Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 4 de 4
Filter
Add more filters










Database
Language
Publication year range
1.
Stem Cells ; 2024 Jul 08.
Article in English | MEDLINE | ID: mdl-38975693

ABSTRACT

Muscle regeneration depends on muscle stem cell (MuSC) activity. Myogenic regulatory factors, including myoblast determination protein 1 (MyoD), regulate the fate transition of MuSCs. However, the direct target of MYOD in the process is not completely clear. Using previously established MyoD knock-in (MyoD-KI) mice, we revealed that MyoD targets dual-specificity phosphatase (Dusp) 13 and Dusp27. In Dusp13:Dusp27 double knock-out (DKO) mice, the ability for muscle regeneration after injury was reduced. Moreover, single-cell RNA sequencing of MyoD-high expressing MuSCs from MyoD-KI mice revealed that Dusp13 and Dusp27 are expressed only in specific populations within MyoD-high MuSCs, which also express Myogenin. Overexpressing Dusp13 in MuSCs causes premature muscle differentiation. Thus, we propose a model where DUSP13 and DUSP27 contribute to the fate transition of MuSCs from proliferation to differentiation during myogenesis.

2.
Commun Biol ; 6(1): 424, 2023 04 21.
Article in English | MEDLINE | ID: mdl-37085700

ABSTRACT

Skeletal muscle is sensitive to gravitational alterations. We recently developed a multiple artificial-gravity research system (MARS), which can generate gravity ranging from microgravity to Earth gravity (1 g) in space. Using the MARS, we studied the effects of three different gravitational levels (microgravity, lunar gravity [1/6 g], and 1 g) on the skeletal muscle mass and myofiber constitution in mice. All mice survived and returned to Earth, and skeletal muscle was collected two days after landing. We observed that microgravity-induced soleus muscle atrophy was prevented by lunar gravity. However, lunar gravity failed to prevent the slow-to-fast myofiber transition in the soleus muscle in space. These results suggest that lunar gravity is enough to maintain proteostasis, but a greater gravitational force is required to prevent the myofiber type transition. Our study proposes that different gravitational thresholds may be required for skeletal muscle adaptation.


Subject(s)
Muscular Atrophy , Weightlessness , Mice , Animals , Muscular Atrophy/prevention & control , Muscle, Skeletal/physiology , Weightlessness/adverse effects , Moon
3.
Cell Rep ; 42(4): 112289, 2023 04 25.
Article in English | MEDLINE | ID: mdl-36952339

ABSTRACT

Myofibers are broadly characterized as fatigue-resistant slow-twitch (type I) fibers and rapidly fatiguing fast-twitch (type IIa/IIx/IIb) fibers. However, the molecular regulation of myofiber type is not entirely understood; particularly, information on regulators of fast-twitch muscle is scarce. Here, we demonstrate that the large Maf transcription factor family dictates fast type IIb myofiber specification in mice. Remarkably, the ablation of three large Mafs leads to the drastic loss of type IIb myofibers, resulting in enhanced endurance capacity and the reduction of muscle force. Conversely, the overexpression of each large Maf in the type I soleus muscle induces type IIb myofibers. Mechanistically, a large Maf directly binds to the Maf recognition element on the promoter of myosin heavy chain 4, which encodes the type IIb myosin heavy chain, driving its expression. This work identifies the large Maf transcription factor family as a major regulator for fast type IIb muscle determination.


Subject(s)
Muscle Fibers, Fast-Twitch , Myosin Heavy Chains , Mice , Animals , Myosin Heavy Chains/genetics , Myosin Heavy Chains/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Muscle, Skeletal/metabolism , Maf Transcription Factors, Large/metabolism , Proto-Oncogene Proteins c-maf/metabolism
4.
Sci Rep ; 11(1): 9168, 2021 04 28.
Article in English | MEDLINE | ID: mdl-33911096

ABSTRACT

Spaceflight causes a decrease in skeletal muscle mass and strength. We set two murine experimental groups in orbit for 35 days aboard the International Space Station, under artificial earth-gravity (artificial 1 g; AG) and microgravity (µg; MG), to investigate whether artificial 1 g exposure prevents muscle atrophy at the molecular level. Our main findings indicated that AG onboard environment prevented changes under microgravity in soleus muscle not only in muscle mass and fiber type composition but also in the alteration of gene expression profiles. In particular, transcriptome analysis suggested that AG condition could prevent the alterations of some atrophy-related genes. We further screened novel candidate genes to reveal the muscle atrophy mechanism from these gene expression profiles. We suggest the potential role of Cacng1 in the atrophy of myotubes using in vitro and in vivo gene transductions. This critical project may accelerate the elucidation of muscle atrophy mechanisms.


Subject(s)
Gene Expression Regulation , Muscle, Skeletal/physiology , Muscular Atrophy/genetics , Weightlessness , Adaptation, Biological/genetics , Animals , Calcium Channels/genetics , Cell Line , Gene Expression Profiling , Male , Mice, Inbred C57BL , Muscle Fibers, Skeletal/physiology , Muscle, Skeletal/physiopathology , Space Flight
SELECTION OF CITATIONS
SEARCH DETAIL
...