ArticleCell & bioscience2024
Targeting miR-181a/b in retinitis pigmentosa: implications for disease progression and therapy.
Article in Cell & bioscience, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Chromophore-loaded CRALBP restores rod visual cycle in chromophore-deficient mice.Molecular therapy. Advances · 2026Article
- Diagnostic Role of Chromatic Full-Field Stimulus Test in Rod-Cone Versus Cone Dystrophies.Biomedicines · 2026Article
- Exploring extracellular vesicle MicroRNAs in Usher syndrome type 1B: Tear-Derived EVs as potential indicators of retinal health.Cellular and molecular life sciences : CMLS · 2026Article
- Clinical Characteristics and Genetic Factors in Retinitis Pigmentosa: A Retrospective Analysis of a Turkish Patient Cohort.Medical sciences (Basel, Switzerland) · 2026Article
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- Ablating VHL in rod photoreceptors modulates RPE glycolysis and improves preclinical model of retinitis pigmentosa.The Journal of clinical investigation · 2025Article
- Subretinal delivery of AAV5-mediated humanMolecular vision · 2025Article
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Authors and funding
11 authors.
Funding
Abstract
backgroundRetinitis pigmentosa (RP) is a genetically heterogeneous group of degenerative disorders causing progressive vision loss due to photoreceptor death. RP affects other retinal cells, including the retinal pigment epithelium (RPE). MicroRNAs (miRs) are implicated in RP pathogenesis, and downregulating miR-181a/b has shown therapeutic benefit in RP mouse models by improving mitochondrial function. This study investigates the expression profile of miR-181a/b in RPE cells and the neural retina during RP disease progression. We also evaluate how miR-181a/b downregulation, by knocking out miR-181a/b-1 cluster in RPE cells, confers therapeutic efficacy in an RP mouse model and explore the mechanisms underlying this process.
resultsOur findings reveal distinct expression profiles, with downregulated miR-181a/b in RPE cells suggesting a protective response and upregulated miR-181a/b in the neural retina indicating a role in disease progression. We found that miR-181a/b-2, encoded in a separate genomic cluster, compensates for miR-181a/b-1 ablation in RPE cells at late time points. The transient downregulation of miR-181a/b in RPE cells at post-natal week 6 (PW6) led to improved RPE morphology, retarded photoreceptor degeneration and decreased RPE aerobic glycolysis.
conclusionsOur study elucidates the underlying mechanisms associated with the therapeutic modulation of miR-181a/b, providing insights into the metabolic processes linked to its RPE-specific downregulation. Our data further highlights the impact of compensatory regulation between miR clusters with implications for the development of miR-based therapeutics.
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