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Updated: Aug 8, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
Mdm2 inhibition of p53 induces E2F1 transactivation via p21
Mark Wunderlich1, Steven J Berberich
1Wright State University, Department of Biochemistry and Molecular Biology, 3640 Colonel Glenn Hywy, Dayton, Ohio 45435, USA.
Abstract:
The transcription factor E2F1 functions as a key regulator for both cell-cycle progression and apoptosis. Mdm2, a major cellular regulator of the p53 tumor suppressor protein, is also closely involved in cell cycle and apoptosis. In addition to regulation of p53, Mdm2 has been reported to stimulate E2F1 transactivation by a mechanism that remains unclear. Here we examined how overexpression of Mdm2 alters E2F1/DP1 transactivation. Using a set of cell lines with differing p53 and Rb status we determined that Mdm2 induction of E2F1 transactivation was p53-dependent, resulting from release of repression by p53. While Mdm2 association with p53 was required to increase E2F1 transactivation, Mdm2 mediated degradation of p53 was not. p53 repression of E2F1 transactivation required a functional DNA binding and transactivation domain. Consistent with Mdm2 activation of E2F1 via an inhibition of p53 transactivation we demonstrate a concomitant reduction in p21 protein levels with Mdm2 overexpression. Furthermore, E2F1 repression by an Rb-phosphorylation mutant could not be reversed by Mdm2 overexpression. Mdm2 was also unable to enhance E2F1 transactivation in Mouse embryo fibroblasts lacking p21. Taken together, these results suggest that Mdm2 activation of E2F1 occurs through the repression of p53-dependent transcription of p21, a p53-target gene and cyclin dependent kinase inhibitor.
Insights
Mdm2 protein enhances E2F1/DP1 transactivation by inhibiting p53-mediated repression. This occurs via reduced p53-dependent transcription of p21, a cyclin-dependent kinase inhibitor, impacting cell cycle control.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- E2F1 is a transcription factor regulating cell-cycle progression and apoptosis.
- Mdm2 regulates the p53 tumor suppressor and is involved in cell cycle and apoptosis.
- Mdm2's mechanism for stimulating E2F1 transactivation is unclear.
Purpose of the Study:
- To investigate how Mdm2 overexpression affects E2F1/DP1 transactivation.
- To elucidate the role of p53 and Rb in Mdm2-mediated E2F1 regulation.
Main Methods:
- Utilized cell lines with varying p53 and Rb status.
- Assessed E2F1/DP1 transactivation.
- Examined Mdm2-p53 association and p53 degradation.
- Analyzed p21 protein levels and Rb-phosphorylation mutant effects.
Main Results:
- Mdm2 induction of E2F1 transactivation is p53-dependent, resulting from p53 repression release.
- Mdm2 association with p53, not degradation, was required for increased E2F1 transactivation.
- p53 repression of E2F1 requires functional DNA binding and transactivation domains.
- Mdm2 overexpression reduced p21 protein levels.
- Mdm2 could not reverse E2F1 repression by an Rb-phosphorylation mutant or in p21-deficient cells.
Conclusions:
- Mdm2 activates E2F1 by repressing p53-dependent transcription of p21.
- This mechanism highlights a novel pathway involving Mdm2, p53, and p21 in regulating E2F1 activity and potentially cell fate.
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