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Control of cell cycle gene expression in bone development and during c-Fos-induced osteosarcoma formation
A Sunters1, J McCluskey, A E Grigoriadis
1Department of Orthodontics, UMDS Guy's Hospital, London, United Kingdom.
Abstract:
We have used c-Fos transgenic mice which develop osteosarcomas to determine the expression patterns of cyclins, cyclin-dependent kinases (CDKs), and cyclin-dependent kinase inhibitors (CKIs) in different bone cell populations in order to define the potential mechanisms of c-Fos transformation. Immunohistochemical analysis in embryonic and early postnatal bone demonstrated that cyclin E and its kinase partner CDK2 were expressed specifically in bone-forming osteoblasts. Cyclin D1 expression was absent despite high levels of CDK4 and CDK6, and the CKI p27 was expressed in chondrocytes, osteoclasts, and at lower levels in osteoblasts. Following activation of the c-fos transgene in vivo and before overt tumor formation, cyclin D1 expression increased dramatically and was colocalized with exogenous c-Fos protein specifically in osteoblasts and chondrocytes, but not in osteoclasts. Prolonged activation of c-Fos resulted in osteosarcoma formation wherein the levels of cyclin D1, cyclin E, and CDKs 2, 4, and 6 were high in a wide spectrum of malignant cell types, especially in transformed osteoblasts. The CKI p27 was expressed at very high levels in bone-resorbing osteoclasts, and to a lesser extent in chondrocytes and osteoblasts. These in vivo observations suggest that cyclin D1 may be a target for c-Fos action and that elevation of cyclin D1 in osteoblasts which already express cyclin E/CDK2 and the cyclin D1 partners CDKs-4 and 6, may predispose cells to uncontrolled cell growth leading to osteosarcoma development. This study implicates altered cell cycle control as a potential mechanism through which c-Fos causes osteoblast transformation and bone tumor formation.
Insights
The c-Fos oncogene drives osteosarcoma by altering cell cycle regulators, specifically increasing cyclin D1 in osteoblasts. This dysregulation of cell cycle control promotes uncontrolled growth and bone tumor formation.
Area of Science:
- Molecular Biology
- Oncology
- Skeletal Biology
Background:
- Osteosarcomas are bone tumors often linked to genetic alterations.
- The c-Fos oncogene is implicated in osteosarcoma development.
- Understanding cell cycle regulation is crucial for defining oncogenic mechanisms.
Purpose of the Study:
- To investigate the expression patterns of cell cycle regulators (cyclins, CDKs, CKIs) in bone cells.
- To elucidate the role of c-Fos in altering these regulators during osteosarcoma development.
- To define the molecular mechanisms underlying c-Fos-induced osteoblast transformation.
Main Methods:
- Utilized c-Fos transgenic mice that develop osteosarcomas.
- Employed immunohistochemical analysis to examine protein expression in bone tissues.
- Analyzed cell cycle proteins in embryonic, postnatal, and tumor tissues.
Main Results:
- Cyclin E/CDK2 were specific to osteoblasts; cyclin D1 was initially absent but increased with c-Fos activation.
- c-Fos activation led to cyclin D1 co-localization with c-Fos in osteoblasts and chondrocytes.
- Osteosarcomas showed high levels of cyclins D1, E, and CDKs 2, 4, 6, with altered CKI p27 expression.
Conclusions:
- Cyclin D1 appears to be a direct target of c-Fos action in bone cells.
- Elevated cyclin D1, alongside existing cyclin E/CDK2 and CDK4/6, may predispose osteoblasts to uncontrolled proliferation.
- Altered cell cycle control is a key mechanism by which c-Fos induces osteoblast transformation and osteosarcoma.