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Open AccessJournal ArticleDOI

Beyond aerobic glycolysis : Transformed cells can engage in glutamine metabolism that exceeds the requirement for protein and nucleotide synthesis

TLDR
Transformed cells exhibit a high rate of glutamine consumption that cannot be explained by the nitrogen demand imposed by nucleotide synthesis or maintenance of nonessential amino acid pools, and glutamine metabolism provides a carbon source that facilitates the cell's ability to use glucose-derived carbon and TCA cycle intermediates as biosynthetic precursors.
Abstract
Tumor cell proliferation requires rapid synthesis of macromolecules including lipids, proteins, and nucleotides. Many tumor cells exhibit rapid glucose consumption, with most of the glucose-derived carbon being secreted as lactate despite abundant oxygen availability (the Warburg effect). Here, we used 13C NMR spectroscopy to examine the metabolism of glioblastoma cells exhibiting aerobic glycolysis. In these cells, the tricarboxylic acid (TCA) cycle was active but was characterized by an efflux of substrates for use in biosynthetic pathways, particularly fatty acid synthesis. The success of this synthetic activity depends on activation of pathways to generate reductive power (NADPH) and to restore oxaloacetate for continued TCA cycle function (anaplerosis). Surprisingly, both these needs were met by a high rate of glutamine metabolism. First, conversion of glutamine to lactate (glutaminolysis) was rapid enough to produce sufficient NADPH to support fatty acid synthesis. Second, despite substantial mitochondrial pyruvate metabolism, pyruvate carboxylation was suppressed, and anaplerotic oxaloacetate was derived from glutamine. Glutamine catabolism was accompanied by secretion of alanine and ammonia, such that most of the amino groups from glutamine were lost from the cell rather than incorporated into other molecules. These data demonstrate that transformed cells exhibit a high rate of glutamine consumption that cannot be explained by the nitrogen demand imposed by nucleotide synthesis or maintenance of nonessential amino acid pools. Rather, glutamine metabolism provides a carbon source that facilitates the cell's ability to use glucose-derived carbon and TCA cycle intermediates as biosynthetic precursors.

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Citations
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Glutamine-fueled mitochondrial metabolism is decoupled from glycolysis in melanoma.

TL;DR: The historic notion that cancer is a disease of mitochondria is revised to show that glycolysis is decoupled from the tricarboxylic acid (TCA) cycle, and glutamine is used as an alternate carbon source.
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Applications of metabolomics in cancer research.

TL;DR: This review summarizes contributions that metabolomics has made in cancer research and presents the current challenges and potential future directions within the field.
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Integrins and Cell Metabolism: An Intimate Relationship Impacting Cancer

TL;DR: The reciprocal regulation of integrins and metabolism may provide important clues for more effective treatment of various cancers, as cancer cells exhibit substantial changes in metabolism.
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Mitochondrial function and energy metabolism in cancer cells: Past overview and future perspectives

TL;DR: A new unique in vivo experimental approach that may have significant impact in this important field of mitochondrial dysfunction, reflecting mitochondrial NADH redox state and microcirculation function, is suggested.
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Metabolic Heterogeneity of Cancer Cells: An Interplay between HIF-1, GLUTs, and AMPK

TL;DR: The present review focuses on cross-talks between HIF-1, glucose transporters, and AMPK with other regulatory proteins including oncogenes such as c-Myc, p53, and KRAS; growth factor-initiated protein kinase B (PKB)/Akt, phosphatidyl-3-kinase (PI3K), and mTOR signaling pathways; and tumor suppressors in controlling cancer cell metabolism.
References
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Journal ArticleDOI

On the origin of cancer cells.

Origin of cancer cells

Otto Warburg
Journal ArticleDOI

Evidence that glutamine, not sugar, is the major energy source for cultured HeLa cells.

TL;DR: Observations suggest that glutamine provides energy by aerobic oxidation from citric acid cycle metabolism, provides more than half of the cell energy when high concentrations of glucose are present, and greater than 98% when fructose or galactose is the carbohydrate.
Journal ArticleDOI

ATP citrate lyase inhibition can suppress tumor cell growth

TL;DR: ACL inhibition by RNAi or the chemical inhibitor SB-204990 limits in vitro proliferation and survival of tumor cells displaying aerobic glycolysis, and these treatments also reduce in vivo tumor growth and induce differentiation.
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