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Using RNA-targeting CRISPR-Cas13 and engineered U1 systems to target ABCA4 splice variants in Stargardt disease
Centre for Eye Research Australia, VIC, Melbourne, Australia; Ophthalmology, Department of Surgery, University of Melbourne, VIC, Melbourne, Australia.
Centre for Eye Research Australia, VIC, Melbourne, Australia; Ophthalmology, Department of Surgery, University of Melbourne, VIC, Melbourne, Australia.
Centre for Eye Research Australia, VIC, Melbourne, Australia; Department of Health Technology and Informatics, The Hong Kong Polytechnic University, Hong Kong, China.
Centre for Eye Research Australia, VIC, Melbourne, Australia; Ophthalmology, Department of Surgery, University of Melbourne, VIC, Melbourne, Australia.
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2026 (Engelska)Ingår i: Molecular Therapy Nucleic Acids, E-ISSN 2162-2531, Vol. 37, nr 1, artikel-id 102789Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Dysregulation of the alternative splicing process results in aberrant mRNA transcripts, leading to dysfunctional proteins or nonsense-mediated decay that cause a wide range of mis-splicing diseases. Development of therapeutic strategies to target the alternative splicing process could potentially shift the mRNA splicing from disease isoforms to a normal isoform and restore functional protein. As a proof of concept, we focus on Stargardt disease (STGD1), an autosomal recessive inherited retinal disease caused by biallelic genetic variants in the ABCA4 gene. The splicing variants c.5461-10T>C and c.4773+3A>G in ABCA4 cause the skipping of exon 39–40 and exon 33–34, respectively. In this study, we compared the efficacy of different RNA-targeting systems to modulate these ABCA4 splicing defects, including four CRISPR-Cas13 systems (CASFx-1, CASFx-3, RBFOX1N-dCas13e-C, and RBFOX1N-dPspCas13b-C) as well as an engineered U1 system (ExSpeU1). Using a minigene system containing ABCA4 variants in the human retinal pigment epithelium ARPE19, our results show that RBFOX1N-dPspCas13b-C is the best performing CRISPR-Cas system, which enabled up to 80% reduction of the mis-spliced ABCA4 c.5461-10T>C variants and up to 78% reduction of the ABCA4 c.4773+3A>G variants. In comparison, delivery of a single ExSpeU1 was able to effectively reduce the mis-spliced ABCA4 c.4773+3A>G variants by up to 84%. We observed that the effectiveness of CRISPR-based and U1 splicing regulation is strongly dependent on the sgRNA/snRNA targeting sequences, highlighting that optimal sgRNA/snRNA designing is crucial for efficient targeting of mis-spliced transcripts. Overall, our study demonstrated the potential of using RNA-targeting CRISPR-Cas technology and engineered U1 to reduce mis-spliced transcripts for ABCA4 , providing an important step to advance the development of gene therapy to treat STGD1.

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Cell Press, 2026. Vol. 37, nr 1, artikel-id 102789
Nyckelord [en]
cas13, CRISPR, engineered U1, exons, MT: RNA/DNA Editing, retinal degeneration, RNA splicing, stargardt disease
Nationell ämneskategori
Biokemi Molekylärbiologi Genetik och genomik
Identifikatorer
URN: urn:nbn:se:umu:diva-248168DOI: 10.1016/j.omtn.2025.102789ISI: 001649413800001Scopus ID: 2-s2.0-105025158407OAI: oai:DiVA.org:umu-248168DiVA, id: diva2:2026467
Tillgänglig från: 2026-01-09 Skapad: 2026-01-09 Senast uppdaterad: 2026-01-09Bibliografiskt granskad

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Boström, Ida MariaGolovleva, Irina

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