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p21(Waf1/Cip1) inhibition of cyclin E/Cdk2 activity prevents endoreduplication after mitotic spindle disruption
Z A Stewart1, S D Leach, J A Pietenpol
1Departments of Biochemistry, Vanderbilt University School of Medicine, Nashville, Tennessee 37232, USA.
Abstract:
During a normal cell cycle, entry into S phase is dependent on completion of mitosis and subsequent activation of cyclin-dependent kinases (Cdks) in G1. These events are monitored by checkpoint pathways. Recent studies and data presented herein show that after treatment with microtubule inhibitors (MTIs), cells deficient in the Cdk inhibitor p21(Waf1/Cip1) enter S phase with a >/=4N DNA content, a process known as endoreduplication, which results in polyploidy. To determine how p21 prevents MTI-induced endoreduplication, the G1/S and G2/M checkpoint pathways were examined in two isogenic cell systems: HCT116 p21(+/+) and p21(-/-) cells and H1299 cells containing an inducible p21 expression vector (HIp21). Both HCT116 p21(-/-) cells and noninduced HIp21 cells endoreduplicated after MTI treatment. Analysis of G1-phase Cdk activities demonstrated that the induction of p21 inhibited endoreduplication through direct cyclin E/Cdk2 regulation. The kinetics of p21 inhibition of cyclin E/Cdk2 activity and binding to proliferating-cell nuclear antigen in HCT116 p21(+/+) cells paralleled the onset of endoreduplication in HCT116 p21(-/-) cells. In contrast, loss of p21 did not lead to deregulated cyclin D1-dependent kinase activities, nor did p21 directly regulate cyclin B1/Cdc2 activity. Furthermore, we show that MTI-induced endoreduplication in p53-deficient HIp21 cells was due to levels of p21 protein below a threshold required for negative regulation of cyclin E/Cdk2, since ectopic expression of p21 restored cyclin E/Cdk2 regulation and prevented endoreduplication. Based on these findings, we propose that p21 plays an integral role in the checkpoint pathways that restrain normal cells from entering S phase after aberrant mitotic exit due to defects in microtubule dynamics.
Insights
The Cdk inhibitor p21 prevents polyploidy after microtubule inhibitor treatment by regulating cyclin E/Cdk2 activity. Loss of p21 leads to endoreduplication, causing cells to enter S phase with excessive DNA content.
Area of Science:
- Cell Cycle Regulation
- Cancer Biology
- Molecular Oncology
Background:
- Cell cycle progression into S phase requires completion of mitosis and G1 cyclin-dependent kinase (Cdk) activation.
- Checkpoint pathways monitor these events to maintain genomic stability.
- Microtubule inhibitors (MTIs) disrupt mitosis, potentially leading to aberrant cell cycle progression.
Purpose of the Study:
- To investigate the role of the Cdk inhibitor p21(Waf1/Cip1) in preventing endoreduplication induced by MTIs.
- To elucidate the molecular mechanisms by which p21 regulates checkpoint pathways following mitotic exit defects.
Main Methods:
- Utilized isogenic cell systems (HCT116 p21(+/+) and p21(-/-) cells, and inducible p21-expressing H1299 cells).
- Treated cells with microtubule inhibitors (MTIs).
- Assessed G1/S and G2/M checkpoint activities, Cdk activities, and protein-protein interactions (p21, proliferating-cell nuclear antigen).
Main Results:
- Cells deficient in p21 (p21(-/-) HCT116 and noninduced HIp21) underwent endoreduplication (> /=4N DNA content) after MTI treatment.
- p21 induction inhibited MTI-induced endoreduplication by directly regulating cyclin E/Cdk2 activity.
- Loss of p21 did not affect cyclin D1-dependent kinase or cyclin B1/Cdc2 activities.
- Restoring p21 levels in p53-deficient cells prevented endoreduplication by re-establishing cyclin E/Cdk2 regulation.
Conclusions:
- p21 plays a critical role in preventing MTI-induced endoreduplication and polyploidy.
- p21 acts by directly inhibiting cyclin E/Cdk2 activity, thereby restraining cells from entering S phase after aberrant mitosis.
- This function of p21 is crucial for checkpoint control following defects in microtubule dynamics.