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

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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