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Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells

INTRODUCTION: Mutations in pre‐mRNA processing factor 31 (PRPF31), a core protein of the spliceosomal tri‐snRNP complex, cause autosomal‐dominant retinitis pigmentosa (adRP). It has remained an enigma why mutations in ubiquitously expressed tri‐snRNP proteins result in retina‐specific disorders, and...

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Autores principales: Georgiou, Maria, Yang, Chunbo, Atkinson, Robert, Pan, Kuan‐Ting, Buskin, Adriana, Molina, Marina Moya, Collin, Joseph, Al‐Aama, Jumana, Goertler, Franziska, Ludwig, Sebastian E. J., Davey, Tracey, Lührmann, Reinhard, Nagaraja‐Grellscheid, Sushma, Johnson, Colin A., Ali, Robin, Armstrong, Lyle, Korolchuk, Viktor, Urlaub, Henning, Mozaffari‐Jovin, Sina, Lako, Majlinda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8926896/
https://www.ncbi.nlm.nih.gov/pubmed/35297555
http://dx.doi.org/10.1002/ctm2.759
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author Georgiou, Maria
Yang, Chunbo
Atkinson, Robert
Pan, Kuan‐Ting
Buskin, Adriana
Molina, Marina Moya
Collin, Joseph
Al‐Aama, Jumana
Goertler, Franziska
Ludwig, Sebastian E. J.
Davey, Tracey
Lührmann, Reinhard
Nagaraja‐Grellscheid, Sushma
Johnson, Colin A.
Ali, Robin
Armstrong, Lyle
Korolchuk, Viktor
Urlaub, Henning
Mozaffari‐Jovin, Sina
Lako, Majlinda
author_facet Georgiou, Maria
Yang, Chunbo
Atkinson, Robert
Pan, Kuan‐Ting
Buskin, Adriana
Molina, Marina Moya
Collin, Joseph
Al‐Aama, Jumana
Goertler, Franziska
Ludwig, Sebastian E. J.
Davey, Tracey
Lührmann, Reinhard
Nagaraja‐Grellscheid, Sushma
Johnson, Colin A.
Ali, Robin
Armstrong, Lyle
Korolchuk, Viktor
Urlaub, Henning
Mozaffari‐Jovin, Sina
Lako, Majlinda
author_sort Georgiou, Maria
collection PubMed
description INTRODUCTION: Mutations in pre‐mRNA processing factor 31 (PRPF31), a core protein of the spliceosomal tri‐snRNP complex, cause autosomal‐dominant retinitis pigmentosa (adRP). It has remained an enigma why mutations in ubiquitously expressed tri‐snRNP proteins result in retina‐specific disorders, and so far, the underlying mechanism of splicing factors‐related RP is poorly understood. METHODS: We used the induced pluripotent stem cell (iPSC) technology to generate retinal organoids and RPE models from four patients with severe and very severe PRPF31‐adRP, unaffected individuals and a CRISPR/Cas9 isogenic control. RESULTS: To fully assess the impacts of PRPF31 mutations, quantitative proteomics analyses of retinal organoids and RPE cells were carried out showing RNA splicing, autophagy and lysosome, unfolded protein response (UPR) and visual cycle‐related pathways to be significantly affected. Strikingly, the patient‐derived RPE and retinal cells were characterised by the presence of large amounts of cytoplasmic aggregates containing the mutant PRPF31 and misfolded, ubiquitin‐conjugated proteins including key visual cycle and other RP‐linked tri‐snRNP proteins, which accumulated progressively with time. The mutant PRPF31 variant was not incorporated into splicing complexes, but reduction of PRPF31 wild‐type levels led to tri‐snRNP assembly defects in Cajal bodies of PRPF31 patient retinal cells, altered morphology of nuclear speckles and reduced formation of active spliceosomes giving rise to global splicing dysregulation. Moreover, the impaired waste disposal mechanisms further exacerbated aggregate formation, and targeting these by activating the autophagy pathway using Rapamycin reduced cytoplasmic aggregates, leading to improved cell survival. CONCLUSIONS: Our data demonstrate that it is the progressive aggregate accumulation that overburdens the waste disposal machinery rather than direct PRPF31‐initiated mis‐splicing, and thus relieving the RPE cells from insoluble cytoplasmic aggregates presents a novel therapeutic strategy that can be combined with gene therapy studies to fully restore RPE and retinal cell function in PRPF31‐adRP patients.
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spelling pubmed-89268962022-03-24 Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells Georgiou, Maria Yang, Chunbo Atkinson, Robert Pan, Kuan‐Ting Buskin, Adriana Molina, Marina Moya Collin, Joseph Al‐Aama, Jumana Goertler, Franziska Ludwig, Sebastian E. J. Davey, Tracey Lührmann, Reinhard Nagaraja‐Grellscheid, Sushma Johnson, Colin A. Ali, Robin Armstrong, Lyle Korolchuk, Viktor Urlaub, Henning Mozaffari‐Jovin, Sina Lako, Majlinda Clin Transl Med Research Articles INTRODUCTION: Mutations in pre‐mRNA processing factor 31 (PRPF31), a core protein of the spliceosomal tri‐snRNP complex, cause autosomal‐dominant retinitis pigmentosa (adRP). It has remained an enigma why mutations in ubiquitously expressed tri‐snRNP proteins result in retina‐specific disorders, and so far, the underlying mechanism of splicing factors‐related RP is poorly understood. METHODS: We used the induced pluripotent stem cell (iPSC) technology to generate retinal organoids and RPE models from four patients with severe and very severe PRPF31‐adRP, unaffected individuals and a CRISPR/Cas9 isogenic control. RESULTS: To fully assess the impacts of PRPF31 mutations, quantitative proteomics analyses of retinal organoids and RPE cells were carried out showing RNA splicing, autophagy and lysosome, unfolded protein response (UPR) and visual cycle‐related pathways to be significantly affected. Strikingly, the patient‐derived RPE and retinal cells were characterised by the presence of large amounts of cytoplasmic aggregates containing the mutant PRPF31 and misfolded, ubiquitin‐conjugated proteins including key visual cycle and other RP‐linked tri‐snRNP proteins, which accumulated progressively with time. The mutant PRPF31 variant was not incorporated into splicing complexes, but reduction of PRPF31 wild‐type levels led to tri‐snRNP assembly defects in Cajal bodies of PRPF31 patient retinal cells, altered morphology of nuclear speckles and reduced formation of active spliceosomes giving rise to global splicing dysregulation. Moreover, the impaired waste disposal mechanisms further exacerbated aggregate formation, and targeting these by activating the autophagy pathway using Rapamycin reduced cytoplasmic aggregates, leading to improved cell survival. CONCLUSIONS: Our data demonstrate that it is the progressive aggregate accumulation that overburdens the waste disposal machinery rather than direct PRPF31‐initiated mis‐splicing, and thus relieving the RPE cells from insoluble cytoplasmic aggregates presents a novel therapeutic strategy that can be combined with gene therapy studies to fully restore RPE and retinal cell function in PRPF31‐adRP patients. John Wiley and Sons Inc. 2022-03-16 /pmc/articles/PMC8926896/ /pubmed/35297555 http://dx.doi.org/10.1002/ctm2.759 Text en © 2022 The Authors. Clinical and Translational Medicine published by John Wiley & Sons Australia, Ltd on behalf of Shanghai Institute of Clinical Bioinformatics https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Georgiou, Maria
Yang, Chunbo
Atkinson, Robert
Pan, Kuan‐Ting
Buskin, Adriana
Molina, Marina Moya
Collin, Joseph
Al‐Aama, Jumana
Goertler, Franziska
Ludwig, Sebastian E. J.
Davey, Tracey
Lührmann, Reinhard
Nagaraja‐Grellscheid, Sushma
Johnson, Colin A.
Ali, Robin
Armstrong, Lyle
Korolchuk, Viktor
Urlaub, Henning
Mozaffari‐Jovin, Sina
Lako, Majlinda
Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
title Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
title_full Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
title_fullStr Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
title_full_unstemmed Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
title_short Activation of autophagy reverses progressive and deleterious protein aggregation in PRPF31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
title_sort activation of autophagy reverses progressive and deleterious protein aggregation in prpf31 patient‐induced pluripotent stem cell‐derived retinal pigment epithelium cells
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8926896/
https://www.ncbi.nlm.nih.gov/pubmed/35297555
http://dx.doi.org/10.1002/ctm2.759
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