Phenformin-Induced Mitochondrial Dysfunction Sensitizes Hepatocellular Carcinoma for Dual Inhibition of mTOR
Sónia R Veiga1, Xuemei Ge1, Carol A Mercer2
1Laboratory of Cancer Metabolism, Oncobell Program, Bellvitge Biomedical Research Institute (IDIBELL), Barcelona, Spain.
Abstract:
Purpose: Hepatocellular carcinoma (HCC) ranks second in cancer mortality and has limited therapeutic options. We recently described the synergistic effect of allosteric and ATP-site competitive inhibitors against the mTOR for the treatment of HCC. However, such inhibitors induce hyperglycemia and increase mitochondrial efficiency. Here we determined whether the mitochondrial complex I inhibitor phenformin could reverse both side effects, impose an energetic stress on cancer cells, and suppress the growth of HCC.Experimental Design: Human HCC cell lines were used in vitro to access the signaling and energetic impact of mTOR inhibitors and phenformin, either alone or in combination. Next, the therapeutic utility of these drugs alone or in combination was investigated preclinically in human orthotopic tumors implanted in mice, by analyzing their impact on the tumor burden and overall survival.Results: We found phenformin caused mitochondrial dysfunction and fragmentation, inducing a compensatory shift to glycolysis. In contrast, dual inhibition of mTOR impaired cell growth and glycolysis, while increasing mitochondrial fusion and efficiency. In a mouse model of human HCC, dual inhibition of mTOR, together with phenformin, was highly efficacious in controlling tumor burden. However, more strikingly, pretreatment with phenformin sensitized tumors to dual inhibition of mTOR, leading to a dramatic improvement in survival.Conclusions: Treatment of HCC cells in vitro with the biguanide phenformin causes a metabolic shift to glycolysis, mitochondrial dysfunction and fragmentation, and dramatically sensitizes orthotopic liver tumors to dual inhibition of mTOR. We therefore propose this therapeutic approach should be tested clinically in HCC. Clin Cancer Res; 24(15); 3767-80. ©2018 AACR.
Insights
Phenformin, a mitochondrial complex I inhibitor, reverses side effects of mTOR inhibitors in hepatocellular carcinoma (HCC) treatment. Pretreatment with phenformin sensitizes HCC tumors, significantly improving survival in preclinical models.
Area of Science:
- Oncology
- Metabolic pathways
- Mitochondrial function
Background:
- Hepatocellular carcinoma (HCC) has limited treatment options and high mortality.
- mTOR inhibitors show promise but cause hyperglycemia and increased mitochondrial efficiency.
- Phenformin, a mitochondrial complex I inhibitor, was investigated for its potential to counteract these side effects and enhance HCC therapy.
Purpose of the Study:
- To determine if phenformin can reverse hyperglycemia and increased mitochondrial efficiency caused by mTOR inhibitors.
- To assess phenformin's ability to impose energetic stress on cancer cells and suppress HCC growth.
- To evaluate the combination of phenformin and mTOR inhibitors as a therapeutic strategy for HCC.
Main Methods:
- Human HCC cell lines were used for in vitro analysis of signaling and energetic effects.
- Phenformin and mTOR inhibitors were tested alone and in combination.
- Preclinical studies in mice with orthotopic human HCC tumors assessed tumor burden and survival.
Main Results:
- Phenformin induced mitochondrial dysfunction and fragmentation, shifting cells to glycolysis.
- Dual mTOR inhibition impaired growth and glycolysis, increasing mitochondrial fusion and efficiency.
- Combination therapy with phenformin and dual mTOR inhibition controlled tumor burden and significantly improved survival in mice.
Conclusions:
- Phenformin induces metabolic shifts and mitochondrial changes in HCC cells.
- Phenformin sensitizes liver tumors to dual mTOR inhibition, offering a promising therapeutic approach.
- Clinical trials of phenformin combined with dual mTOR inhibition are recommended for HCC treatment.
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