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p53 and p21 form an inducible barrier that protects cells against cyclin E-cdk2 deregulation
Alex C Minella1, Jherek Swanger, Eileen Bryant
1Division of Clinical Research, Fred Hutchinson Cancer Research Center, Seattle, WA 98109, USA.
Background:
Cyclin E, in conjunction with its catalytic partner cdk2, is rate limiting for entry into the S phase of the cell cycle. Cancer cells frequently contain mutations within the cyclin D-Retinoblastoma protein pathway that lead to inappropriate cyclin E-cdk2 activation. Although deregulated cyclin E-cdk2 activity is believed to directly contribute to the neoplastic progression of these cancers, the mechanism of cyclin E-induced neoplasia is unknown.
Results:
We studied the consequences of deregulated cyclin E expression in primary cells and found that cyclin E initiated a p53-dependent response that prevented excess cdk2 activity by inducing expression of the p21Cip1 cdk inhibitor. The increased p53 activity was not associated with increased expression of the p14ARF tumor suppressor. Instead, cyclin E led to increased p53 serine15 phosphorylation that was sensitive to inhibitors of the ATM/ATR family. When either p53 or p21cip1 was rendered nonfunctional, then the excess cyclin E became catalytically active and caused defects in S phase progression, increased ploidy, and genetic instability.
Conclusions:
We conclude that p53 and p21 form an inducible barrier that protects cells against the deleterious consequences of cyclin E-cdk2 deregulation. A response that restrains cyclin E deregulation is likely to be a general protective mechanism against neoplastic transformation. Loss of this response may thus be required before deregulated cyclin E can become fully oncogenic in cancer cells. Furthermore, the combination of excess cyclin E and p53 loss may be particularly genotoxic, because cells cannot appropriately respond to the cell cycle anomalies caused by excess cyclin E-cdk2 activity.
Insights
The p53 and p21 proteins protect cells from cyclin E-cdk2 deregulation, a key step in cancer development. Loss of this protective response promotes oncogenesis and genetic instability.
Area of Science:
- Cell Biology
- Molecular Oncology
Background:
- Cyclin E-cdk2 activity regulates cell cycle entry into S phase.
- Cancer cells often exhibit aberrant cyclin E-cdk2 activation due to pathway mutations.
- The mechanism linking cyclin E deregulation to cancer remains unclear.
Purpose of the Study:
- To investigate the cellular consequences of deregulated cyclin E expression.
- To elucidate the role of p53 and p21 in response to cyclin E-cdk2 dysregulation.
Main Methods:
- Studied primary cells with deregulated cyclin E expression.
- Assessed p53 activity, p21Cip1 induction, and p53 serine15 phosphorylation.
- Utilized ATM/ATR inhibitors and examined cells with nonfunctional p53 or p21Cip1.
Main Results:
- Deregulated cyclin E triggered a p53-dependent induction of p21Cip1, inhibiting cdk2 activity.
- Cyclin E induced p53 serine15 phosphorylation, sensitive to ATM/ATR inhibitors.
- Loss of p53 or p21Cip1 function led to active cyclin E-cdk2, causing S phase defects, aneuploidy, and genomic instability.
Conclusions:
- p53 and p21 form a protective barrier against cyclin E-cdk2 deregulation.
- This response is a general safeguard against neoplastic transformation.
- Loss of this barrier is likely essential for cyclin E to drive oncogenesis; its absence exacerbates genotoxicity.