PRPF8-mediated dysregulation of hBrr2 helicase disrupts human spliceosome kinetics and 5´-splice-site selection causing tissue-specific defects
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Published:2024-04-11
Issue:1
Volume:15
Page:
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ISSN:2041-1723
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Container-title:Nature Communications
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language:en
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Short-container-title:Nat Commun
Author:
Atkinson Robert, Georgiou Maria, Yang Chunbo, Szymanska KatarzynaORCID, Lahat Albert, Vasconcelos Elton J. R.ORCID, Ji YanlongORCID, Moya Molina MarinaORCID, Collin Joseph, Queen Rachel, Dorgau BirtheORCID, Watson AvrilORCID, Kurzawa-Akanbi Marzena, Laws RossORCID, Saxena Abhijit, Shyan Beh Chia, Siachisumo Chileleko, Goertler FranziskaORCID, Karwatka Magdalena, Davey Tracey, Inglehearn Chris F.ORCID, McKibbin Martin, Lührmann ReinhardORCID, Steel David H., Elliott David J.ORCID, Armstrong Lyle, Urlaub HenningORCID, Ali Robin R., Grellscheid Sushma-Nagaraja, Johnson Colin A.ORCID, Mozaffari-Jovin SinaORCID, Lako MajlindaORCID
Abstract
AbstractThe carboxy-terminus of the spliceosomal protein PRPF8, which regulates the RNA helicase Brr2, is a hotspot for mutations causing retinitis pigmentosa-type 13, with unclear role in human splicing and tissue-specificity mechanism. We used patient induced pluripotent stem cells-derived cells, carrying the heterozygous PRPF8 c.6926 A > C (p.H2309P) mutation to demonstrate retinal-specific endophenotypes comprising photoreceptor loss, apical-basal polarity and ciliary defects. Comprehensive molecular, transcriptomic, and proteomic analyses revealed a role of the PRPF8/Brr2 regulation in 5’-splice site (5’SS) selection by spliceosomes, for which disruption impaired alternative splicing and weak/suboptimal 5’SS selection, and enhanced cryptic splicing, predominantly in ciliary and retinal-specific transcripts. Altered splicing efficiency, nuclear speckles organisation, and PRPF8 interaction with U6 snRNA, caused accumulation of active spliceosomes and poly(A)+ mRNAs in unique splicing clusters located at the nuclear periphery of photoreceptors. Collectively these elucidate the role of PRPF8/Brr2 regulatory mechanisms in splicing and the molecular basis of retinal disease, informing therapeutic approaches.
Funder
RCUK | Medical Research Council
Publisher
Springer Science and Business Media LLC
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