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Biological and computer-aided evaluation of 3-methoxy-13α-estrone-16α-diphenylphosphine oxide as a new antiestrogenic
Sándor Bartha1, Péter Germán1, Noémi Bózsity1
1Institute of Pharmacodynamics and Biopharmacy, University of Szeged, Eötvös u. 6, Szeged, H- 6720, Hungary.
Abstract:
Breast cancer, a leading cause of cancer-related mortality, often depends on estrogen receptor alpha (ERα) signaling for progression. This study evaluates [(3-methoxy-17-oxo-13α-estra-1,3,5(10)-trien-16α-yl)methyl]diphenylphosphine oxide (EDPO), a recently published organophosphorus 13α-estrone derivative, as a potential antiestrogenic agent. In our previous study, EDPO showed substantial antiproliferative effect against T47D breast cancer cells and UPCI-SCC-131 oropharyngeal squamous cell carcinoma cells, with IC50 values of 7.2 µM and 5.3 µM, respectively. Using in silico, in vitro, and in vivo methods, EDPO demonstrated robust antiestrogenic activity comparable to that of fulvestrant. Molecular docking confirmed EDPO's effective binding to the ERα ligand-binding domain, disrupting estrogen signaling. In vitro, EDPO inhibited estrogen-mediated transcriptional activity, induced G1-phase cell cycle arrest, and significantly reduced the invasive capacity of breast cancer cells, as well as the extent of cell migration both in breast and oropharyngeal carcinoma cells. In vivo uterotrophic assay on immature rats revealed EDPO's ability to mitigate estrogen-induced uterine growth, validating its antiestrogenic effects. Moreover, in a murine triple-negative breast cancer (TNBC) model, EDPO significantly inhibited tumor growth, likely through immunomodulatory mechanisms that altered the tumor microenvironment. These findings highlight EDPO's multifaceted actions, combining antiestrogenic, antiproliferative, and antimetastatic effects. This study positions EDPO as a promising hit molecule for both ERα+ breast cancer and TNBC, addressing key challenges in current endocrine therapies and offering new avenues for breast cancer treatment.
Insights
A new compound, EDPO, shows strong antiestrogenic and antiproliferative effects against estrogen receptor alpha (ERα)+ breast cancer and triple-negative breast cancer (TNBC). EDPO inhibits tumor growth and migration, offering a promising new therapeutic avenue.
Area of Science:
- Oncology
- Endocrinology
- Pharmacology
Background:
- Breast cancer progression is often driven by estrogen receptor alpha (ERα) signaling.
- Existing endocrine therapies face challenges, necessitating novel therapeutic agents.
Purpose of the Study:
- To evaluate the antiestrogenic and anti-cancer potential of [(3-methoxy-17-oxo-13α-estra-1,3,5(10)-trien-16α-yl)methyl]diphenylphosphine oxide (EDPO).
- To investigate EDPO's efficacy in ERα+ breast cancer and triple-negative breast cancer (TNBC) models.
Main Methods:
- In silico molecular docking to assess ERα binding.
- In vitro assays measuring transcriptional activity, cell cycle, invasion, and migration.
- In vivo studies including uterotrophic assay and a murine TNBC model.
Main Results:
- EDPO demonstrated potent antiestrogenic activity comparable to fulvestrant.
- EDPO inhibited ERα transcriptional activity, induced G1 cell cycle arrest, and reduced cancer cell invasion and migration.
- In vivo, EDPO mitigated estrogen-induced uterine growth and significantly inhibited TNBC tumor growth, potentially via immunomodulation.
Conclusions:
- EDPO exhibits multifaceted anti-cancer effects, including antiestrogenic, antiproliferative, and antimetastatic properties.
- EDPO is a promising hit molecule for both ERα+ breast cancer and TNBC.
- EDPO represents a potential new therapeutic strategy for breast cancer treatment.
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