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Role of miR-200c in Myogenic Differentiation Impairment via p66Shc: Implication in Skeletal Muscle Regeneration of Dystrophic mdx Mice.
- Source :
-
Oxidative medicine and cellular longevity [Oxid Med Cell Longev] 2018 Feb 13; Vol. 2018, pp. 4814696. Date of Electronic Publication: 2018 Feb 13 (Print Publication: 2018). - Publication Year :
- 2018
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Abstract
- Duchenne muscular dystrophy (DMD) is a genetic disease associated with mutations of Dystrophin gene that regulate myofiber integrity and muscle degeneration, characterized by oxidative stress increase. We previously published that reactive oxygen species (ROS) induce miR-200c that is responsible for apoptosis and senescence. Moreover, we demonstrated that miR-200c increases ROS production and phosphorylates p66Shc in Ser-36. p66Shc plays an important role in muscle differentiation; we previously showed that p66Shc <superscript>-/-</superscript> muscle satellite cells display lower oxidative stress levels and higher proliferation rate and differentiated faster than wild-type ( wt ) cells. Moreover, myogenic conversion, induced by MyoD overexpression, is more efficient in p66Shc <superscript>-/-</superscript> fibroblasts compared to wt cells. Herein, we report that miR-200c overexpression in cultured myoblasts impairs skeletal muscle differentiation. Further, its overexpression in differentiated myotubes decreases differentiation indexes. Moreover, anti-miR-200c treatment ameliorates myogenic differentiation. In keeping, we found that miR-200c and p66Shc Ser-36 phosphorylation increase in mdx muscles. In conclusion, miR-200c inhibits muscle differentiation, whereas its inhibition ameliorates differentiation and its expression levels are increased in mdx mice and in differentiated human myoblasts of DMD. Therefore, miR-200c might be responsible for muscle wasting and myotube loss, most probably via a p66Shc-dependent mechanism in a pathological disease such as DMD.
- Subjects :
- Animals
Cell Line
Mice, Inbred C57BL
Mice, Inbred mdx
MicroRNAs genetics
Muscle Fibers, Skeletal metabolism
Phosphorylation
Phosphoserine metabolism
Cell Differentiation genetics
MicroRNAs metabolism
Muscle Development genetics
Muscle, Skeletal physiopathology
Muscular Dystrophy, Animal physiopathology
Regeneration
Src Homology 2 Domain-Containing, Transforming Protein 1 metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1942-0994
- Volume :
- 2018
- Database :
- MEDLINE
- Journal :
- Oxidative medicine and cellular longevity
- Publication Type :
- Academic Journal
- Accession number :
- 29636844
- Full Text :
- https://doi.org/10.1155/2018/4814696