ArticleBiological research2024
Therapeutic potential of oleic acid supplementation in myotonic dystrophy muscle cell models.
Article in Biological research, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 4 papers.
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Who cites it
4 citing papers in PubMed.
- Fatty-acid-based antimiR-23b delivery in the DMSXL model: A potential therapeutic strategy for brain dysfunction in myotonic dystrophy type 1.Cell reports. Medicine · 2026Article
- Oleic Acid Levels in HSAInternational journal of molecular sciences · 2026Article
- Up-to-Date Research on the Composition of Blood Slaughterhouse By-Products Derived FBS Substitutes and Their Applicability to Animal Cell Culture.Journal of food science · 2025Article
- The role of RNA binding proteins in cancer biology: A focus on FMRP.Genes & diseases · 2025Review
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Authors and funding
7 authors.
Funding
Abstract
backgroundWe recently reported that upregulation of Musashi 2 (MSI2) protein in the rare neuromuscular disease myotonic dystrophy type 1 contributes to the hyperactivation of the muscle catabolic processes autophagy and UPS through a reduction in miR-7 levels. Because oleic acid (OA) is a known allosteric regulator of MSI2 activity in the biogenesis of miR-7, here we sought to evaluate endogenous levels of this fatty acid and its therapeutic potential in rescuing cell differentiation phenotypes in vitro. In this work, four muscle cell lines derived from DM1 patients were treated with OA for 24 h, and autophagy and muscle differentiation parameters were analyzed.
resultsWe demonstrate a reduction of OA levels in different cell models of the disease. OA supplementation rescued disease-related phenotypes such as fusion index, myotube diameter, and repressed autophagy. This involved inhibiting MSI2 regulation of direct molecular target miR-7 since OA isoschizomer, elaidic acid (EA) could not cause the same rescues. Reduction of OA levels seems to stem from impaired biogenesis since levels of the enzyme stearoyl-CoA desaturase 1 (SCD1), responsible for converting stearic acid to oleic acid, are decreased in DM1 and correlate with OA amounts.
conclusionsFor the first time in DM1, we describe a fatty acid metabolism impairment that originated, at least in part, from a decrease in SCD1. Because OA allosterically inhibits MSI2 binding to molecular targets, reduced OA levels synergize with the overexpression of MSI2 and contribute to the MSI2 > miR-7 > autophagy axis that we proposed to explain the muscle atrophy phenotype.
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