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Updated: Apr 12, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
MDM4/HIPK2/p53 cytoplasmic assembly uncovers coordinated repression of molecules with anti-apoptotic activity during
F Mancini1,2, L Pieroni3,4, V Monteleone1
1Institute of Cell Biology and Neurobiology, National Research Council of Italy (CNR), Roma, Italy.
Abstract:
The p53 inhibitor, MDM4 (MDMX) is a cytoplasmic protein with p53-activating function under DNA damage conditions. Particularly, MDM4 promotes phosphorylation of p53 at Ser46, a modification that precedes different p53 activities. We investigated the mechanism by which MDM4 promotes this p53 modification and its consequences in untransformed mammary epithelial cells and tissues. In response to severe DNA damage, MDM4 stimulates p53Ser46(P) by binding and stabilizing serine-threonine kinase HIPK2. Under these conditions, the p53-inhibitory complex, MDM4/MDM2, dissociates and this allows MDM4 to promote p53/HIPK2 functional interaction. Comparative proteomic analysis of DNA damage-treated cells versus -untreated cells evidenced a diffuse downregulation of proteins with anti-apoptotic activity, some of which were targets of p53Ser46(P)/HIPK2 repressive activity. Importantly, MDM4 depletion abolishes the downregulation of these proteins indicating the requirement of MDM4 to promote p53-mediated transcriptional repression. Consistently, MDM4-mediated HIPK2/p53 activation precedes HIPK2/p53 nuclear translocation and activity. Noteworthy, repression of these proteins was evident also in mammary glands of mice subjected to γ-irradiation and was significantly enhanced in transgenic mice overexpressing MDM4. This study evidences the flexibility of MDM2/MDM4 heterodimer, which allows the development of a positive activity of cytoplasmic MDM4 towards p53-mediated transcriptional function. Noteworthy, this activity uncovers coordinated repression of molecules with shared anti-apoptotic function which precedes active cell apoptosis and that are frequently overexpressed and/or markers of tumour phenotype in human cancer.
Insights
MDM4 protein activates p53 tumor suppression by promoting its phosphorylation at Ser46, leading to the repression of anti-apoptotic genes. This MDM4-mediated p53 activation is crucial for DNA damage response and cancer development.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- MDM4 (MDMX) is a cytoplasmic protein that inhibits p53.
- MDM4 promotes p53 phosphorylation at Ser46, a key modification for p53 activity.
- The precise mechanism of MDM4-mediated p53Ser46 phosphorylation and its functional consequences remain incompletely understood.
Purpose of the Study:
- To elucidate the mechanism by which MDM4 promotes p53 Ser46 phosphorylation.
- To investigate the functional consequences of MDM4-mediated p53 activation in mammary epithelial cells and tissues.
- To explore the role of MDM4 in regulating anti-apoptotic proteins and its implications in cancer.
Main Methods:
- Investigated MDM4's mechanism of p53 Ser46 phosphorylation in mammary epithelial cells.
- Utilized comparative proteomic analysis to identify proteins affected by DNA damage and MDM4.
- Examined MDM4's role in vivo using mouse models subjected to irradiation and MDM4 overexpression.
Main Results:
- MDM4 stimulates p53Ser46 phosphorylation by stabilizing HIPK2 under DNA damage conditions.
- MDM4 depletion prevents the downregulation of anti-apoptotic proteins, highlighting MDM4's role in p53-mediated transcriptional repression.
- MDM4-mediated repression of anti-apoptotic proteins was observed in irradiated mouse mammary glands and enhanced in MDM4-overexpressing mice.
Conclusions:
- MDM4 exhibits a positive regulatory role in p53-mediated transcriptional repression, particularly under DNA damage.
- The MDM2/MDM4 heterodimer's flexibility allows cytoplasmic MDM4 to activate p53's tumor suppressive functions.
- MDM4-induced repression of anti-apoptotic proteins contributes to apoptosis and is frequently observed in human cancers.
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