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Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing

Genome editing with CRISPR/Cas9 is a promising new approach for correcting or mitigating disease-causing mutations. Duchenne muscular dystrophy (DMD) is associated with lethal degeneration of cardiac and skeletal muscle caused by more than 3000 different mutations in the X-linked dystrophin gene (DM...

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Autores principales: Long, Chengzu, Li, Hui, Tiburcy, Malte, Rodriguez-Caycedo, Cristina, Kyrychenko, Viktoriia, Zhou, Huanyu, Zhang, Yu, Min, Yi-Li, Shelton, John M., Mammen, Pradeep P. A., Liaw, Norman Y., Zimmermann, Wolfram-Hubertus, Bassel-Duby, Rhonda, Schneider, Jay W., Olson, Eric N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5796795/
https://www.ncbi.nlm.nih.gov/pubmed/29404407
http://dx.doi.org/10.1126/sciadv.aap9004
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author Long, Chengzu
Li, Hui
Tiburcy, Malte
Rodriguez-Caycedo, Cristina
Kyrychenko, Viktoriia
Zhou, Huanyu
Zhang, Yu
Min, Yi-Li
Shelton, John M.
Mammen, Pradeep P. A.
Liaw, Norman Y.
Zimmermann, Wolfram-Hubertus
Bassel-Duby, Rhonda
Schneider, Jay W.
Olson, Eric N.
author_facet Long, Chengzu
Li, Hui
Tiburcy, Malte
Rodriguez-Caycedo, Cristina
Kyrychenko, Viktoriia
Zhou, Huanyu
Zhang, Yu
Min, Yi-Li
Shelton, John M.
Mammen, Pradeep P. A.
Liaw, Norman Y.
Zimmermann, Wolfram-Hubertus
Bassel-Duby, Rhonda
Schneider, Jay W.
Olson, Eric N.
author_sort Long, Chengzu
collection PubMed
description Genome editing with CRISPR/Cas9 is a promising new approach for correcting or mitigating disease-causing mutations. Duchenne muscular dystrophy (DMD) is associated with lethal degeneration of cardiac and skeletal muscle caused by more than 3000 different mutations in the X-linked dystrophin gene (DMD). Most of these mutations are clustered in “hotspots.” There is a fortuitous correspondence between the eukaryotic splice acceptor and splice donor sequences and the protospacer adjacent motif sequences that govern prokaryotic CRISPR/Cas9 target gene recognition and cleavage. Taking advantage of this correspondence, we screened for optimal guide RNAs capable of introducing insertion/deletion (indel) mutations by nonhomologous end joining that abolish conserved RNA splice sites in 12 exons that potentially allow skipping of the most common mutant or out-of-frame DMD exons within or nearby mutational hotspots. We refer to the correction of DMD mutations by exon skipping as myoediting. In proof-of-concept studies, we performed myoediting in representative induced pluripotent stem cells from multiple patients with large deletions, point mutations, or duplications within the DMD gene and efficiently restored dystrophin protein expression in derivative cardiomyocytes. In three-dimensional engineered heart muscle (EHM), myoediting of DMD mutations restored dystrophin expression and the corresponding mechanical force of contraction. Correcting only a subset of cardiomyocytes (30 to 50%) was sufficient to rescue the mutant EHM phenotype to near-normal control levels. We conclude that abolishing conserved RNA splicing acceptor/donor sites and directing the splicing machinery to skip mutant or out-of-frame exons through myoediting allow correction of the cardiac abnormalities associated with DMD by eliminating the underlying genetic basis of the disease.
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spelling pubmed-57967952018-02-05 Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing Long, Chengzu Li, Hui Tiburcy, Malte Rodriguez-Caycedo, Cristina Kyrychenko, Viktoriia Zhou, Huanyu Zhang, Yu Min, Yi-Li Shelton, John M. Mammen, Pradeep P. A. Liaw, Norman Y. Zimmermann, Wolfram-Hubertus Bassel-Duby, Rhonda Schneider, Jay W. Olson, Eric N. Sci Adv Research Articles Genome editing with CRISPR/Cas9 is a promising new approach for correcting or mitigating disease-causing mutations. Duchenne muscular dystrophy (DMD) is associated with lethal degeneration of cardiac and skeletal muscle caused by more than 3000 different mutations in the X-linked dystrophin gene (DMD). Most of these mutations are clustered in “hotspots.” There is a fortuitous correspondence between the eukaryotic splice acceptor and splice donor sequences and the protospacer adjacent motif sequences that govern prokaryotic CRISPR/Cas9 target gene recognition and cleavage. Taking advantage of this correspondence, we screened for optimal guide RNAs capable of introducing insertion/deletion (indel) mutations by nonhomologous end joining that abolish conserved RNA splice sites in 12 exons that potentially allow skipping of the most common mutant or out-of-frame DMD exons within or nearby mutational hotspots. We refer to the correction of DMD mutations by exon skipping as myoediting. In proof-of-concept studies, we performed myoediting in representative induced pluripotent stem cells from multiple patients with large deletions, point mutations, or duplications within the DMD gene and efficiently restored dystrophin protein expression in derivative cardiomyocytes. In three-dimensional engineered heart muscle (EHM), myoediting of DMD mutations restored dystrophin expression and the corresponding mechanical force of contraction. Correcting only a subset of cardiomyocytes (30 to 50%) was sufficient to rescue the mutant EHM phenotype to near-normal control levels. We conclude that abolishing conserved RNA splicing acceptor/donor sites and directing the splicing machinery to skip mutant or out-of-frame exons through myoediting allow correction of the cardiac abnormalities associated with DMD by eliminating the underlying genetic basis of the disease. American Association for the Advancement of Science 2018-01-31 /pmc/articles/PMC5796795/ /pubmed/29404407 http://dx.doi.org/10.1126/sciadv.aap9004 Text en Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC). http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Long, Chengzu
Li, Hui
Tiburcy, Malte
Rodriguez-Caycedo, Cristina
Kyrychenko, Viktoriia
Zhou, Huanyu
Zhang, Yu
Min, Yi-Li
Shelton, John M.
Mammen, Pradeep P. A.
Liaw, Norman Y.
Zimmermann, Wolfram-Hubertus
Bassel-Duby, Rhonda
Schneider, Jay W.
Olson, Eric N.
Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
title Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
title_full Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
title_fullStr Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
title_full_unstemmed Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
title_short Correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
title_sort correction of diverse muscular dystrophy mutations in human engineered heart muscle by single-site genome editing
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5796795/
https://www.ncbi.nlm.nih.gov/pubmed/29404407
http://dx.doi.org/10.1126/sciadv.aap9004
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