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p21Cip-1/SDI-1/WAF-1 gene is involved in chondrogenic differentiation of ATDC5 cells in vitro
1Department of Physiological Chemistry, Faculty of Pharmaceutical Sciences, Teikyo University, Sagamiko, Kanagawa 199-0195, Japan. yo-negi@pharm.teikyo-u.ac.jp
Abstract:
Development of skeletal cartilage is characterized with coupling growth arrest and cell differentiation. Here, to understand the cyclin-dependent kinase inhibitors involved in the progression of chondrogenic differentiation, we examined changes in the expression levels of cyclin-dependent kinase inhibitor members using mouse ATDC5 prechondrocytes as a widely used in vitro model of cartilage differentiation. Up-regulation of p21 and p27 mRNA was observed following a decrease in growth rate of prechondrocytes, and both transcripts subsequently accumulated during chondrogenic differentiation; p15, p18, and p19 mRNA, in contrast, did not change during differentiation. Only the up-regulation of p21 mRNA during differentiation was prevented by the continuous treatment of early chondrogenic inhibitor, parathyroid hormone, indicating a close correlation between differentiation and p21 induction in ATDC5 cells. Therefore, to examine the role of p21 during chondrogenesis, we established stable cell lines overexpressing full-length p21 antisense RNA in ATDC5. The reduction of endogenous p21 in these cell lines caused inhibition of early chondrogenic differentiation in ATDC5, indicating that p21 gene plays an important role in this process of the cells in vitro. Furthermore, the level of p21 protein and p21.CDK2 complexes transiently increased during differentiation, but not in undifferentiated cells, leading to a decrease in CDK2-associated kinase. However, differentiation-dependent expressed p21 protein was degraded by a proteasome-dependent pathway. Thus, the progression of chondrogenic differentiation requires down-regulation of CDK2-associated kinase with an increase in p21 protein and subsequent degradation of this protein by a proteasomal pathway.
Insights
Cyclin-dependent kinase inhibitor p21 plays a crucial role in cartilage development. Its induction and subsequent degradation regulate chondrogenic differentiation by controlling CDK2 activity in ATDC5 cells.
Area of Science:
- Cell Biology
- Developmental Biology
- Biochemistry
Background:
- Skeletal cartilage development involves coordinated growth arrest and cell differentiation.
- Cyclin-dependent kinase inhibitors (CKIs) regulate cell cycle progression and differentiation.
- Understanding CKIs' roles is vital for elucidating chondrogenesis.
Purpose of the Study:
- To investigate the involvement of CKIs in chondrogenic differentiation.
- To examine the specific role of p21 in cartilage development using ATDC5 cells.
Main Methods:
- Analyzed mRNA expression of CKI members (p15, p18, p19, p21, p27) in ATDC5 cells during differentiation.
- Utilized parathyroid hormone to inhibit chondrogenesis and assess p21 regulation.
- Created stable ATDC5 cell lines overexpressing p21 antisense RNA.
- Assessed p21 protein levels, p21.CDK2 complexes, and CDK2-associated kinase activity.
- Investigated p21 protein degradation pathways.
Main Results:
- p21 and p27 mRNA levels increased during ATDC5 chondrogenic differentiation.
- Parathyroid hormone blocked p21 mRNA up-regulation, suggesting a link between p21 and differentiation.
- Reduced p21 levels inhibited early chondrogenic differentiation.
- p21 protein and p21.CDK2 complexes transiently increased, decreasing CDK2 kinase activity.
- Differentiation-induced p21 protein was degraded via a proteasome-dependent pathway.
Conclusions:
- p21 gene is essential for in vitro chondrogenic differentiation of ATDC5 cells.
- Chondrogenesis requires p21-mediated CDK2 inhibition and subsequent proteasomal degradation of p21.
- This study elucidates a novel regulatory mechanism for chondrocyte differentiation involving p21 and proteasomal degradation.