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Published on: October 27, 2014
Suppression of oxidative phosphorylation confers resistance against bevacizumab in experimental glioma
Jule A Eriksson1,2, Christina Wanka1, Michael C Burger1
1Dr Senckenberg Institute of Neurooncology, Goethe University, Frankfurt, Germany.
Abstract:
Although bevacizumab initially shows high response rates in gliomas and other tumours, therapy resistance usually develops later. Because anti-angiogenic agents are supposed to induce hypoxia, we asked whether rendering glioma cells independent of oxidative phosphorylation modulates their sensitivity against hypoxia and bevacizumab. LNT-229 glioma cells without functional mitochondria (rho0 ) and control (rho+ ) cells were generated. LNT-229 rho0 -cells displayed reduced expression of oxidative phosphorylation-related genes and diminished oxygen consumption. Conversely, glycolysis was up-regulated in these cells, as shown by increased lactate production and stronger expression of glucose transporter-1 and lactate dehydrogenase-A. However, hypoxia-induced cell death in vitro was nearly completely abolished in the LNT-229 rho0 -cells, these cells were more sensitive towards glucose restriction and the treatment with the glycolysis inhibitor 2-deoxy-D-glucose. In an orthotopic mouse xenograft experiment, bevacizumab induced hypoxia as reflected by elevated Hypoxia-inducible factor 1-alpha staining in both, rho+ - and rho0 -tumours. However, it prolonged survival only in the mice bearing rho+ -tumours (74 days vs. 105 days, p = 0.024 log-rank test) and had no effect on survival in mice carrying LNT-229 rho0 -tumours (75 days vs. 70 days, p = 0.52 log-rank test). Interestingly, inhibition of glycolysis in vivo with 2-deoxy-D-glucose re-established sensitivity of rho0 -tumours against bevacizumab (98 days vs. 80 days, p = 0.0001). In summary, ablation of oxidative phosphorylation in glioma cells leads to a more glycolytic and hypoxia-resistant phenotype and is sufficient to induce bevacizumab-refractory tumours. These results add to increasing evidence that a switch towards glycolysis is one mechanism how tumour cells may evade anti-angiogenic treatments and suggest anti-glycolytic strategies as promising approaches to overcome bevacizumab resistance.
Insights
Glioma cells resistant to bevacizumab therapy can develop by switching to glycolysis, a process independent of oxidative phosphorylation. Combining anti-angiogenic treatment with glycolysis inhibitors may overcome this resistance in tumors.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Bevacizumab, an anti-angiogenic therapy, shows initial efficacy in gliomas but often encounters treatment resistance.
- Tumor cells may adapt to anti-angiogenic treatment by altering their metabolic pathways, potentially leading to resistance.
Purpose of the Study:
- To investigate whether rendering glioma cells independent of oxidative phosphorylation affects their sensitivity to hypoxia and bevacizumab.
- To explore the role of glycolysis in mediating resistance to bevacizumab in glioma models.
Main Methods:
- Generated glioma cells lacking functional mitochondria (rho0) and compared them to control cells (rho+).
- Assessed cellular responses to hypoxia, glucose restriction, and glycolysis inhibition (2-deoxy-D-glucose) in vitro.
- Evaluated bevacizumab efficacy and the impact of glycolysis inhibition in an orthotopic mouse xenograft model.
Main Results:
- Rho0 glioma cells exhibited reduced oxidative phosphorylation, increased glycolysis, and resistance to hypoxia-induced cell death.
- Bevacizumab treatment prolonged survival in mice with rho+ tumors but not in those with rho0 tumors.
- Inhibition of glycolysis in vivo restored bevacizumab sensitivity in rho0 tumors.
Conclusions:
- Ablation of oxidative phosphorylation induces a glycolytic, hypoxia-resistant phenotype in glioma cells, leading to bevacizumab refractoriness.
- A metabolic switch to glycolysis is a mechanism for tumor cells to evade anti-angiogenic therapy.
- Targeting glycolysis represents a promising strategy to overcome bevacizumab resistance in gliomas.
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