| Literature DB >> 34710825 |
Taro Umezu1, Satoshi Nakamura2, Yuiko Sato3, Tami Kobayashi3, Eri Ito4, Takaya Abe5, Mari Kaneko5, Masatoshi Nomura6, Akihiko Yoshimura7, Akihito Oya1, Morio Matsumoto1, Masaya Nakamura1, Arihiko Kanaji1, Takeshi Miyamoto8.
Abstract
Skeletal muscle is known to regulate bone homeostasis through muscle-bone interaction, although factors that control this activity remain unclear. Here, we newly established Smad3-flox mice, and then generated skeletal muscle-specific Smad2/Smad3 double conditional knockout mice (DcKO) by crossing Smad3-flox with skeletal muscle-specific Ckmm Cre and Smad2-flox mice. We show that immobilization-induced gastrocnemius muscle atrophy occurring due to sciatic nerve denervation was partially but significantly inhibited in DcKO mice, suggesting that skeletal muscle cell-intrinsic Smad2/3 is required for immobilization-induced muscle atrophy. Also, tibial bone atrophy seen after sciatic nerve denervation was partially but significantly inhibited in DcKO mice. Bone formation rate in wild-type mouse tibia was significantly inhibited by immobilization, but inhibition was abrogated in DcKO mice. We propose that skeletal muscle regulates immobilization-induced bone atrophy via Smad2/3, and Smad2/3 represent potential therapeutic targets to prevent both immobilization-induced bone and muscle atrophy.Entities:
Keywords: Atrophy; Bone; Immobilization; Skeletal muscle; Smad2; Smad3
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Year: 2021 PMID: 34710825 DOI: 10.1016/j.bbrc.2021.10.043
Source DB: PubMed Journal: Biochem Biophys Res Commun ISSN: 0006-291X Impact factor: 3.575