Literature DB >> 29045397

Glucose feeds the TCA cycle via circulating lactate.

Sheng Hui1,2, Jonathan M Ghergurovich1,3, Raphael J Morscher1,2, Cholsoon Jang1,2, Xin Teng1,2, Wenyun Lu1,2, Lourdes A Esparza4, Tannishtha Reya4, Jessie Yanxiang Guo5,6,7, Eileen White5,8, Joshua D Rabinowitz1,2,5.   

Abstract

Mammalian tissues are fuelled by circulating nutrients, including glucose, amino acids, and various intermediary metabolites. Under aerobic conditions, glucose is generally assumed to be burned fully by tissues via the tricarboxylic acid cycle (TCA cycle) to carbon dioxide. Alternatively, glucose can be catabolized anaerobically via glycolysis to lactate, which is itself also a potential nutrient for tissues and tumours. The quantitative relevance of circulating lactate or other metabolic intermediates as fuels remains unclear. Here we systematically examine the fluxes of circulating metabolites in mice, and find that lactate can be a primary source of carbon for the TCA cycle and thus of energy. Intravenous infusions of 13C-labelled nutrients reveal that, on a molar basis, the circulatory turnover flux of lactate is the highest of all metabolites and exceeds that of glucose by 1.1-fold in fed mice and 2.5-fold in fasting mice; lactate is made primarily from glucose but also from other sources. In both fed and fasted mice, 13C-lactate extensively labels TCA cycle intermediates in all tissues. Quantitative analysis reveals that during the fasted state, the contribution of glucose to tissue TCA metabolism is primarily indirect (via circulating lactate) in all tissues except the brain. In genetically engineered lung and pancreatic cancer tumours in fasted mice, the contribution of circulating lactate to TCA cycle intermediates exceeds that of glucose, with glutamine making a larger contribution than lactate in pancreatic cancer. Thus, glycolysis and the TCA cycle are uncoupled at the level of lactate, which is a primary circulating TCA substrate in most tissues and tumours.

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Year:  2017        PMID: 29045397      PMCID: PMC5898814          DOI: 10.1038/nature24057

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  35 in total

1.  METABOLIC INTERRELATIONS OF GLUCOSE AND LACTATE IN SHEEP.

Authors:  E F ANNISON; D B LINDSAY; R R WHITE
Journal:  Biochem J       Date:  1963-08       Impact factor: 3.857

2.  On the origin of cancer cells.

Authors:  O WARBURG
Journal:  Science       Date:  1956-02-24       Impact factor: 47.728

Review 3.  Lactate kinetics in human tissues at rest and during exercise.

Authors:  Gerrit van Hall
Journal:  Acta Physiol (Oxf)       Date:  2010-03-26       Impact factor: 6.311

4.  Determination of lactate kinetics in the human analysis of data from single injection vs. continuous infusion methods.

Authors:  G L Searle; R R Cavalieri
Journal:  Proc Soc Exp Biol Med       Date:  1972-03

5.  Evidence for a stromal-epithelial "lactate shuttle" in human tumors: MCT4 is a marker of oxidative stress in cancer-associated fibroblasts.

Authors:  Diana Whitaker-Menezes; Ubaldo E Martinez-Outschoorn; Zhao Lin; Adam Ertel; Neal Flomenberg; Agnieszka K Witkiewicz; Ruth C Birbe; Anthony Howell; Stephanos Pavlides; Ricardo Gandara; Richard G Pestell; Federica Sotgia; Nancy J Philp; Michael P Lisanti
Journal:  Cell Cycle       Date:  2011-06-01       Impact factor: 4.534

6.  Both p16(Ink4a) and the p19(Arf)-p53 pathway constrain progression of pancreatic adenocarcinoma in the mouse.

Authors:  Nabeel Bardeesy; Andrew J Aguirre; Gerald C Chu; Kuang-Hung Cheng; Lyle V Lopez; Aram F Hezel; Bin Feng; Cameron Brennan; Ralph Weissleder; Umar Mahmood; Douglas Hanahan; Mark S Redston; Lynda Chin; Ronald A Depinho
Journal:  Proc Natl Acad Sci U S A       Date:  2006-04-03       Impact factor: 11.205

Review 7.  Pyruvate into lactate and back: from the Warburg effect to symbiotic energy fuel exchange in cancer cells.

Authors:  Olivier Feron
Journal:  Radiother Oncol       Date:  2009-07-13       Impact factor: 6.280

8.  Using isotope tracers to study metabolism: application in mouse models.

Authors:  Brendan J McCabe; Stephen F Previs
Journal:  Metab Eng       Date:  2004-01       Impact factor: 9.783

Review 9.  A lactatic perspective on metabolism.

Authors:  L Bruce Gladden
Journal:  Med Sci Sports Exerc       Date:  2008-03       Impact factor: 5.411

Review 10.  Metabolic networks in motion: 13C-based flux analysis.

Authors:  Uwe Sauer
Journal:  Mol Syst Biol       Date:  2006-11-14       Impact factor: 11.429

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Journal:  Trends Cell Biol       Date:  2020-04-28       Impact factor: 20.808

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Journal:  Biochim Biophys Acta Rev Cancer       Date:  2018-04-24       Impact factor: 10.680

Review 5.  Neurons rely on glucose rather than astrocytic lactate during stimulation.

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6.  Glycolysis/gluconeogenesis- and tricarboxylic acid cycle-related metabolites, Mediterranean diet, and type 2 diabetes.

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Review 8.  Including the mitochondrial metabolism of L-lactate in cancer metabolic reprogramming.

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10.  Branched Chain Amino Acids.

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