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.

Cell Death & Disease
|November 21, 2014
PubMed

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.