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Yellen, Gary

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Yellen

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Yellen, Gary

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Now showing 1 - 2 of 2
  • Publication

    Quantitative determinants of aerobic glycolysis identify flux through the enzyme GAPDH as a limiting step

    (eLife Sciences Publications, Ltd, 2014) Shestov, Alexander A; Liu, Xiaojing; Ser, Zheng; Cluntun, Ahmad A; Hung, Yin; Huang, Lei; Kim, Dongsung; Le, Anne; Yellen, Gary; Albeck, John G; Locasale, Jason W

    Aerobic glycolysis or the Warburg Effect (WE) is characterized by the increased metabolism of glucose to lactate. It remains unknown what quantitative changes to the activity of metabolism are necessary and sufficient for this phenotype. We developed a computational model of glycolysis and an integrated analysis using metabolic control analysis (MCA), metabolomics data, and statistical simulations. We identified and confirmed a novel mode of regulation specific to aerobic glycolysis where flux through GAPDH, the enzyme separating lower and upper glycolysis, is the rate-limiting step in the pathway and the levels of fructose (1,6) bisphosphate (FBP), are predictive of the rate and control points in glycolysis. Strikingly, negative flux control was found and confirmed for several steps thought to be rate-limiting in glycolysis. Together, these findings enumerate the biochemical determinants of the WE and suggest strategies for identifying the contexts in which agents that target glycolysis might be most effective. DOI: http://dx.doi.org/10.7554/eLife.03342.001

  • Publication

    Akt regulation of glycolysis mediates bioenergetic stability in epithelial cells

    (eLife Sciences Publications, Ltd, 2017) Hung, Yin; Teragawa, Carolyn; Kosaisawe, Nont; Gillies, Taryn E; Pargett, Michael; Minguet, Marta; Distor, Kevin; Rocha-Gregg, Briana L; Coloff, Jonathan L.; Keibler, Mark A; Stephanopoulos, Gregory; Yellen, Gary; Brugge, Joan; Albeck, John G

    Cells use multiple feedback controls to regulate metabolism in response to nutrient and signaling inputs. However, feedback creates the potential for unstable network responses. We examined how concentrations of key metabolites and signaling pathways interact to maintain homeostasis in proliferating human cells, using fluorescent reporters for AMPK activity, Akt activity, and cytosolic NADH/NAD+ redox. Across various conditions, including glycolytic or mitochondrial inhibition or cell proliferation, we observed distinct patterns of AMPK activity, including both stable adaptation and highly dynamic behaviors such as periodic oscillations and irregular fluctuations that indicate a failure to reach a steady state. Fluctuations in AMPK activity, Akt activity, and cytosolic NADH/NAD+ redox state were temporally linked in individual cells adapting to metabolic perturbations. By monitoring single-cell dynamics in each of these contexts, we identified PI3K/Akt regulation of glycolysis as a multifaceted modulator of single-cell metabolic dynamics that is required to maintain metabolic stability in proliferating cells.