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2-deoxy-D-glucose causes cytotoxicity, oxidative stress, and radiosensitization in pancreatic cancer
Mitchell C Coleman1, Carla R Asbury, David Daniels
1Department of Radiation Oncology, University of Iowa, Iowa City, IA 52242, USA.
Abstract:
Glucose metabolism as assessed by (18)FDG PET imaging provides prognostic information in patients with pancreatic cancer but the implications of manipulating glucose metabolism for therapeutic purposes are unknown. Based on previous results with other cancer cell types, we hypothesized that inhibition of glucose metabolism in pancreatic cancer cells would cause cell killing via oxidative stress resulting from disruptions in thiol metabolism. 2-Deoxy-D-glucose (2DG), a chemical inhibitor of glucose metabolism, and glucose deprivation induced cytotoxicity in human pancreatic cancer cells in a time-and dose-dependent manner as well as causing significant increases in metabolic oxidative stress as measured by increased glutathione disulfide accumulation and NADP(+)/NADPH ratios. Simultaneous administration of the thiol antioxidant N-acetylcysteine protected pancreatic cancer cells against the c-ytotoxic effects of 2DG as well as reversing 2DG-induced glutathione disulfide accumulation and augmenting intracellular cysteine pools. In nude mice with heterotopic pancreatic tumors, the combination of 2DG and ionizing radiation resulted in greater inhibition of tumor growth and increased survival, relative to either agent alone. These results support the hypothesis that inhibiting glucose metabolism causes cytotoxicity in human pancreatic cancer cells via metabolic oxidative stress and disruptions in thiol metabolism. These results also support the speculation that inhibitors of glucose metabolism can be used in combination with classical oxidative stress-inducing agents (such as ionizing radiation) to enhance therapeutic responses in pancreatic cancer.
Insights
Inhibiting glucose metabolism in pancreatic cancer cells induces cell death through oxidative stress. Combining glucose metabolism inhibitors with radiation therapy may enhance treatment efficacy.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer cell biology
Background:
- Glucose metabolism is crucial for pancreatic cancer progression.
- 18FDG PET imaging indicates prognostic value in pancreatic cancer.
- Therapeutic manipulation of glucose metabolism remains unexplored.
Purpose of the Study:
- To investigate the effects of inhibiting glucose metabolism on pancreatic cancer cells.
- To determine if oxidative stress and thiol metabolism disruptions mediate cytotoxicity.
- To evaluate the combination of glucose metabolism inhibition with radiation therapy.
Main Methods:
- Utilized 2-deoxy-D-glucose (2DG) and glucose deprivation to inhibit glucose metabolism in human pancreatic cancer cells.
- Assessed cytotoxicity, oxidative stress markers (glutathione disulfide, NADP+/NADPH ratio), and thiol levels.
- Evaluated the efficacy of 2DG combined with ionizing radiation in a murine pancreatic tumor model.
Main Results:
- 2DG and glucose deprivation induced time- and dose-dependent cytotoxicity in pancreatic cancer cells.
- Inhibition of glucose metabolism increased oxidative stress and disrupted thiol metabolism.
- N-acetylcysteine (a thiol antioxidant) protected cells from 2DG-induced toxicity.
- Combination therapy (2DG + ionizing radiation) significantly inhibited tumor growth and improved survival in mice.
Conclusions:
- Inhibiting glucose metabolism induces pancreatic cancer cell death via oxidative stress and thiol metabolism disruption.
- Targeting glucose metabolism, particularly in combination with radiation, shows therapeutic potential for pancreatic cancer.
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