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      Autologous Cell Therapy Approach for Duchenne Muscular Dystrophy using PiggyBac Transposons and Mesoangioblasts

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          Abstract

          Duchenne muscular dystrophy (DMD) is a lethal muscle-wasting disease currently without cure. We investigated the use of the PiggyBac transposon for full-length dystrophin expression in murine mesoangioblast (MABs) progenitor cells. DMD murine MABs were transfected with transposable expression vectors for full-length dystrophin and transplanted intramuscularly or intra-arterially into mdx/SCID mice. Intra-arterial delivery indicated that the MABs could migrate to regenerating muscles to mediate dystrophin expression. Intramuscular transplantation yielded dystrophin expression in 11%–44% of myofibers in murine muscles, which remained stable for the assessed period of 5 months. The satellite cells isolated from transplanted muscles comprised a fraction of MAB-derived cells, indicating that the transfected MABs may colonize the satellite stem cell niche. Transposon integration site mapping by whole-genome sequencing indicated that 70% of the integrations were intergenic, while none was observed in an exon. Muscle resistance assessment by atomic force microscopy indicated that 80% of fibers showed elasticity properties restored to those of wild-type muscles. As measured in vivo, transplanted muscles became more resistant to fatigue. This study thus provides a proof-of-principle that PiggyBac transposon vectors may mediate full-length dystrophin expression as well as functional amelioration of the dystrophic muscles within a potential autologous cell-based therapeutic approach of DMD.

          Abstract

          This study reports full-length dystrophin expression from PiggyBac transposon vectors transfected in murine mesoangioblast progenitor cells (MAB) as a potential therapeutic autologous cell transplantation approach. Intramuscular MAB transplantation into dmd mice yielded stable dystrophin expression, restored a normal resistance for 80% of the myofibers, and increased muscle resistance to fatigue.

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          Author and article information

          Contributors
          Journal
          Mol Ther
          Mol. Ther
          Molecular Therapy
          American Society of Gene & Cell Therapy
          1525-0016
          1525-0024
          04 April 2018
          02 February 2018
          : 26
          : 4
          : 1093-1108
          Affiliations
          [1 ]Institute of Biotechnology, University of Lausanne, Lausanne, Switzerland
          [2 ]Department of Pathology and Immunology, Faculty of Medicine, University of Geneva, 1211 Geneva, Switzerland
          [3 ]Institute of Nuclear Physics, Polish Academy of Sciences, 31342 Krakow, Poland
          [4 ]Swiss Institute of Bioinformatics, Lausanne, Switzerland
          [5 ]Department of Biosciences, University of Milan, 20133 Milan, Italy
          [6 ]School of Pharmaceutical Sciences, University of Geneva and University of Lausanne, 1211 Geneva, Switzerland
          Author notes
          []Corresponding author: Nicolas Mermod, Laboratory of Molecular Biotechnology, Station 6, FSB-ISP-EPFL, 1015 Lausanne, Switzerland. nicolas.mermod@ 123456unil.ch
          [7]

          Present address: Department of Chemistry and Applied Biosciences, ETH Zurich, 8093 Zürich, Switzerland

          Article
          PMC6079556 PMC6079556 6079556 S1525-0016(18)30028-5
          10.1016/j.ymthe.2018.01.021
          6079556
          29503200
          92fefad5-af67-4f82-9d72-a91ae6b752f4
          © 2018 The American Society of Gene and Cell Therapy.
          History
          : 21 June 2017
          : 29 January 2018
          Categories
          Original Article

          dystrophin,muscular dystrophies,transposon vectors,mesoangioblasts,Duchenne muscular dystrophy,cell therapy,muscle fatigue

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