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Metformin exhibits antineoplastic effects on Pten-deficient endometrial cancer by interfering with TGF-β and p38/ERK
Anna Ruiz-Mitjana1, Maria Vidal-Sabanés1, Raúl Navaridas1
1Developmental and Oncogenic Signalling Group, Departament de Ciències Mèdiques Bàsiques and Departament de Medicina Experimental, Universitat de Lleida, Institut de Recerca Biomèdica de Lleida, IRBLleida, Lleida, Spain.
Abstract:
Metformin is a widespread antidiabetic agent that is commonly used as a treatment against type 2 diabetes mellitus patients. Regarding its therapeutic potential, multiple studies have concluded that Metformin exhibits antineoplastic activity on several types of cancer, including endometrial carcinoma. Although Metformin's antineoplastic activity is well documented, its cellular and molecular anticancer mechanisms are still a matter of controversy because a plethora of anticancer mechanisms have been proposed for different cancer cell types. In this study, we addressed the cellular and molecular mechanisms of Metformin's antineoplastic activity by using both in vitro and in vivo studies of Pten-loss driven carcinoma mouse models. In vivo, Metformin reduced endometrial neoplasia initiated by Pten-deficiency. Our in vitro studies using Pten-deficient endometrial organoids focused on both cellular and molecular levels in Metformin's tumor suppressive action. At cellular level, we showed that Metformin is involved in not only the proliferation of endometrial epithelial cells but also their regulation via a variety of mechanisms of epithelial-to-mesenchymal transition (EMT) as well as TGF-β-induced apoptosis. At the molecular level, Metformin was shown to affect the TGF-β signalling., a widely known signal that plays a pivotal role in endometrial carcinogenesis. In this respect, Metformin restored TGF-β-induced apoptosis of Pten-deficient endometrial organoids through a p38-dependent mechanism and inhibited TGF-β-induced EMT on no-polarized endometrial epithelial cells by inhibiting ERK/MAPK signalling. These results provide new insights into the link between the cellular and molecular mechanism for Metformin's antineoplastic activity in Pten-deficient endometrial cancers.
Insights
Metformin, an antidiabetic drug, shows anticancer effects by regulating endometrial epithelial cell proliferation and apoptosis. It targets the TGF-β pathway, inhibiting cancer growth in Pten-deficient models.
Area of Science:
- Oncology
- Endocrinology
- Molecular Biology
Background:
- Metformin is a common type 2 diabetes treatment.
- Metformin demonstrates antineoplastic activity against various cancers, including endometrial carcinoma.
- The precise cellular and molecular mechanisms of Metformin's anticancer effects are not fully understood.
Purpose of the Study:
- To investigate the cellular and molecular mechanisms of Metformin's antineoplastic activity in Pten-loss driven endometrial carcinoma.
- To elucidate Metformin's role in regulating endometrial epithelial cell proliferation, apoptosis, and epithelial-to-mesenchymal transition (EMT).
- To explore Metformin's impact on the TGF-β signaling pathway in endometrial carcinogenesis.
Main Methods:
- In vivo studies using Pten-loss driven carcinoma mouse models.
- In vitro studies using Pten-deficient endometrial organoids.
- Analysis of cellular processes including proliferation, apoptosis, and EMT.
- Molecular analysis of the TGF-β signaling pathway, including p38 and ERK/MAPK signaling.
Main Results:
- Metformin reduced endometrial neoplasia in vivo.
- Metformin regulated endometrial epithelial cell proliferation and apoptosis in vitro.
- Metformin restored TGF-β-induced apoptosis via a p38-dependent mechanism.
- Metformin inhibited TGF-β-induced EMT by affecting ERK/MAPK signaling.
Conclusions:
- Metformin exhibits tumor-suppressive actions in Pten-deficient endometrial cancer.
- Metformin influences endometrial cancer progression through modulation of TGF-β signaling, affecting apoptosis and EMT.
- These findings provide insights into Metformin's anticancer mechanisms in endometrial carcinoma.
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