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Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features

Genome editing represents a powerful tool to treat inherited disorders. Highly specific endonucleases induce a DNA double strand break near the mutant site, which is subsequently repaired by cellular DNA repair mechanisms that involve the presence of a wild type template DNA. In vivo applications of...

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Autores principales: Schlegel, J., Hoffmann, J., Röll, D., Müller, B., Günther, S., Zhang, W., Janise, A., Vössing, C., Fühler, B, Neidhardt, J., Khanna, H., Lorenz, B., Stieger, K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6294733/
https://www.ncbi.nlm.nih.gov/pubmed/30213530
http://dx.doi.org/10.1016/j.trsl.2018.08.006
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author Schlegel, J.
Hoffmann, J.
Röll, D.
Müller, B.
Günther, S.
Zhang, W.
Janise, A.
Vössing, C.
Fühler, B
Neidhardt, J.
Khanna, H.
Lorenz, B.
Stieger, K.
author_facet Schlegel, J.
Hoffmann, J.
Röll, D.
Müller, B.
Günther, S.
Zhang, W.
Janise, A.
Vössing, C.
Fühler, B
Neidhardt, J.
Khanna, H.
Lorenz, B.
Stieger, K.
author_sort Schlegel, J.
collection PubMed
description Genome editing represents a powerful tool to treat inherited disorders. Highly specific endonucleases induce a DNA double strand break near the mutant site, which is subsequently repaired by cellular DNA repair mechanisms that involve the presence of a wild type template DNA. In vivo applications of this strategy are still rare, in part due to the absence of appropriate animal models carrying human disease mutations and knowledge of the efficient targeting of endonucleases. Here we report the generation and characterization of a new mouse model for X-linked retinitis pigmentosa (XLRP) carrying a point mutation in the mutational hotspot exon ORF15 of the RPGR gene as well as a recognition site for the homing endonuclease I-SceI. Presence of the genomic modifications was verified at the RNA and protein levels. The mutant protein was observed at low levels. Optical coherence tomography studies revealed a slowly progressive retinal degeneration with photoreceptor loss starting at 9 months of age, paralleling the onset of functional deficits as seen in the electroretinogram. Early changes to the outer retinal bands can be used as biomarker during treatment applications. We further show for the first time efficient targeting using the I-SceI enzyme at the genomic locus in a proof of concept in photoreceptors following adeno-associated virus mediated gene transfer in vivo. Taken together, our studies not only provide a human-XLRP disease model but also act as a platform to design genome editing technology for retinal degenerative diseases using the currently available endonucleases.
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spelling pubmed-62947332019-01-01 Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features Schlegel, J. Hoffmann, J. Röll, D. Müller, B. Günther, S. Zhang, W. Janise, A. Vössing, C. Fühler, B Neidhardt, J. Khanna, H. Lorenz, B. Stieger, K. Transl Res Article Genome editing represents a powerful tool to treat inherited disorders. Highly specific endonucleases induce a DNA double strand break near the mutant site, which is subsequently repaired by cellular DNA repair mechanisms that involve the presence of a wild type template DNA. In vivo applications of this strategy are still rare, in part due to the absence of appropriate animal models carrying human disease mutations and knowledge of the efficient targeting of endonucleases. Here we report the generation and characterization of a new mouse model for X-linked retinitis pigmentosa (XLRP) carrying a point mutation in the mutational hotspot exon ORF15 of the RPGR gene as well as a recognition site for the homing endonuclease I-SceI. Presence of the genomic modifications was verified at the RNA and protein levels. The mutant protein was observed at low levels. Optical coherence tomography studies revealed a slowly progressive retinal degeneration with photoreceptor loss starting at 9 months of age, paralleling the onset of functional deficits as seen in the electroretinogram. Early changes to the outer retinal bands can be used as biomarker during treatment applications. We further show for the first time efficient targeting using the I-SceI enzyme at the genomic locus in a proof of concept in photoreceptors following adeno-associated virus mediated gene transfer in vivo. Taken together, our studies not only provide a human-XLRP disease model but also act as a platform to design genome editing technology for retinal degenerative diseases using the currently available endonucleases. Elsevier 2019-01 /pmc/articles/PMC6294733/ /pubmed/30213530 http://dx.doi.org/10.1016/j.trsl.2018.08.006 Text en © The Authors. Published by Mosby, Inc. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Schlegel, J.
Hoffmann, J.
Röll, D.
Müller, B.
Günther, S.
Zhang, W.
Janise, A.
Vössing, C.
Fühler, B
Neidhardt, J.
Khanna, H.
Lorenz, B.
Stieger, K.
Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features
title Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features
title_full Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features
title_fullStr Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features
title_full_unstemmed Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features
title_short Toward genome editing in X-linked RP—development of a mouse model with specific treatment relevant features
title_sort toward genome editing in x-linked rp—development of a mouse model with specific treatment relevant features
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6294733/
https://www.ncbi.nlm.nih.gov/pubmed/30213530
http://dx.doi.org/10.1016/j.trsl.2018.08.006
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