(en) Michel E. van der Rest, Christian Frank et Douwe Molenaar, « Functions of the Membrane-Associated and Cytoplasmic Malate Dehydrogenases in the Citric Acid Cycle of Escherichia coli », Journal of bacteriology, vol. 182, no 24, , p. 6892-6899 (PMID11092847, PMCID94812, DOI10.1128/JB.182.24.6892-6899.2000, lire en ligne)
(en) Elwood A. Mullins, Julie A. Francois et T. Joseph Kappock, « A Specialized Citric Acid Cycle Requiring Succinyl-Coenzyme A (CoA):Acetate CoA-Transferase (AarC) Confers Acetic Acid Resistance on the Acidophile Acetobacter aceti », Journal of Bacteriology, vol. 190, no 14, , p. 4933-4940 (PMID18502856, PMCID2447011, DOI10.1128/JB.00405-08, lire en ligne)
biochemj.org
(en) R. K. Porter et M. D. Brand, « Mitochondrial proton conductance and H+/O ratio are independent of electron transport rate in isolated hepatocytes », Biochemical Journal, vol. 310, , p. 379–382 (lire en ligne)PMID7654171
cell.com
(en) Maxim V. Ivannikov et Gregory T. Macleod, « Mitochondrial Free Ca2+ Levels and Their Effects on Energy Metabolism in Drosophila Motor Nerve Terminals », Biophysical Journal, vol. 104, no 11, , p. 2353-2361 (PMID23746507, PMCID3672877, DOI10.1016/j.bpj.2013.03.064, lire en ligne)
doi.org
dx.doi.org
(en) Enrique Meléndez-Hevia, Thomas G. Waddell et Marta Cascante, « The puzzle of the Krebs citric acid cycle: Assembling the pieces of chemically feasible reactions, and opportunism in the design of metabolic pathways during evolution », Journal of Molecular Evolution, vol. 43, no 1, , p. 293-303 (PMID8703096, DOI10.1007/BF02338838, lire en ligne)
(en) Oliver Ebenhöh et Reinhart Heinrich, « Evolutionary Optimization of Metabolic Pathways. Theoretical Reconstruction of the Stoichiometry of ATP and NADH Producing Systems », Bulletin of Mathematical Biology, vol. 63, no 1, , p. 21-55 (PMID11146883, DOI10.1006/bulm.2000.0197, lire en ligne)
(en) Takehiko SAHARA, Yasuhiro TAKADA, Yoji TAKEUCHI, Naoto YAMAOKA et Noriyuki FUKUNAGA, « Cloning, Sequencing, and Expression of a Gene Encoding the Monomeric Isocitrate Dehydrogenase of the Nitrogen-fixing Bacterium, Azotobacter vinelandii », Bioscience, Biotechnology, and Biochemistry, vol. 66, no 3, , p. 489-500 (PMID12005040, DOI10.1271/bbb.66.489, lire en ligne)
(en) Michel E. van der Rest, Christian Frank et Douwe Molenaar, « Functions of the Membrane-Associated and Cytoplasmic Malate Dehydrogenases in the Citric Acid Cycle of Escherichia coli », Journal of bacteriology, vol. 182, no 24, , p. 6892-6899 (PMID11092847, PMCID94812, DOI10.1128/JB.182.24.6892-6899.2000, lire en ligne)
(en) David O. Lambeth, Kristin N. Tews, Steven Adkins, Dean Frohlich et Barry I. Milavetz, « Expression of Two Succinyl-CoA Synthetases with Different Nucleotide Specificities in Mammalian Tissues », Journal of Biological Chemistry, vol. 279, no 35, , p. 36621-36624 (PMID15234968, DOI10.1074/jbc.M406884200, lire en ligne)
(en) Elwood A. Mullins, Julie A. Francois et T. Joseph Kappock, « A Specialized Citric Acid Cycle Requiring Succinyl-Coenzyme A (CoA):Acetate CoA-Transferase (AarC) Confers Acetic Acid Resistance on the Acidophile Acetobacter aceti », Journal of Bacteriology, vol. 190, no 14, , p. 4933-4940 (PMID18502856, PMCID2447011, DOI10.1128/JB.00405-08, lire en ligne)
(en) Irène E. Corthésy-Theulaz, Gabriela E. Bergonzelli, Hughes Henry, Daniel Bachmann, Daniel F. Schorderet, André L. Blum et L. Nicholas Ornston, « Cloning and Characterization of Helicobacter pylori Succinyl CoA:Acetoacetate CoA-transferase, a Novel Prokaryotic Member of the CoA-transferase Family », Journal of Biological Chemistry, vol. 272, no 41, , p. 25659-25667 (PMID9325289, DOI10.1074/jbc.272.41.25659, lire en ligne)
(en) Anthony D. Baughn, Scott J. Garforth, Catherine Vilchèze et William R. Jacobs Jr., « An Anaerobic-Type α-Ketoglutarate Ferredoxin Oxidoreductase Completes the Oxidative Tricarboxylic Acid Cycle of Mycobacterium tuberculosis », PLoS Pathogens, vol. 5, no 11, , e1000662 (PMID19936047, PMCID2773412, DOI10.1371/journal.ppat.1000662, lire en ligne)
(en) Maxim V. Ivannikov et Gregory T. Macleod, « Mitochondrial Free Ca2+ Levels and Their Effects on Energy Metabolism in Drosophila Motor Nerve Terminals », Biophysical Journal, vol. 104, no 11, , p. 2353-2361 (PMID23746507, PMCID3672877, DOI10.1016/j.bpj.2013.03.064, lire en ligne)
(en) Richard M. Denton , Philip J. Randle, Barbara J. Bridges, Ronald H. Cooper, Alan L. Kerbey, Helen T. Pask, David L. Severson, David Stansbie et Susan Whitehouse, « Regulation of mammalian pyruvate dehydrogenase », Molecular and Cellular Biochemistry, vol. 9, no 1, , p. 27-53 (PMID171557, DOI10.1007/BF01731731, lire en ligne)
(en) Inhibition of Hypoxia-inducible Factor (HIF) Hydroxylases by Citric Acid Cycle Intermediates. POSSIBLE LINKS BETWEEN CELL METABOLISM AND STABILIZATION OF HIF, « Peppi Koivunen, Maija Hirsilä, Anne M. Remes, Ilmo E. Hassinen, Kari I. Kivirikko et Johanna Myllyharju », Journal of Biological Chemistry, vol. 282, no 7, , p. 4524-4532 (PMID17182618, DOI10.1074/jbc.M610415200, lire en ligne)
(en) Premjit P. Halarnkar et Gary J. Blomquist, « Comparative aspects of propionate metabolism », Comparative Biochemistry and Physiology Part B: Comparative Biochemistry, vol. 92, no 2, , p. 227-231 (PMID2647392, DOI10.1016/0305-0491(89)90270-8, lire en ligne)
jbc.org
(en) David O. Lambeth, Kristin N. Tews, Steven Adkins, Dean Frohlich et Barry I. Milavetz, « Expression of Two Succinyl-CoA Synthetases with Different Nucleotide Specificities in Mammalian Tissues », Journal of Biological Chemistry, vol. 279, no 35, , p. 36621-36624 (PMID15234968, DOI10.1074/jbc.M406884200, lire en ligne)
(en) Irène E. Corthésy-Theulaz, Gabriela E. Bergonzelli, Hughes Henry, Daniel Bachmann, Daniel F. Schorderet, André L. Blum et L. Nicholas Ornston, « Cloning and Characterization of Helicobacter pylori Succinyl CoA:Acetoacetate CoA-transferase, a Novel Prokaryotic Member of the CoA-transferase Family », Journal of Biological Chemistry, vol. 272, no 41, , p. 25659-25667 (PMID9325289, DOI10.1074/jbc.272.41.25659, lire en ligne)
(en) Inhibition of Hypoxia-inducible Factor (HIF) Hydroxylases by Citric Acid Cycle Intermediates. POSSIBLE LINKS BETWEEN CELL METABOLISM AND STABILIZATION OF HIF, « Peppi Koivunen, Maija Hirsilä, Anne M. Remes, Ilmo E. Hassinen, Kari I. Kivirikko et Johanna Myllyharju », Journal of Biological Chemistry, vol. 282, no 7, , p. 4524-4532 (PMID17182618, DOI10.1074/jbc.M610415200, lire en ligne)
nih.gov
ncbi.nlm.nih.gov
(en) H. Gest, « Evolutionary roots of the citric acid cycle in prokaryotes », Biochemical Society Symposium, vol. 54, , p. 3-16 (PMID3332996)
(en) Enrique Meléndez-Hevia, Thomas G. Waddell et Marta Cascante, « The puzzle of the Krebs citric acid cycle: Assembling the pieces of chemically feasible reactions, and opportunism in the design of metabolic pathways during evolution », Journal of Molecular Evolution, vol. 43, no 1, , p. 293-303 (PMID8703096, DOI10.1007/BF02338838, lire en ligne)
(en) Oliver Ebenhöh et Reinhart Heinrich, « Evolutionary Optimization of Metabolic Pathways. Theoretical Reconstruction of the Stoichiometry of ATP and NADH Producing Systems », Bulletin of Mathematical Biology, vol. 63, no 1, , p. 21-55 (PMID11146883, DOI10.1006/bulm.2000.0197, lire en ligne)
(en) Takehiko SAHARA, Yasuhiro TAKADA, Yoji TAKEUCHI, Naoto YAMAOKA et Noriyuki FUKUNAGA, « Cloning, Sequencing, and Expression of a Gene Encoding the Monomeric Isocitrate Dehydrogenase of the Nitrogen-fixing Bacterium, Azotobacter vinelandii », Bioscience, Biotechnology, and Biochemistry, vol. 66, no 3, , p. 489-500 (PMID12005040, DOI10.1271/bbb.66.489, lire en ligne)
(en) Michel E. van der Rest, Christian Frank et Douwe Molenaar, « Functions of the Membrane-Associated and Cytoplasmic Malate Dehydrogenases in the Citric Acid Cycle of Escherichia coli », Journal of bacteriology, vol. 182, no 24, , p. 6892-6899 (PMID11092847, PMCID94812, DOI10.1128/JB.182.24.6892-6899.2000, lire en ligne)
(en) R. K. Porter et M. D. Brand, « Mitochondrial proton conductance and H+/O ratio are independent of electron transport rate in isolated hepatocytes », Biochemical Journal, vol. 310, , p. 379–382 (lire en ligne)PMID7654171
(en) David O. Lambeth, Kristin N. Tews, Steven Adkins, Dean Frohlich et Barry I. Milavetz, « Expression of Two Succinyl-CoA Synthetases with Different Nucleotide Specificities in Mammalian Tissues », Journal of Biological Chemistry, vol. 279, no 35, , p. 36621-36624 (PMID15234968, DOI10.1074/jbc.M406884200, lire en ligne)
(en) Elwood A. Mullins, Julie A. Francois et T. Joseph Kappock, « A Specialized Citric Acid Cycle Requiring Succinyl-Coenzyme A (CoA):Acetate CoA-Transferase (AarC) Confers Acetic Acid Resistance on the Acidophile Acetobacter aceti », Journal of Bacteriology, vol. 190, no 14, , p. 4933-4940 (PMID18502856, PMCID2447011, DOI10.1128/JB.00405-08, lire en ligne)
(en) Irène E. Corthésy-Theulaz, Gabriela E. Bergonzelli, Hughes Henry, Daniel Bachmann, Daniel F. Schorderet, André L. Blum et L. Nicholas Ornston, « Cloning and Characterization of Helicobacter pylori Succinyl CoA:Acetoacetate CoA-transferase, a Novel Prokaryotic Member of the CoA-transferase Family », Journal of Biological Chemistry, vol. 272, no 41, , p. 25659-25667 (PMID9325289, DOI10.1074/jbc.272.41.25659, lire en ligne)
(en) Anthony D. Baughn, Scott J. Garforth, Catherine Vilchèze et William R. Jacobs Jr., « An Anaerobic-Type α-Ketoglutarate Ferredoxin Oxidoreductase Completes the Oxidative Tricarboxylic Acid Cycle of Mycobacterium tuberculosis », PLoS Pathogens, vol. 5, no 11, , e1000662 (PMID19936047, PMCID2773412, DOI10.1371/journal.ppat.1000662, lire en ligne)
(en) Maxim V. Ivannikov et Gregory T. Macleod, « Mitochondrial Free Ca2+ Levels and Their Effects on Energy Metabolism in Drosophila Motor Nerve Terminals », Biophysical Journal, vol. 104, no 11, , p. 2353-2361 (PMID23746507, PMCID3672877, DOI10.1016/j.bpj.2013.03.064, lire en ligne)
(en) Richard M. Denton , Philip J. Randle, Barbara J. Bridges, Ronald H. Cooper, Alan L. Kerbey, Helen T. Pask, David L. Severson, David Stansbie et Susan Whitehouse, « Regulation of mammalian pyruvate dehydrogenase », Molecular and Cellular Biochemistry, vol. 9, no 1, , p. 27-53 (PMID171557, DOI10.1007/BF01731731, lire en ligne)
(en) Inhibition of Hypoxia-inducible Factor (HIF) Hydroxylases by Citric Acid Cycle Intermediates. POSSIBLE LINKS BETWEEN CELL METABOLISM AND STABILIZATION OF HIF, « Peppi Koivunen, Maija Hirsilä, Anne M. Remes, Ilmo E. Hassinen, Kari I. Kivirikko et Johanna Myllyharju », Journal of Biological Chemistry, vol. 282, no 7, , p. 4524-4532 (PMID17182618, DOI10.1074/jbc.M610415200, lire en ligne)
(en) Premjit P. Halarnkar et Gary J. Blomquist, « Comparative aspects of propionate metabolism », Comparative Biochemistry and Physiology Part B: Comparative Biochemistry, vol. 92, no 2, , p. 227-231 (PMID2647392, DOI10.1016/0305-0491(89)90270-8, lire en ligne)
nobelprize.org
(en) « The Nobel Prize in Physiology or Medicine 1937 : Albert Szent-Györgyi », (consulté le ) : « The Nobel Prize in Physiology or Medicine 1937 was awarded to Albert Szent-Györgyi "for his discoveries in connection with the biological combustion processes, with special reference to vitamin C and the catalysis of fumaric acid". ».
(en) « The Nobel Prize in Physiology or Medicine 1953 : Hans Krebs, Fritz Lipmann » (consulté le ) : « The Nobel Prize in Physiology or Medicine 1953 was divided equally between Hans Adolf Krebs "for his discovery of the citric acid cycle" and Fritz Albert Lipmann "for his discovery of co-enzyme A and its importance for intermediary metabolism". ».
plos.org
journals.plos.org
(en) Anthony D. Baughn, Scott J. Garforth, Catherine Vilchèze et William R. Jacobs Jr., « An Anaerobic-Type α-Ketoglutarate Ferredoxin Oxidoreductase Completes the Oxidative Tricarboxylic Acid Cycle of Mycobacterium tuberculosis », PLoS Pathogens, vol. 5, no 11, , e1000662 (PMID19936047, PMCID2773412, DOI10.1371/journal.ppat.1000662, lire en ligne)
sciencedirect.com
(en) Oliver Ebenhöh et Reinhart Heinrich, « Evolutionary Optimization of Metabolic Pathways. Theoretical Reconstruction of the Stoichiometry of ATP and NADH Producing Systems », Bulletin of Mathematical Biology, vol. 63, no 1, , p. 21-55 (PMID11146883, DOI10.1006/bulm.2000.0197, lire en ligne)
(en) Premjit P. Halarnkar et Gary J. Blomquist, « Comparative aspects of propionate metabolism », Comparative Biochemistry and Physiology Part B: Comparative Biochemistry, vol. 92, no 2, , p. 227-231 (PMID2647392, DOI10.1016/0305-0491(89)90270-8, lire en ligne)
(en) Enrique Meléndez-Hevia, Thomas G. Waddell et Marta Cascante, « The puzzle of the Krebs citric acid cycle: Assembling the pieces of chemically feasible reactions, and opportunism in the design of metabolic pathways during evolution », Journal of Molecular Evolution, vol. 43, no 1, , p. 293-303 (PMID8703096, DOI10.1007/BF02338838, lire en ligne)
(en) Richard M. Denton , Philip J. Randle, Barbara J. Bridges, Ronald H. Cooper, Alan L. Kerbey, Helen T. Pask, David L. Severson, David Stansbie et Susan Whitehouse, « Regulation of mammalian pyruvate dehydrogenase », Molecular and Cellular Biochemistry, vol. 9, no 1, , p. 27-53 (PMID171557, DOI10.1007/BF01731731, lire en ligne)
tandfonline.com
(en) Takehiko SAHARA, Yasuhiro TAKADA, Yoji TAKEUCHI, Naoto YAMAOKA et Noriyuki FUKUNAGA, « Cloning, Sequencing, and Expression of a Gene Encoding the Monomeric Isocitrate Dehydrogenase of the Nitrogen-fixing Bacterium, Azotobacter vinelandii », Bioscience, Biotechnology, and Biochemistry, vol. 66, no 3, , p. 489-500 (PMID12005040, DOI10.1271/bbb.66.489, lire en ligne)