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Publication : The long noncoding RNA <i>Meg3</i> regulates myoblast plasticity and muscle regeneration through epithelial-mesenchymal transition.

First Author  Dill TL Year  2021
Journal  Development Volume  148
Issue  2 PubMed ID  33298462
Mgi Jnum  J:301548 Mgi Id  MGI:6505241
Doi  10.1242/dev.194027 Citation  Dill TL, et al. (2021) The long noncoding RNA Meg3 regulates myoblast plasticity and muscle regeneration through epithelial-mesenchymal transition. Development 148(2):dev194027
abstractText  Formation of skeletal muscle is among the most striking examples of cellular plasticity in animal tissue development, and while muscle progenitor cells are reprogrammed by epithelial-mesenchymal transition (EMT) to migrate during embryonic development, the regulation of EMT in post-natal myogenesis remains poorly understood. Here, we demonstrate that the long noncoding RNA (lncRNA) Meg3 regulates EMT in myoblast differentiation and skeletal muscle regeneration. Chronic inhibition of Meg3 in C2C12 myoblasts induced EMT, and suppressed cell state transitions required for differentiation. Furthermore, adenoviral Meg3 knockdown compromised muscle regeneration, which was accompanied by abnormal mesenchymal gene expression and interstitial cell proliferation. Transcriptomic and pathway analyses of Meg3-depleted C2C12 myoblasts and injured skeletal muscle revealed a significant dysregulation of EMT-related genes, and identified TGFbeta as a key upstream regulator. Importantly, inhibition of TGFbetaR1 and its downstream effectors, and the EMT transcription factor Snai2, restored many aspects of myogenic differentiation in Meg3-depleted myoblasts in vitro We further demonstrate that reduction of Meg3-dependent Ezh2 activity results in epigenetic alterations associated with TGFbeta activation. Thus, Meg3 regulates myoblast identity to facilitate progression into differentiation.
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