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Published on: June 10, 2010
Estrogen-activated MDM2 disrupts mammary tissue architecture through a p53-independent pathway
Nandini Kundu1,2, Angelika Brekman1,3, Jun Yeob Kim1
1The Department of Biological Sciences Hunter College, City University of New York, New York, NY 10065, USA.
Abstract:
The Cancer Genome Atlas (TCGA) data indicate that high MDM2 expression correlates with all subtypes of breast cancer. Overexpression of MDM2 drives breast oncogenesis in the presence of wild-type or mutant p53 (mtp53). Importantly, estrogen-receptor positive (ER+) breast cancers overexpress MDM2 and estrogen mediates this expression. We previously demonstrated that this estrogen-MDM2 axis activates the proliferation of breast cancer cell lines T47D (mtp53 L194F) and MCF7 (wild-type p53) in a manner independent of increased degradation of wild-type p53 (ie, p53-independently). Herein we present data supporting the role of the estrogen-MDM2 axis in regulating cell proliferation and mammary tissue architecture of MCF7 and T47D cells in a p53-independent manner. Inducible shRNA mediated MDM2 knockdown inhibited colony formation in soft agar, decreased mass size and induced lumen formation in matrigel and also significantly reduced mitosis as seen by decreased phospho-histone H3 positive cells. The knockdown of MDM2 in both cell lines decreased Rb phosphorylation and the level of E2F1 protein. This signaling was through the estrogen receptor because fulvestrant (a selective estrogen receptor degrader) decreased MDM2 protein levels and decreased phosphorylation of Rb. Taken together these data indicate that in some ER+ breast cancers the estrogen-MDM2-Rb-E2F1 axis is a central hub for estrogen-mediated p53-independent signal transduction. This is the first indication that estrogen signaling utilizes the estrogen-MDM2 axis to provoke phosphorylation of Rb and increase E2F1 while promoting abnormal mammary architecture.
Insights
High MDM2 expression drives estrogen-receptor positive breast cancer progression. Estrogen signaling activates the estrogen-MDM2-Rb-E2F1 axis, promoting cell proliferation and abnormal mammary architecture independently of p53.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- High MDM2 expression is linked to all breast cancer subtypes.
- Estrogen receptor-positive (ER+) breast cancers exhibit MDM2 overexpression, mediated by estrogen.
- The estrogen-MDM2 axis promotes breast cancer cell proliferation independently of p53 degradation.
Purpose of the Study:
- To investigate the role of the estrogen-MDM2 axis in regulating cell proliferation and mammary tissue architecture in ER+ breast cancer cells (MCF7 and T47D).
- To elucidate the p53-independent signaling pathways involved in estrogen-mediated breast cancer progression.
Main Methods:
- Utilized inducible shRNA for MDM2 knockdown in MCF7 and T47D cells.
- Assessed effects on colony formation, cell mass size, lumen formation in matrigel, and mitosis (phospho-histone H3).
- Investigated the involvement of the estrogen receptor using fulvestrant (a selective estrogen receptor degrader) and analyzed Rb phosphorylation and E2F1 protein levels.
Main Results:
- MDM2 knockdown inhibited colony formation, reduced cell mass size, induced lumen formation, and decreased mitosis.
- MDM2 knockdown led to decreased Rb phosphorylation and E2F1 protein levels.
- Fulvestrant treatment reduced MDM2 protein levels and Rb phosphorylation, confirming estrogen receptor involvement.
Conclusions:
- The estrogen-MDM2-Rb-E2F1 axis acts as a key signaling hub in ER+ breast cancers, mediating p53-independent proliferation.
- Estrogen signaling utilizes the estrogen-MDM2 axis to regulate Rb phosphorylation and E2F1 levels, contributing to abnormal mammary architecture.
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