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Elevated cyclins and cyclin-dependent kinase activity in the rhabdomyosarcoma cell line RD
E S Knudsen1, C Pazzagli, T L Born
1Department of Medicine, Cancer Center, University of California at San Diego, School of Medicine, La Jolla 92093-0684, USA.
Abstract:
An important early event in the differentiation of skeletal muscle cells is exit from the cell cycle, after which full expression of the muscle phenotype occurs. Rhabdomyosarcoma (RMS), a tumor of skeletal muscle origin, expresses a number of muscle-specific proteins, including MyoD; however, these cells fail to arrest or differentiate when cultured in differentiation medium (DM). To determine the basis for the failure of RMS cells to differentiate or arrest, we studied the molecular response of the embryonal RMS cell line, RD, to culture in DM. Under these conditions, the retinoblastoma protein (RB) was primarily in the hyperphosphorylated state. This is in contrast to myoblasts cultured in DM, in which the hypophosphorylated form of RB is exclusively present. Measurements of the expression and activities of cyclin-dependent kinases (cdks) cdk2 and cdk4 indicated that RD cells maintained higher levels than do myoblasts, and the activity and abundance of these proteins did not significantly decrease upon culture in DM in RD cells, as they did in myoblasts. Similarly, elevated expression of cyclins D1, E, and A was observed in RD cells. Interestingly, cdk inhibitors are expressed in RD cells, with p16ink4 expression markedly elevated relative to myoblasts. Ectopic expression of p21cip1, p16ink4, or p27kip1 caused a growth arrest of RD cells but not detectable expression of a myogenic marker. Furthermore, a constitutively active RB protein could also inhibit the growth of RD cells without inducing myogenic differentiation. Taken together, these data suggest that the elevated levels of cdk2 and/or cdk4 observed in RD cells contribute to the inability of RD cells to growth arrest when cultured in DM but that these activities alone are not responsible for the failure of RD cells to differentiate.
Insights
Rhabdomyosarcoma cells fail to differentiate due to high cyclin-dependent kinase (CDK) levels, preventing cell cycle exit. CDK inhibitors and retinoblastoma protein (RB) can halt growth but not restore muscle cell differentiation.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Skeletal muscle differentiation requires cell cycle exit.
- Rhabdomyosarcoma (RMS) cells, despite expressing muscle proteins, fail to differentiate in culture.
- Understanding RMS cell cycle regulation is crucial for targeting this cancer.
Purpose of the Study:
- To investigate the molecular mechanisms behind the failure of embryonal RMS cells (RD cell line) to arrest and differentiate.
- To analyze the cell cycle regulatory proteins, including retinoblastoma protein (RB) and cyclin-dependent kinases (CDKs), in RD cells cultured in differentiation medium (DM).
Main Methods:
- Cultured RD cells and primary myoblasts in differentiation medium (DM).
- Assessed retinoblastoma protein (RB) phosphorylation status.
- Measured expression and activity of cyclin-dependent kinases (CDKs) cdk2 and cdk4, and cyclins D1, E, and A.
- Evaluated expression of CDK inhibitors (p21cip1, p16ink4, p27kip1).
- Performed ectopic expression of CDK inhibitors and a constitutively active RB protein.
Main Results:
- RD cells maintained hyperphosphorylated RB in DM, unlike myoblasts with hypophosphorylated RB.
- RD cells exhibited higher and sustained levels/activity of cdk2 and cdk4 compared to myoblasts.
- Elevated expression of cyclins D1, E, and A was observed in RD cells.
- CDK inhibitors (p16ink4, p21cip1, p27kip1) were expressed in RD cells.
- Ectopic expression of CDK inhibitors or active RB halted RD cell growth but did not induce myogenic differentiation.
Conclusions:
- Elevated cdk2 and/or cdk4 activity contributes to the inability of RD cells to growth arrest in DM.
- While RB and CDK pathways are dysregulated, they alone do not fully explain the failure of RD cells to differentiate.
- Further investigation into other factors controlling myogenic differentiation in RMS is warranted.