are found only in the case of CAG repeats of pathogenic length. Despite having distinct cellular localization, RAN polyQ and RAN polyA proteins are very often coexpressed in the same cell, impairing nuclear integrity and inducing apoptosis. We provide for the first time mechanistic insights into SCA3 RAN translation indicating that ATXN3 sequences surrounding the repeat region have an impact on SCA3 RAN translation initiation and efficiency. We revealed that RAN translation of polyQ proteins starts at non-cognate codons upstream of the CAG repeats, whereas RAN polyA proteins are likely translated within repeats. Furthermore, integrated stress response activation enhances SCA3 RAN translation. Our findings suggest that the ATXN3 sequence context plays an important role in triggering SCA3 RAN translation and that SCA3 RAN proteins may cause cellular toxicity.
Insights
Spinocerebellar ataxia type 3 (SCA3) involves toxic repeat-associated non-ATG (RAN) translation of ATXN3. This study reveals RAN proteins impair nuclear integrity and induce apoptosis, with ATXN3 sequence context influencing RAN translation.
Area of Science:
- Neurogenetics
- Molecular Biology
- Cellular Toxicology
Background:
- Spinocerebellar ataxia type 3 (SCA3) is a progressive neurodegenerative disorder linked to CAG repeat expansion in the ATXN3 gene.
- The precise pathogenic mechanisms driving SCA3, particularly the role of expanded repeats, remain incompletely understood.
Purpose of the Study:
- To investigate the toxicity induced by expanded CAG repeats in SCA3 through comprehensive analysis of repeat-associated non-ATG (RAN) translation.
- To elucidate the mechanistic insights into SCA3 RAN translation, including the influence of flanking sequences and cellular stress responses.
Main Methods:
- Utilized various cellular models expressing ATXN3 sequences with varying CAG repeat lengths.
- Investigated the initiation and efficiency of RAN translation for polyglutamine (polyQ) and polyalanine (polyA) proteins.
- Examined the impact of RAN proteins on nuclear integrity and apoptosis, and the role of integrated stress response activation.
Main Results:
- Two SCA3 RAN proteins, polyQ and polyA, were detected exclusively with pathogenic CAG repeat lengths.
- RAN polyQ and polyA proteins were frequently coexpressed within the same cells, leading to impaired nuclear integrity and apoptosis.
- ATXN3 sequence context upstream of the repeat region influences RAN translation initiation and efficiency, with polyQ translation initiating upstream and polyA translation likely within the repeats.
- Activation of the integrated stress response enhanced SCA3 RAN translation.
Conclusions:
- The ATXN3 sequence context is a critical factor in triggering SCA3 RAN translation.
- SCA3 RAN proteins, polyQ and polyA, contribute to cellular toxicity through mechanisms including nuclear impairment and apoptosis.
- Understanding RAN translation provides new mechanistic insights into SCA3 pathogenesis.
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