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Updated: Aug 13, 2026

Isolation of Quiescent Stem Cell Populations from Individual Skeletal Muscles
Published on: December 9, 2022
Myostatin imposes reversible quiescence on embryonic muscle precursors
Helge Amthor1, Anthony Otto, Raymond Macharia
1Department of Veterinary Basic Sciences, Royal Veterinary College, London, UK.
Abstract:
We have previously shown that Myostatin, a member of the transforming growth factor beta (TFG-beta) family of signalling molecules, is expressed in developing muscle, and that treatment with recombinant Myostatin inhibited the expression of key myogenic transcription factors during chick embryogenesis. In this study, we followed the fate of muscle precursors after exposure to Myostatin. We report that in contrast to the down-regulation in expression of Pax-3, Myf-5, MyoD, and Myogenin, expression of Pax-7 was maintained. However, Myostatin completely inhibited cell division in the Pax-7-expressing cells. The inhibitory effect of Myostatin was reversible, as upon withdrawal myogenic cells re-initiated cell proliferation as well as expression of Pax-3 and MyoD. These results led us to investigate the temporal and spatial distribution of quiescent muscle precursors during development. To this end, we analysed distribution and mitotic behaviour of Pax-7-expressing cells during muscle development. Our studies revealed two populations of Pax-7-expressing cells, one that proliferated and incorporated BrdU, whilst the other did not. At early developmental stages, a high proportion of Pax-7-expressing cells proliferated, but there was a significant number of non-dividing Pax-7-expressing cells intermingled with differentiated muscle. Proliferating precursors became less frequent as development proceeded and at late fetal stages all Pax-7-expressing cells were mitotically quiescent. We suggest that Myostatin is an important signalling molecule responsible for imposing quiescence upon myogenic precursors during embryonic and foetal development.
Insights
Myostatin signaling in developing muscle halts cell division in Pax-7 expressing precursors, but this effect is reversible. Myostatin plays a key role in regulating muscle precursor quiescence during embryonic and fetal development.
Area of Science:
- Muscle development biology
- Cell signaling pathways
- Developmental biology
Background:
- Myostatin, a TGF-beta family member, is expressed in developing muscle.
- Previous studies showed Myostatin inhibits myogenic transcription factors in chick embryos.
Purpose of the Study:
- To investigate the fate of muscle precursors after Myostatin exposure.
- To analyze the temporal and spatial distribution of quiescent muscle precursors during development.
Main Methods:
- Treatment of chick embryos with recombinant Myostatin.
- Analysis of myogenic transcription factor expression (Pax-3, Myf-5, MyoD, Myogenin, Pax-7).
- Cell proliferation assays using BrdU incorporation and mitotic behavior analysis of Pax-7-expressing cells.
Main Results:
- Myostatin down-regulated Pax-3, Myf-5, MyoD, and Myogenin, but maintained Pax-7 expression.
- Myostatin completely inhibited cell division in Pax-7-expressing cells, an effect that was reversible upon withdrawal.
- Two populations of Pax-7-expressing cells were identified: proliferating and quiescent. The proportion of proliferating cells decreased with developmental stage, with all cells quiescent by late fetal stages.
Conclusions:
- Myostatin is crucial for inducing quiescence in myogenic precursors during embryonic and fetal development.
- Pax-7 expression is maintained in quiescent muscle precursors.
- Myostatin's reversible inhibitory effect on cell division highlights its regulatory role in muscle development.
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