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Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
CK1alpha plays a central role in mediating MDM2 control of p53 and E2F-1 protein stability
Anne-Sophie Huart1, Nicola J MacLaine, David W Meek
1Cancer Research UK p53 Signal Transduction Group, University of Edinburgh, Institute of Genetics and Molecular Medicine, Division of Cancer Biology, Crewe Road South, Edinburgh EH4 2XR, Scotland, United Kingdom.
Abstract:
The ubiquitin ligase murine double minute clone 2 (MDM2) mediates ubiquitination and degradation of the tumor suppressor p53. The activation and stabilization of p53 by contrast is maintained by enzymes catalyzing p53 phosphorylation and acetylation. Casein kinase 1 (CK1) is one such enzyme; it stimulates p53 after transforming growth factor-beta treatment, irradiation, or DNA virus infection. We analyzed whether CK1 regulates p53 protein stability in unstressed conditions. Depletion of CK1 using small interfering RNA or inhibition of CK1 using the kinase inhibitor (D4476) activated p53 and destabilized E2F-1, indicating that steady-state levels of these proteins are controlled by CK1. Co-immunoprecipitation of endogenous CK1 with MDM2 occurred in undamaged cells, indicating the existence of a stable multiprotein complex, and as such, we evaluated whether the MDM2 Nutlin had similar pharmacological properties to the CK1 inhibitor D4476. Indeed, D4476 or Nutlin treatments resulted in the same p53 and E2F-1 steady-state protein level changes, indicating that the MDM2 x CK1 complex is both a negative regulator of p53 and a positive regulator of E2F-1 in undamaged cells. Although the treatment of cells with D4476 resulted in a partial p53-dependent growth arrest, the induction of p53-independent apoptosis by D4476 suggested a critical role for the MDM2 x CK1 complex in maintaining E2F-1 anti-apoptotic signaling. These data highlighting a pharmacological similarity between MDM2 and CK1 small molecule inhibitors and the fact that CK1 and MDM2 form a stable complex suggest that the MDM2 x CK1 complex is a component of a genetic pathway that co-regulates the stability of the p53 and E2F-1 transcription factors.
Insights
The murine double minute clone 2 (MDM2) and Casein kinase 1 (CK1) form a complex that regulates tumor suppressor p53 and E2F-1 stability in unstressed cells. Inhibiting this complex impacts cell growth and apoptosis.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- The ubiquitin ligase MDM2 targets the tumor suppressor p53 for degradation.
- Enzymes like CK1 stabilize p53 through phosphorylation and acetylation.
- CK1's role in p53 stability under normal conditions was investigated.
Purpose of the Study:
- To determine if CK1 regulates p53 protein stability in unstressed cells.
- To investigate the interaction between CK1 and MDM2.
- To explore the functional consequences of inhibiting the CK1-MDM2 complex.
Main Methods:
- Small interfering RNA (siRNA) to deplete CK1.
- Kinase inhibitor D4476 to inhibit CK1 activity.
- Co-immunoprecipitation to detect protein complexes.
- Western blotting to assess protein levels of p53 and E2F-1.
- Treatment with MDM2 inhibitor Nutlin.
Main Results:
- CK1 depletion or inhibition stabilized p53 and destabilized E2F-1.
- Endogenous CK1 and MDM2 formed a stable complex in undamaged cells.
- CK1 and MDM2 inhibitors (D4476 and Nutlin) induced similar changes in p53 and E2F-1 levels.
- The MDM2 x CK1 complex negatively regulates p53 and positively regulates E2F-1.
- D4476 induced p53-independent apoptosis, suggesting a role in E2F-1 anti-apoptotic signaling.
Conclusions:
- CK1 and MDM2 form a complex that co-regulates p53 and E2F-1 stability.
- This complex acts as a negative regulator of p53 and a positive regulator of E2F-1 in unstressed cells.
- The MDM2 x CK1 complex plays a role in maintaining E2F-1 anti-apoptotic signaling and represents a potential therapeutic target.
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