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Metformin attenuates ovarian cancer cell growth in an AMP-kinase dispensable manner
R Rattan1, S Giri, L C Hartmann
1Department of Experimental Pathology, Mayo Clinic College of Medicine, Mayo Clinic, Rochester, MN 55905, USA.
Abstract:
Metformin, the most widely used drug for type 2 diabetes activates 59 adenosine monophosphate (AMP)-activated protein kinase (AMPK), which regulates cellular energy metabolism. Here, we report that ovarian cell lines VOSE, A2780, CP70, C200, OV202, OVCAR3, SKOV3ip, PE01 and PE04 predominantly express -α(1), -β(1), -γ(1) and -γ(2) isoforms of AMPK subunits. Our studies show that metformin treatment (1) significantly inhibited proliferation of diverse chemo-responsive and -resistant ovarian cancer cell lines (A2780, CP70, C200, OV202, OVCAR3, SKVO3ip, PE01 and PE04), (2) caused cell cycle arrest accompanied by decreased cyclin D1 and increased p21 protein expression, (3) activated AMPK in various ovarian cancer cell lines as evident from increased phosphorylation of AMPKα and its downstream substrate; acetyl co-carboxylase (ACC) and enhanced β-oxidation of fatty acid and (4) attenuated mTOR-S6RP phosphorylation, inhibited protein translational and lipid biosynthetic pathways, thus implicating metformin as a growth inhibitor of ovarian cancer cells. We also show that metformin-mediated effect on AMPK is dependent on liver kinase B1 (LKB1) as it failed to activate AMPK-ACC pathway and cell cycle arrest in LKB1 null mouse embryo fibroblasts (mefs). This observation was further supported by using siRNA approach to down-regulate LKB1 in ovarian cancer cells. In contrast, met formin inhibited cell proliferation in both wild-type and AMPKα(1/2) null mefs as well as in AMPK silenced ovarian cancer cells. Collectively, these results provide evidence on the role of metformin as an anti-proliferative therapeutic that can act through both AMPK-dependent as well as AMPK-independent pathways.
Insights
Metformin inhibits ovarian cancer cell growth by activating AMP-activated protein kinase (AMPK) and through AMPK-independent pathways. This diabetes drug shows potential as an anti-proliferative therapeutic for ovarian cancer.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Metformin, a type 2 diabetes drug, activates AMP-activated protein kinase (AMPK), a key regulator of cellular energy metabolism.
- Ovarian cancer cell lines predominantly express specific isoforms of AMPK subunits (-α(1), -β(1), -γ(1), -γ(2)).
Purpose of the Study:
- To investigate the anti-proliferative effects of metformin on ovarian cancer cells.
- To elucidate the role of AMPK and liver kinase B1 (LKB1) in metformin's action on ovarian cancer.
Main Methods:
- Treatment of ovarian cancer cell lines with metformin.
- Analysis of cell proliferation, cell cycle progression, protein expression (cyclin D1, p21), and signaling pathways (AMPK, ACC, mTOR-S6RP).
- Utilized LKB1-null mouse embryo fibroblasts and siRNA to assess AMPK-dependent and -independent mechanisms.
Main Results:
- Metformin significantly inhibited proliferation and induced cell cycle arrest in various ovarian cancer cell lines.
- Metformin activated AMPK, evidenced by increased phosphorylation of AMPKα and acetyl-CoA carboxylase (ACC), and enhanced fatty acid beta-oxidation.
- Metformin's effects were dependent on LKB1 for AMPK activation and cell cycle arrest, but it also exhibited anti-proliferative effects via AMPK-independent pathways.
Conclusions:
- Metformin acts as a potent inhibitor of ovarian cancer cell growth.
- The anti-proliferative effects of metformin involve both AMPK-dependent and AMPK-independent mechanisms.
- LKB1 is crucial for metformin-mediated AMPK activation and cell cycle arrest in ovarian cancer cells.
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