Anticancer drug efficacy might be leveraged by strategies to target certain biochemical adaptations of tumors. Here we show how depriving cancer cells of glutamine can enhance the anticancer properties of 3-bromopyruvate, a halogenated analog of pyruvic acid. Glutamine deprival potentiated 3-bromopyruvate chemotherapy by increasing the stability of the monocarboxylate transporter-1, an effect that sensitized cells to metabolic oxidative stress and autophagic cell death. We further elucidated mechanisms through which resistance to chemopotentiation by glutamine deprival could be circumvented. Overall, our findings offer a preclinical proof-of-concept for how to employ 3-bromopyruvate or other monocarboxylic-based drugs to sensitize tumors to...
Tumor formation and growth depend on various biological metabolism processes that are distinctly dif...
The small alkylating molecule, 3-bromopyruvate (3BP), is a potent and specific anticancer agent. 3BP...
Although tumor metabolism is becoming a major source of inspiration to develop new anticancer drugs,...
Anticancer drug efficacy might be leveraged by strategies to target certain biochemical adaptations ...
Killing properties of antitumor drugs can be enhanced by strategies targeting biochemical adaptation...
Increased dependence on aerobic glycolysis for energy (ATP) supply has been observed in various huma...
AbstractWe recently reported that PIK3CA mutant colorectal cancers (CRCs) are addicted to glutamine ...
There is increasing evidence that oncogenic transformation modifies the metabolic program of cells. ...
AbstractCancer cells are mainly dependent on glycolysis to generate adenosine triphosphate (ATP) and...
3-Bromopyruvate (3BP) is a small, highly reactive molecule formed by bromination of pyruvate. In the...
Metabolic plasticity in cancer cells makes very challenging the use of metabolism-targeting agents a...
Cancer treatment deserves more research efforts despite intensive conventional treatment modalities ...
Targeting metabolic vulnerabilities has been proposed as a therapeutic strategy in renal cell carcin...
Background: Anticancer compound 3-bromopyruvate (3-BrPA) suppresses cancer cell growth via targeting...
Metabolic reprogramming is now considered a hallmark of cancer cells. KRas-driven cancer cells use g...
Tumor formation and growth depend on various biological metabolism processes that are distinctly dif...
The small alkylating molecule, 3-bromopyruvate (3BP), is a potent and specific anticancer agent. 3BP...
Although tumor metabolism is becoming a major source of inspiration to develop new anticancer drugs,...
Anticancer drug efficacy might be leveraged by strategies to target certain biochemical adaptations ...
Killing properties of antitumor drugs can be enhanced by strategies targeting biochemical adaptation...
Increased dependence on aerobic glycolysis for energy (ATP) supply has been observed in various huma...
AbstractWe recently reported that PIK3CA mutant colorectal cancers (CRCs) are addicted to glutamine ...
There is increasing evidence that oncogenic transformation modifies the metabolic program of cells. ...
AbstractCancer cells are mainly dependent on glycolysis to generate adenosine triphosphate (ATP) and...
3-Bromopyruvate (3BP) is a small, highly reactive molecule formed by bromination of pyruvate. In the...
Metabolic plasticity in cancer cells makes very challenging the use of metabolism-targeting agents a...
Cancer treatment deserves more research efforts despite intensive conventional treatment modalities ...
Targeting metabolic vulnerabilities has been proposed as a therapeutic strategy in renal cell carcin...
Background: Anticancer compound 3-bromopyruvate (3-BrPA) suppresses cancer cell growth via targeting...
Metabolic reprogramming is now considered a hallmark of cancer cells. KRas-driven cancer cells use g...
Tumor formation and growth depend on various biological metabolism processes that are distinctly dif...
The small alkylating molecule, 3-bromopyruvate (3BP), is a potent and specific anticancer agent. 3BP...
Although tumor metabolism is becoming a major source of inspiration to develop new anticancer drugs,...