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Role of miR-200c in Myogenic Differentiation Impairment via p66Shc: Implication in Skeletal Muscle Regeneration of Dystrophic mdx Mice.

Authors :
D'Agostino M
Torcinaro A
Madaro L
Marchetti L
Sileno S
Beji S
Salis C
Proietti D
Imeneo G
C Capogrossi M
De Santa F
Magenta A
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

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.

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