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"Hernandez-Carro, Claudia"
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Glutamine Modulates Expression and Function of Glucose 6-Phosphate Dehydrogenase via NRF2 in Colon Cancer Cells
by
Marin, Silvia
,
Polat, Ibrahim H.
,
Hernandez-Carro, Claudia
in
Amino acids
,
Antibiotics
,
Apoptosis
2021
Nucleotide pools need to be constantly replenished in cancer cells to support cell proliferation. The synthesis of nucleotides requires glutamine and 5-phosphoribosyl-1-pyrophosphate produced from ribose-5-phosphate via the oxidative branch of the pentose phosphate pathway (ox-PPP). Both PPP and glutamine also play a key role in maintaining the redox status of cancer cells. Enhanced glutamine metabolism and increased glucose 6-phosphate dehydrogenase (G6PD) expression have been related to a malignant phenotype in tumors. However, the association between G6PD overexpression and glutamine consumption in cancer cell proliferation is still incompletely understood. In this study, we demonstrated that both inhibition of G6PD and glutamine deprivation decrease the proliferation of colon cancer cells and induce cell cycle arrest and apoptosis. Moreover, we unveiled that glutamine deprivation induce an increase of G6PD expression that is mediated through the activation of the nuclear factor (erythroid-derived 2)-like 2 (NRF2). This crosstalk between G6PD and glutamine points out the potential of combined therapies targeting oxidative PPP enzymes and glutamine catabolism to combat colon cancer.
Journal Article
Glutaminase as a metabolic target of choice to counter acquired resistance to Palbociclib by colorectal cancer cells
2024
Therapeutic resistance in cancer emerges from genetic or epigenetic mechanisms that enable cell survival under drug pressure. While several resistance mechanisms to cyclin-dependent kinase inhibitors have been identified, acquired resistance is still a therapeutic challenge. Here, we have systematically analyzed metabolic reprogramming in colorectal cancer cells exposed to Palbociclib, a CDK4/6 inhibitor, or Telaglenestat, a glutaminase inhibitor. Through multiple approaches, we show that Palbociclib and Telaglenestat elicit complementary metabolic responses and are thus uniquely suited to counter the metabolic reprogramming induced by the reciprocal drug. As such, while Palbociclib induced reduced tumor growth in vivo, and Telaglenestat did not show a significant effect, the drug combination displayed a strong synergistic effect on tumor growth. Likewise, initial responses to Palbociclib were followed by signs of adaptation and resistance, which were prevented by combining Palbociclib with Telaglenestat. Our findings reveal that Palbociclib and Telaglenestat combination can effectively forestall acquired resistance to Palbociclib.Competing Interest StatementThe authors have declared no competing interest.