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Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene

Mammalian artificial chromosomes have enabled the introduction of extremely large amounts of genetic information into animal cells in an autonomously replicating, nonintegrating format. However, the evaluation of human artificial chromosomes (HACs) as novel tools for curing intractable hereditary di...

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Autores principales: Watanabe, Masahito, Miyamoto, Hitomaru, Okamoto, Kazutoshi, Nakano, Kazuaki, Matsunari, Hitomi, Kazuki, Kanako, Hasegawa, Koki, Uchikura, Ayuko, Takayanagi, Shuko, Umeyama, Kazuhiro, Hiramuki, Yosuke, Kemter, Elisabeth, Klymuik, Nikolai, Kurome, Mayuko, Kessler, Barbara, Wolf, Eckhard, Kazuki, Yasuhiro, Nagashima, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10425850/
https://www.ncbi.nlm.nih.gov/pubmed/37588685
http://dx.doi.org/10.1016/j.omtn.2023.07.021
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author Watanabe, Masahito
Miyamoto, Hitomaru
Okamoto, Kazutoshi
Nakano, Kazuaki
Matsunari, Hitomi
Kazuki, Kanako
Hasegawa, Koki
Uchikura, Ayuko
Takayanagi, Shuko
Umeyama, Kazuhiro
Hiramuki, Yosuke
Kemter, Elisabeth
Klymuik, Nikolai
Kurome, Mayuko
Kessler, Barbara
Wolf, Eckhard
Kazuki, Yasuhiro
Nagashima, Hiroshi
author_facet Watanabe, Masahito
Miyamoto, Hitomaru
Okamoto, Kazutoshi
Nakano, Kazuaki
Matsunari, Hitomi
Kazuki, Kanako
Hasegawa, Koki
Uchikura, Ayuko
Takayanagi, Shuko
Umeyama, Kazuhiro
Hiramuki, Yosuke
Kemter, Elisabeth
Klymuik, Nikolai
Kurome, Mayuko
Kessler, Barbara
Wolf, Eckhard
Kazuki, Yasuhiro
Nagashima, Hiroshi
author_sort Watanabe, Masahito
collection PubMed
description Mammalian artificial chromosomes have enabled the introduction of extremely large amounts of genetic information into animal cells in an autonomously replicating, nonintegrating format. However, the evaluation of human artificial chromosomes (HACs) as novel tools for curing intractable hereditary disorders has been hindered by the limited efficacy of the delivery system. We generated dystrophin gene knockout (DMD-KO) pigs harboring the HAC bearing the entire human DMD via a somatic cell cloning procedure (DYS-HAC-cloned pig). Restored human dystrophin expression was confirmed by immunofluorescence staining in the skeletal muscle of the DYS-HAC-cloned pigs. Viability at the first month postpartum of the DYS-HAC-cloned pigs, including motor function in the hind leg and serum creatinine kinase level, was improved significantly when compared with that in the original DMD-KO pigs. However, decrease in systemic retention of the DYS-HAC vector and limited production of the DMD protein might have caused severe respiratory impairment with general prostration by 3 months postpartum. The results demonstrate that the use of transchromosomic cloned pigs permitted a straightforward estimation of the efficacy of the DYS-HAC carried in affected tissues/organs in a large-animal disease model, providing novel insights into the therapeutic application of exogenous mammalian artificial chromosomes.
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spelling pubmed-104258502023-08-16 Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene Watanabe, Masahito Miyamoto, Hitomaru Okamoto, Kazutoshi Nakano, Kazuaki Matsunari, Hitomi Kazuki, Kanako Hasegawa, Koki Uchikura, Ayuko Takayanagi, Shuko Umeyama, Kazuhiro Hiramuki, Yosuke Kemter, Elisabeth Klymuik, Nikolai Kurome, Mayuko Kessler, Barbara Wolf, Eckhard Kazuki, Yasuhiro Nagashima, Hiroshi Mol Ther Nucleic Acids Original Article Mammalian artificial chromosomes have enabled the introduction of extremely large amounts of genetic information into animal cells in an autonomously replicating, nonintegrating format. However, the evaluation of human artificial chromosomes (HACs) as novel tools for curing intractable hereditary disorders has been hindered by the limited efficacy of the delivery system. We generated dystrophin gene knockout (DMD-KO) pigs harboring the HAC bearing the entire human DMD via a somatic cell cloning procedure (DYS-HAC-cloned pig). Restored human dystrophin expression was confirmed by immunofluorescence staining in the skeletal muscle of the DYS-HAC-cloned pigs. Viability at the first month postpartum of the DYS-HAC-cloned pigs, including motor function in the hind leg and serum creatinine kinase level, was improved significantly when compared with that in the original DMD-KO pigs. However, decrease in systemic retention of the DYS-HAC vector and limited production of the DMD protein might have caused severe respiratory impairment with general prostration by 3 months postpartum. The results demonstrate that the use of transchromosomic cloned pigs permitted a straightforward estimation of the efficacy of the DYS-HAC carried in affected tissues/organs in a large-animal disease model, providing novel insights into the therapeutic application of exogenous mammalian artificial chromosomes. American Society of Gene & Cell Therapy 2023-07-23 /pmc/articles/PMC10425850/ /pubmed/37588685 http://dx.doi.org/10.1016/j.omtn.2023.07.021 Text en © 2023 The Authors https://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 Original Article
Watanabe, Masahito
Miyamoto, Hitomaru
Okamoto, Kazutoshi
Nakano, Kazuaki
Matsunari, Hitomi
Kazuki, Kanako
Hasegawa, Koki
Uchikura, Ayuko
Takayanagi, Shuko
Umeyama, Kazuhiro
Hiramuki, Yosuke
Kemter, Elisabeth
Klymuik, Nikolai
Kurome, Mayuko
Kessler, Barbara
Wolf, Eckhard
Kazuki, Yasuhiro
Nagashima, Hiroshi
Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
title Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
title_full Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
title_fullStr Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
title_full_unstemmed Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
title_short Phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
title_sort phenotypic features of dystrophin gene knockout pigs harboring a human artificial chromosome containing the entire dystrophin gene
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10425850/
https://www.ncbi.nlm.nih.gov/pubmed/37588685
http://dx.doi.org/10.1016/j.omtn.2023.07.021
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