Mechanisms of cyclin-dependent kinase inactivation by progestins
E A Musgrove1, A Swarbrick, C S Lee
1Cancer Research Program, Garvan Institute of Medical Research, St Vincent's Hospital, Sydney, New South Wales, Australia. l.musgrove@garvan.unsw.edu.au
Abstract:
The steroid hormone progesterone regulates proliferation and differentiation in the mammary gland and uterus by cell cycle phase-specific actions. In breast cancer cells the predominant effect of synthetic progestins is long-term growth inhibition and arrest in G1 phase. Progestin-mediated growth arrest of T-47D breast cancer cells was preceded by inhibition of cyclin D1-Cdk4, cyclin D3-Cdk4, and cyclin E-Cdk2 kinase activities in vitro and reduced phosphorylation of pRB and p107. This was accompanied by decreases in the expression of cyclins D1, D3, and E, decreased abundance of cyclin D1- and cyclin D3-Cdk4 complexes, increased association of the cyclin-dependent kinase (CDK) inhibitor p27 with the remaining Cdk4 complexes, and changes in the molecular masses and compositions of cyclin E complexes. In control cells cyclin E eluted from Superdex 200 as two peaks of approximately 120 and approximately 200 kDa, with the 120-kDa peak displaying greater cyclin E-associated kinase activity. Following progestin treatment, almost all of the cyclin E was in the 200-kDa, low-activity form, which was associated with the CDK inhibitors p21 and p27; this change preceded the inhibition of cell cycle progression. These data suggest preferential formation of this higher-molecular-weight, CDK inhibitor-bound form and a reduced number of cyclin E-Cdk2 complexes as mechanisms for the decreased cyclin E-associated kinase activity following progestin treatment. Ectopic expression of cyclin D1 in progestin-inhibited cells led to the reappearance of the 120-kDa active form of cyclin E-Cdk2 preceding the resumption of cell cycle progression. Thus, decreased cyclin expression and consequent increased CDK inhibitor association are likely to mediate the decreases in CDK activity accompanying progestin-mediated growth inhibition.
Insights
Synthetic progestins inhibit breast cancer cell growth by arresting the cell cycle. This involves decreased cyclin expression and increased cyclin-dependent kinase (CDK) inhibitor binding, leading to reduced CDK activity.
Area of Science:
- Endocrinology
- Molecular Biology
- Cell Biology
Background:
- Progesterone regulates cell proliferation and differentiation in the mammary gland and uterus.
- Synthetic progestins induce long-term growth inhibition and G1 phase arrest in breast cancer cells.
Purpose of the Study:
- To investigate the molecular mechanisms underlying progestin-mediated growth arrest in T-47D breast cancer cells.
- To elucidate the role of cyclin-dependent kinases (CDKs) and their inhibitors in progestin's effects on the cell cycle.
Main Methods:
- Assessed kinase activities of cyclin-CDK complexes (cyclin D1-Cdk4, D3-Cdk4, E-Cdk2).
- Measured phosphorylation of retinoblastoma protein (pRB) and p107.
- Analyzed expression levels of cyclins D1, D3, and E.
- Examined CDK inhibitor (p21, p27) association with CDK complexes using gel filtration and Western blotting.
- Investigated the effect of ectopic cyclin D1 expression on progestin-inhibited cells.
Main Results:
- Progestin treatment inhibited cyclin D1-Cdk4, D3-Cdk4, and E-Cdk2 kinase activities and reduced pRB/p107 phosphorylation.
- Decreased expression of cyclins D1, D3, and E was observed.
- Increased association of p27 with Cdk4 complexes occurred.
- Cyclin E shifted from an active 120-kDa form to an inactive 200-kDa form bound to p21 and p27.
- Ectopic cyclin D1 expression restored the active cyclin E-Cdk2 form and cell cycle progression.
Conclusions:
- Progestin-mediated breast cancer cell growth inhibition involves decreased cyclin expression and increased CDK inhibitor association with CDK complexes.
- These changes lead to reduced CDK activity, promoting cell cycle arrest in the G1 phase.
- The formation of higher-molecular-weight, CDK inhibitor-bound cyclin E complexes is a key mechanism for reduced kinase activity.
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