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An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Combination simvastatin and metformin induces G1-phase cell cycle arrest and Ripk1- and Ripk3-dependent necrosis in
M A Babcook1, R M Sramkoski2, H Fujioka3
11] Department of Nutrition, Case Western Reserve University School of Medicine, Cleveland, OH 44106, USA [2] Department of Urology, Case Western Reserve University School of Medicine & The Urology Institute, University Hospitals Case Medical Center, Cleveland, OH 44106, USA.
Abstract:
Castration-resistant prostate cancer (CRPC) cells acquire resistance to chemotherapy and apoptosis, in part, due to enhanced aerobic glycolysis and biomass production, known as the Warburg effect. We previously demonstrated that combination simvastatin (SIM) and metformin (MET) ameliorates critical Warburg effect-related metabolic aberrations of C4-2B cells, synergistically and significantly decreases CRPC cell viability and metastatic properties, with minimal effect on normal prostate epithelial cells, and inhibits primary prostate tumor growth, metastasis, and biochemical failure in an orthotopic model of metastatic CRPC, more effectively than docetaxel chemotherapy. Several modes of cell death activated by individual treatment of SIM or MET have been reported; however, the cell death process induced by combination SIM and MET treatment in metastatic CRPC cells remains unknown. This must be determined prior to advancing combination SIM and MET to clinical trial for metastatic CRPC. Treatment of C4-2B cells with combination 4 μM SIM and 2 mM MET (SIM+MET) led to significant G1-phase cell cycle arrest and decrease in the percentage of DNA-replicating cells in the S-phase by 24 h; arrest was sustained throughout the 96-h treatment. SIM+MET treatment led to enhanced autophagic flux in C4-2B cells by 72-96 h, ascertained by increased LC3B-II (further enhanced with lysosomal inhibitor chloroquine) and reduced Sequestosome-1 protein expression, significantly increased percentage of acidic vesicular organelle-positive cells, and increased autophagic structure accumulation assessed by transmission electron microscopy. Chloroquine, however, could not rescue CRPC cell viability, eliminating autophagic cell death; rather, autophagy was upregulated by C4-2B cells in attempt to withstand chemotherapy. Instead, SIM+MET treatment led to Ripk1- and Ripk3-dependent necrosis by 48-96 h, determined by propidium iodide-Annexin V flow cytometry, increase in Ripk1 and Ripk3 protein expression, necrosome formation, HMGB-1 extracellular release, and necrotic induction and viability rescue with necrostatin-1 and Ripk3-targeting siRNA. The necrosis-inducing capacity of SIM+MET may make these drugs a highly-effective treatment for apoptosis- and chemotherapy-resistant metastatic CRPC cells.
Insights
Combination simvastatin and metformin induces necrosis in chemotherapy-resistant prostate cancer cells. This finding is crucial for advancing these drugs into clinical trials for metastatic castration-resistant prostate cancer.
Area of Science:
- Oncology
- Cancer Metabolism
- Cell Death Pathways
Background:
- Castration-resistant prostate cancer (CRPC) exhibits resistance to apoptosis and chemotherapy, partly due to the Warburg effect (enhanced aerobic glycolysis).
- Previous studies showed simvastatin (SIM) and metformin (MET) combination therapy reduces CRPC cell viability, metastasis, and primary tumor growth.
- The precise cell death mechanism induced by SIM+MET in metastatic CRPC remains undetermined, hindering clinical trial progression.
Purpose of the Study:
- To elucidate the cell death mechanism triggered by the combination of simvastatin and metformin in metastatic castration-resistant prostate cancer cells.
- To determine if autophagy or necrosis is the primary mode of cell death induced by SIM+MET treatment.
Main Methods:
- C4-2B CRPC cells were treated with 4 μM SIM and 2 mM MET (SIM+MET).
- Cell cycle progression was analyzed using flow cytometry.
- Autophagic flux was assessed via LC3B-II, Sequestosome-1 protein expression, acidic vesicular organelle staining, and transmission electron microscopy.
- Cell death was characterized using propidium iodide-Annexin V staining, analysis of Ripk1/Ripk3 expression, necrosome formation, HMGB-1 release, and rescue experiments with necrostatin-1 and Ripk3-targeting siRNA.
Main Results:
- SIM+MET induced significant G1-phase cell cycle arrest and reduced S-phase DNA replication.
- Autophagic flux was enhanced, but chloroquine treatment did not rescue cell viability, ruling out autophagic cell death.
- SIM+MET triggered Ripk1- and Ripk3-dependent necrosis, evidenced by increased protein expression, necrosome formation, and HMGB-1 release, with rescue by necrostatin-1 and Ripk3 siRNA.
Conclusions:
- Combination SIM+MET treatment induces Ripk1- and Ripk3-dependent necrosis in metastatic CRPC cells, not autophagic cell death.
- Autophagy is upregulated as a survival mechanism by CRPC cells under SIM+MET treatment.
- The necrosis-inducing capability of SIM+MET suggests its potential as an effective treatment for apoptosis- and chemotherapy-resistant metastatic CRPC.
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