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Engraftment of embryonic stem cell-derived myogenic progenitors in a dominant model of muscular dystrophy
- Source :
- Experimental neurology. 220(1)
- Publication Year :
- 2009
-
Abstract
- Muscular dystrophies (MDs) consist of a genetically heterogeneous group of disorders, recessive or dominant, characterized by progressive skeletal muscle weakening. To date, no effective treatment is available. Experimental strategies pursuing muscle regeneration through the transplantation of stem cell preparations have brought hope to patients affected by this disorder. Efficacy has been demonstrated in recessive MD models through contribution of wild-type nuclei to the muscle fiber heterokaryon; however, to date, there has been no study investigating the efficacy of a cell therapy in a dominant model of MD. We have recently demonstrated that Pax3-induced embryonic stem (ES) cell-derived myogenic progenitors are able to engraft and improve muscle function in mdx mice, a recessive mouse model for Duchenne MD. To assess whether this therapeutic effect can be extended to a dominant type of muscle disorder, here we transplanted these cells into FRG1 transgenic mice, a dominant model that has been associated with facioscapulohumeral muscular dystrophy. Our results show that Pax3-induced ES-derived myogenic progenitors are capable of significant engraftment after intramuscular or systemic transplantation into Frg1 mice. Analyses of contractile parameters revealed functional improvement in treated muscles of male mice, but not females, which are less severely affected. This study is the first to use Frg1 transgenic mice to assess muscle regeneration as well as to support the use of a cell-based therapy for autosomal dominant types of MD.
- Subjects :
- Genetically modified mouse
Male
Embryonic stem cells
Satellite Cells, Skeletal Muscle
Mice, Transgenic
Biology
Muscle disorder
Muscle Development
Article
Mice
Dominant disease
Developmental Neuroscience
medicine
Facioscapulohumeral muscular dystrophy
Animals
Paired Box Transcription Factors
Regeneration
Progenitor cell
Muscular dystrophy
Muscle, Skeletal
PAX3 Transcription Factor
Muscle differentiation
Genes, Dominant
Transplantation
Sex Characteristics
Pax3
Muscle Weakness
Stem Cells
Microfilament Proteins
FRG1 mice
Skeletal muscle
Nuclear Proteins
RNA-Binding Proteins
Cell Differentiation
Muscular Dystrophy, Animal
medicine.disease
Disease Models, Animal
medicine.anatomical_structure
Treatment Outcome
Neurology
Immunology
Cancer research
Intercellular Signaling Peptides and Proteins
Female
Stem cell
Stem Cell Transplantation
Subjects
Details
- ISSN :
- 10902430
- Volume :
- 220
- Issue :
- 1
- Database :
- OpenAIRE
- Journal :
- Experimental neurology
- Accession number :
- edsair.doi.dedup.....eeed1e20de2cacabf23dbaf8c262085e