| Literature DB >> 25025573 |
Hosouk Joung1, Gwang Hyeon Eom2, Nakwon Choe3, Hye Mi Lee4, Jeong-Hyeon Ko3, Duk-Hwa Kwon1, Yoon Seok Nam1, Hyunki Min1, Sera Shin3, Jeewon Kook1, Young Kuk Cho5, Jeong Chul Kim6, Sang Beom Seo7, Yung Hong Baik8, Kwang-Il Nam9, Hyun Kook10.
Abstract
Skeletal muscle atrophy results from the net loss of muscular proteins and organelles and is caused by pathologic conditions such as nerve injury, immobilization, cancer, and other metabolic diseases. Recently, ubiquitination-mediated degradation of skeletal-muscle-specific transcription factors was shown to be involved in muscle atrophy, although the mechanisms have yet to be defined. Here we report that ret finger protein (RFP), also known as TRIM27, works as an E3 ligase in Pax7-induced degradation of MyoD. Muscle injury induced by sciatic nerve transection up-regulated RFP and RFP physically interacted with both Pax7 and MyoD. RFP and Pax7 synergistically reduced the protein amounts of MyoD but not the mRNA. RFP-induced reduction of MyoD protein was blocked by proteasome inhibitors. The Pax7-induced reduction MyoD was attenuated by RFP siRNA and by MG132, a proteasome inhibitor. RFPΔR, an RFP construct that lacks the RING domain, failed to reduce MyoD amounts. RFP ubiquitinated MyoD, but RFPΔR failed to do so. Forced expression of RFP, but not RFPΔR, enhanced Pax7-induced ubiquitination of MyoD, whereas RFP siRNA blocked the ubiquitination. Sciatic nerve injury-induced muscle atrophy as well the reduction in MyoD was attenuated in RFP knockout mice. Taken together, our results show that RFP works as a novel E3 ligase in the Pax7-mediated degradation of MyoD in response to skeletal muscle atrophy.Entities:
Keywords: MyoD; Pax7; Ret finger protein; Skeletal muscle atrophy; Ubiquitination
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Year: 2014 PMID: 25025573 DOI: 10.1016/j.cellsig.2014.07.006
Source DB: PubMed Journal: Cell Signal ISSN: 0898-6568 Impact factor: 4.315