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AMPK/mTORC2/AKT-473/RUNX2 signaling axis modulates epithelial-mesenchymal transition and bone tropism in breast
Meher Bolisetti Gayatri1, Abhayananda Behera1, Suresh Chava1
1Department of Animal Biology, School of Life Sciences, University of Hyderabad, Hyderabad, India.
Introduction:
Metformin, a widely used biguanide for the treatment of type 2 diabetes, has been extensively studied for its potential anti-cancer properties, primarily attributed to its inhibitory effects on mTORC1 signaling. However, accumulating evidence suggests that its impact on tumor progression is highly context-dependent, varying with cellular and metabolic conditions. In this study, we investigated the mechanistic effects of metformin on RUNX2 and mTORC2 signaling pathways in breast cancer.
Methods:
The study was conducted using in silico, in vitro, and in vivo analysis. In vitro experiments was carried out using MDA-MB-231 breast cancer cells to evaluate the regulatory effects of metformin on RUNX2 and mTORC2 signaling. Gene knockdown approaches targeting RICTOR were employed to assess pathway interactions, and molecular analyses were performed to examine the involvement of AMPK and GSK3β in regulating RUNX2 stability and downstream signaling events. Tumor samples were analyzed to validate the clinical relevance of the observed molecular alterations. Additionally, in vivo studies were performed to assess the functional impact of the identified signaling axis on tumor progression and metastatic potential.
Results:
Metformin treatment resulted in enhanced mTORC2 activity in a RUNX2-dependent manner, mediated through AMPK-driven stabilization of RUNX2. Furthermore, silencing of RICTOR, a critical component of mTORC2, induced RUNX2 degradation via a GSK3β-dependent mechanism, indicating a reciprocal regulatory relationship between RUNX2 and mTORC2 pathways. Functional analyses demonstrated that the AMPK-RUNX2-mTORC2 signaling axis promotes epithelial-mesenchymal transition (EMT) and enhances the bone metastatic potential of breast cancer cells.
Discussion:
These findings reveal a context-dependent role of metformin in modulating metastatic signaling pathways through the AMPK-RUNX2-mTORC2 axis. The study highlights the complexity of metformin's action in biology and underscores its potential to differentially regulate tumor progression and metastasis depending on the molecular context.
Insights
Metformin enhances breast cancer metastasis by activating the AMPK-RUNX2-mTORC2 pathway. This study reveals a context-dependent role for metformin in cancer progression, influencing epithelial-mesenchymal transition and bone metastasis.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Signaling
Background:
- Metformin, a type 2 diabetes drug, shows anti-cancer potential via mTORC1 inhibition.
- Its effects on tumor progression are context-dependent.
- This study explores metformin's impact on RUNX2 and mTORC2 in breast cancer.
Purpose of the Study:
- Investigate metformin's mechanistic effects on RUNX2 and mTORC2 signaling in breast cancer.
- Elucidate the role of the AMPK-RUNX2-mTORC2 axis in breast cancer metastasis.
- Determine the context-dependent nature of metformin's anti-cancer properties.
Main Methods:
- Utilized in silico, in vitro (MDA-MB-231 cells), and in vivo models.
- Performed gene knockdown of RICTOR and molecular analyses (AMPK, GSK3β).
- Assessed RUNX2 stability, downstream signaling, and metastatic potential.
Main Results:
- Metformin enhanced mTORC2 activity via AMPK-driven RUNX2 stabilization.
- RICTOR silencing led to RUNX2 degradation through GSK3β.
- The AMPK-RUNX2-mTORC2 axis promotes epithelial-mesenchymal transition and bone metastasis.
Conclusions:
- Metformin's role in metastasis is context-dependent, mediated by the AMPK-RUNX2-mTORC2 axis.
- This axis promotes epithelial-mesenchymal transition and bone metastatic potential.
- Highlights the complexity of metformin's biological actions in cancer.
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