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MyoD-induced expression of p21 inhibits cyclin-dependent kinase activity upon myocyte terminal differentiation
1Division of Cardiovascular Research, St. Elizabeth's Medical Center, Boston, Massachusetts 02135, USA.
Abstract:
The terminal differentiation of C2C12 skeletal muscle cells involves the activation of unique sets of genes and an irreversible withdrawal from the cell cycle. This process is associated with a decrease in cdk2 activity in cell extracts. The decrease in cdk2 activity correlates with diminished levels of cdk2 and cyclin A and with a marked induction of the p21 cyclin-dependent kinase (cdk) inhibitor. The upregulation of p21 occurred at the levels of mRNA and protein, and p21 formed a complex with the cyclin kinases in myotubes. Further, the immunodepletion of p21 from myotube extracts neutralized the heat-stable cdk2 inhibitory activity that was induced upon myogenic differentiation. The levels of p21 mRNA, protein, and activity remained constant in myotubes when they were reexposed to mitogen-rich growth medium, indicating that permanent changes in the cell's genetic program contribute to its sustained expression following terminal differentiation. Indeed, 10T1/2 fibroblasts transformed with the myogenic factor MyoD, but not the parental multipotent cells, upregulated p21 transcript levels when induced to differentiate by serum withdrawal, demonstrating that the upregulation is an integral feature of myogenic commitment and differentiation. The functional consequences of this upregulation were indicated by ectopically expressing p21 in myoblasts; this was sufficient for cell cycle arrest in mitogen-rich growth medium. The induction and sustained expression of p21 appears to be a contributory mechanism by which myocytes irreversibly exit the cell cycle upon terminal differentiation.
Insights
Terminal differentiation of skeletal muscle cells involves irreversible cell cycle exit, driven by the cyclin-dependent kinase inhibitor p21. This process ensures permanent cell cycle arrest during muscle development.
Area of Science:
- Cell Biology
- Molecular Biology
- Muscle Development
Background:
- Skeletal muscle cell differentiation involves cell cycle withdrawal and gene expression changes.
- Cyclin-dependent kinase 2 (cdk2) activity decreases during C2C12 cell differentiation.
Purpose of the Study:
- To investigate the role of p21 cyclin-dependent kinase (cdk) inhibitor in skeletal muscle cell terminal differentiation.
- To understand the mechanisms underlying irreversible cell cycle exit in myocytes.
Main Methods:
- Analysis of cdk2 activity, protein levels (cdk2, cyclin A), and p21 expression (mRNA, protein) in differentiating C2C12 cells.
- Immunodepletion of p21 from cell extracts.
- Ectopic expression of p21 in myoblasts.
- Studies on MyoD-transformed fibroblasts and parental cells.
Main Results:
- Terminal differentiation of C2C12 cells correlated with decreased cdk2 activity and increased p21 levels.
- p21 formed complexes with cyclin kinases, and its depletion reversed inhibitory activity.
- p21 expression was sustained even upon re-exposure to growth medium.
- MyoD-induced differentiation upregulated p21, and ectopic p21 expression caused cell cycle arrest.
Conclusions:
- p21 upregulation is integral to myogenic commitment and differentiation.
- The induction and sustained expression of p21 contribute to irreversible cell cycle exit in differentiating myocytes.