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Akt and c-Myc differentially activate cellular metabolic programs and prime cells to bioenergetic inhibition
Yongjun Fan1, Kathleen G Dickman, Wei-Xing Zong
1Department of Molecular Genetics and Microbiology, Stony Brook University, Stony Brook, New York 11794, USA.
Abstract:
The high glucose consumption of tumor cells even in an oxygen-rich environment, referred to as the Warburg effect, has been noted as a nearly universal biochemical characteristic of cancer cells. Targeting the glycolysis pathway has been explored as an anti-cancer therapeutic strategy to eradicate cancer based on this fundamental biochemical property of cancer cells. Oncoproteins such as Akt and c-Myc regulate cell metabolism. Accumulating studies have uncovered various molecular mechanisms by which oncoproteins affect cellular metabolism, raising a concern as to whether targeting glycolysis will be equally effective in treating cancers arising from different oncogenic activities. Here, we established a dual-regulatable FL5.12 pre-B cell line in which myristoylated Akt is expressed under the control of doxycycline, and c-Myc, fused to the hormone-binding domain of the human estrogen receptor, is activated by 4-hydroxytamoxifen. Using this system, we directly compared the effect of these oncoproteins on cell metabolism in an isogenic background. Activation of either Akt or c-Myc leads to the Warburg effect as indicated by increased cellular glucose uptake, glycolysis, and lactate generation. When cells are treated with glycolysis inhibitors, Akt sensitizes cells to apoptosis, whereas c-Myc does not. In contrast, c-Myc but not Akt sensitizes cells to the inhibition of mitochondrial function. This is correlated with enhanced mitochondrial activities in c-Myc cells. Hence, although both Akt and c-Myc promote aerobic glycolysis, they differentially affect mitochondrial functions and render cells susceptible to the perturbation of cellular metabolic programs.
Insights
Targeting cancer cell metabolism is a key strategy. While both Akt and c-Myc activate the Warburg effect, Akt sensitizes cells to glycolysis inhibitors, and c-Myc affects mitochondrial function differently.
Area of Science:
- Oncology
- Cellular Metabolism
- Biochemistry
Background:
- The Warburg effect, high glucose consumption in cancer cells, is a hallmark of cancer.
- Targeting cancer cell glycolysis is a potential therapeutic strategy.
- Oncoproteins like Akt and c-Myc regulate cellular metabolism, influencing cancer progression.
Purpose of the Study:
- To investigate the distinct roles of Akt and c-Myc in regulating cancer cell metabolism.
- To compare the effects of Akt and c-Myc activation on cellular metabolism and drug sensitivity.
- To determine if targeting glycolysis is equally effective across different oncogenic backgrounds.
Main Methods:
- Established a dual-regulatable FL5.12 pre-B cell line for controlled expression of myristoylated Akt and c-Myc.
- Activated Akt using doxycycline and c-Myc using 4-hydroxytamoxifen in an isogenic background.
- Assessed cellular glucose uptake, glycolysis, lactate generation, apoptosis, and mitochondrial function.
Main Results:
- Both Akt and c-Myc activation induced the Warburg effect, increasing glucose uptake, glycolysis, and lactate production.
- Akt activation sensitized cells to glycolysis inhibitors, promoting apoptosis.
- c-Myc activation enhanced mitochondrial activity and sensitized cells to mitochondrial inhibition, but not glycolysis inhibition.
Conclusions:
- While both Akt and c-Myc promote aerobic glycolysis, they have distinct downstream effects on cellular metabolism.
- Akt and c-Myc differentially impact mitochondrial function, influencing cancer cell susceptibility to metabolic perturbations.
- These findings suggest that therapeutic strategies targeting glycolysis may need to consider the specific oncogenic drivers of a cancer.
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