Literature DB >> 26149774

Jmjd2C increases MyoD transcriptional activity through inhibiting G9a-dependent MyoD degradation.

Eun-Shil Jung1, Ye-Ji Sim1, Hoe-Su Jeong1, Su-Jin Kim1, Ye-Jin Yun1, Joo-Hoon Song2, Su-Hee Jeon3, Chungyoul Choe4, Kyung-Tae Park5, Chang-Hoon Kim6, Kye-Seong Kim7.   

Abstract

Skeletal muscle cell differentiation requires a family of proteins called myogenic regulatory factors (MRFs) to which MyoD belongs. The activity of MyoD is under epigenetic regulation, however, the molecular mechanism by which histone KMTs and KDMs regulate MyoD transcriptional activity through methylation remains to be determined. Here we provide evidence for a unique regulatory mechanism of MyoD transcriptional activity through demethylation by Jmjd2C demethylase whose level increases during muscle differentiation. G9a decreases MyoD stability via methylation-dependent MyoD ubiquitination. Jmjd2C directly associates with MyoD in vitro and in vivo to demethylate and stabilize MyoD. The hypo-methylated MyoD due to Jmjd2C is significantly more stable than hyper-methylated MyoD by G9a. Cul4/Ddb1/Dcaf1 pathway is essential for the G9a-mediated MyoD degradation in myoblasts. By the stabilization of MyoD, Jmjd2C increases myogenic conversion of mouse embryonic fibroblasts and MyoD transcriptional activity with erasing repressive H3K9me3 level at the promoter of MyoD target genes. Collectively, Jmjd2C increases MyoD transcriptional activity to facilitate skeletal muscle differentiation by increasing MyoD stability through inhibiting G9a-dependent MyoD degradation.
Copyright © 2015 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  G9a; Jmjd2C; Methylation-dependent MyoD degradation; Skeletal muscle differentiation

Mesh:

Substances:

Year:  2015        PMID: 26149774     DOI: 10.1016/j.bbagrm.2015.07.001

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  18 in total

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5.  KDM4A regulates myogenesis by demethylating H3K9me3 of myogenic regulatory factors.

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9.  G9a promotes proliferation and inhibits cell cycle exit during myogenic differentiation.

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Review 10.  Histone demethylases in chromatin biology and beyond.

Authors:  Emilia Dimitrova; Anne H Turberfield; Robert J Klose
Journal:  EMBO Rep       Date:  2015-11-12       Impact factor: 8.807

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