PCK2 activation mediates an adaptive response to glucose depletion in lung cancer
K Leithner1, A Hrzenjak2, M Trötzmüller3
1Division of Pulmonology, Department of Internal Medicine, Medical University of Graz, Graz, Austria.
Abstract:
Cancer cells are reprogrammed to utilize glycolysis at high rates, which provides metabolic precursors for cell growth. Consequently, glucose levels may decrease substantially in underperfused tumor areas. Gluconeogenesis results in the generation of glucose from smaller carbon substrates such as lactate and amino acids. The key gluconeogenic enzyme, phosphoenolpyruvate carboxykinase (PEPCK), has been shown to provide metabolites for cell growth. Still, the role of gluconeogenesis in cancer is unknown. Here we show that the mitochondrial isoform of PEPCK (PCK2) is expressed and active in three lung cancer cell lines and in non-small cell lung cancer samples. PCK2 expression and activity were enhanced under low-glucose conditions. PEPCK activity was elevated threefold in lung cancer samples over normal lungs. To track the conversion of metabolites along the gluconeogenesis pathway, lung cancer cell lines were incubated with (13)C₃-lactate and label enrichment in the phosphoenolpyruvate (PEP) pool was measured. Under low glucose, all three carbons from (13)C₃-lactate appeared in the PEP pool, further supporting a conversion of lactate to pyruvate, via pyruvate carboxylase to oxaloacetate, and via PCK2 to phosphoenolpyruvate. PCK2 small interfering RNA and the pharmacological PEPCK inhibitor 3-mercaptopicolinate significantly enhanced glucose depletion-induced apoptosis in A549 and H23 cells, but not in H1299 cells. The growth of H23 multicellular spheroids was significantly reduced by 3-mercaptopicolinate. The results of this study suggest that lung cancer cells may utilize at least some steps of gluconeogenesis to overcome the detrimental metabolic situation during glucose deprivation and that in human lung cancers this pathway is activated in vivo.
Insights
Lung cancer cells activate gluconeogenesis, a glucose-generating pathway, to survive low-glucose conditions. Inhibiting phosphoenolpyruvate carboxykinase (PEPCK) reduced cancer cell survival and growth.
Area of Science:
- Oncology
- Cancer Metabolism
- Biochemistry
Background:
- Cancer cells exhibit high glycolysis rates, leading to glucose depletion in tumors.
- Gluconeogenesis generates glucose from substrates like lactate and amino acids.
- The role of gluconeogenesis in cancer progression remains largely unknown.
Purpose of the Study:
- To investigate the expression and activity of phosphoenolpyruvate carboxykinase (PEPCK) in lung cancer.
- To determine the role of gluconeogenesis in lung cancer cell survival under glucose deprivation.
- To assess the therapeutic potential of targeting PEPCK in lung cancer.
Main Methods:
- Analysis of mitochondrial PEPCK (PCK2) expression and activity in lung cancer cell lines and patient samples.
- Metabolic tracing using (13)C₃-lactate to track gluconeogenesis pathway flux.
- Inhibition of PCK2 using small interfering RNA and a pharmacological inhibitor (3-mercaptopicolinate).
- Assessment of apoptosis and cell growth in response to PCK2 inhibition.
Main Results:
- PCK2 is expressed and active in lung cancer cells and tissues, with elevated activity in tumors compared to normal lungs.
- PCK2 expression and activity increase under low-glucose conditions.
- Lactate is converted to phosphoenolpyruvate via gluconeogenesis in lung cancer cells.
- PCK2 inhibition enhanced glucose depletion-induced apoptosis and reduced tumor spheroid growth.
Conclusions:
- Lung cancer cells utilize gluconeogenesis to counteract glucose deprivation.
- The gluconeogenesis pathway, specifically PCK2, is activated in human lung cancers.
- Targeting PEPCK represents a potential therapeutic strategy for lung cancer.
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