Regulation of lactate production at the onset of ischaemia is independent of mitochondrial NADH/NAD+: insights from in silico studies
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Lufang Zhou | Xin Yu | William C Stanley | Xin Yu | G. Saidel | M. Cabrera | W. Stanley | Gerald M Saidel | Marco E Cabrera | Lufang Zhou
[1] G. Brooks,et al. Role of mitochondrial lactate dehydrogenase and lactate oxidation in the intracellular lactate shuttle. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[2] J. Mccormack,et al. Pyruvate dehydrogenase activity and malonyl CoA levels in normal and ischemic swine myocardium: effects of dichloroacetate. , 1996, Journal of molecular and cellular cardiology.
[3] C. Stone,et al. Acute myocardial ischemia causes a transmural gradient in glucose extraction but not glucose uptake. , 1992, The American journal of physiology.
[4] G. Brooks,et al. Lactate shuttles in nature. , 2001, Biochemical Society transactions.
[5] M. S. Jafri,et al. Cardiac energy metabolism: models of cellular respiration. , 2001, Annual review of biomedical engineering.
[6] M. Chandler,et al. Regulation of pyruvate dehydrogenase activity and citric acid cycle intermediates during high cardiac power generation , 2005, The Journal of physiology.
[7] F. Collins,et al. Principles of Biochemistry , 1937, The Indian Medical Gazette.
[8] A. Katz. Physiology of the heart , 1977 .
[9] A. Arai,et al. Regeneration of myocardial phosphocreatine in pigs despite continued moderate ischemia. , 1990, Circulation research.
[10] A. Liedtke,et al. Ischemia produces an increase in ammonia output in swine myocardium. , 1994, Cardioscience.
[11] A. Arai,et al. Active downregulation of myocardial energy requirements during prolonged moderate ischemia in swine. , 1991, Circulation research.
[12] G. Lopaschuk,et al. Increased cardiac fatty acid uptake with dobutamine infusion in swine is accompanied by a decrease in malonyl CoA levels. , 1996, Cardiovascular research.
[13] T. Scholz,et al. Thyroid hormone regulation of the NADH shuttles in liver and cardiac mitochondria. , 2000, Journal of molecular and cellular cardiology.
[14] R. Balaban,et al. Role of calcium in metabolic signaling between cardiac sarcoplasmic reticulum and mitochondria in vitro. , 2003, American journal of physiology. Cell physiology.
[15] K. Lanoue,et al. Electrogenic characteristics of the mitochondrial glutamate-aspartate antiporter. , 1974, The Journal of biological chemistry.
[16] J. Ulrich. [Physiology of the heart]. , 1950, Zeitschrift fur Kreislaufforschung.
[17] R. Hansford,et al. Relative importance of pyruvate dehydrogenase interconversion and feed-back inhibition in the effect of fatty acids on pyruvate oxidation by rat heart mitochondria. , 1978, Archives of biochemistry and biophysics.
[18] William C Stanley,et al. Myocardial substrate metabolism in the normal and failing heart. , 2005, Physiological reviews.
[19] J. Mccormack,et al. Regulation of myocardial carbohydrate metabolism under normal and ischaemic conditions Potential for pharmacological interventions , 1997 .
[20] B. Safer,et al. Contribution of tissue acidosis to ischemic injury in the perfused rat heart. , 1976, Circulation.
[21] B Korzeniewski,et al. Regulation of ATP supply in mammalian skeletal muscle during resting state-->intensive work transition. , 2000, Biophysical chemistry.
[22] Lufang Zhou,et al. Mechanistic model of cardiac energy metabolism predicts localization of glycolysis to cytosolic subdomain during ischemia. , 2005, American journal of physiology. Heart and circulatory physiology.
[23] M. Chandler,et al. Step and ramp induction of myocardial ischemia: comparison of in vivo and in silico results. , 2004, Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
[24] E. Lewandowski,et al. Altered metabolite exchange between subcellular compartments in intact postischemic rabbit hearts. , 1997, Circulation research.
[25] G. Cartee,et al. Myocardial glucose transporters and glycolytic metabolism during ischemia in hyperglycemic diabetic swine. , 1994, Metabolism: clinical and experimental.
[26] R. Winslow,et al. An integrated model of cardiac mitochondrial energy metabolism and calcium dynamics. , 2003, Biophysical journal.
[27] M. Ikeda-Saito,et al. Aging decreases electron transport complex III activity in heart interfibrillar mitochondria by alteration of the cytochrome c binding site. , 2001, Journal of molecular and cellular cardiology.
[28] G. Saidel,et al. Regulation of Cardiac Energetics: Role of Redox State and Cellular Compartmentation during Ischemia , 2005, Annals of the New York Academy of Sciences.
[29] H. Taegtmeyer. Energy metabolism of the heart: from basic concepts to clinical applications. , 1994, Current problems in cardiology.
[30] B. Ito,et al. Gradual onset of myocardial ischemia results in reduced myocardial infarction. Association with reduced contractile function and metabolic downregulation. , 1995, Circulation.
[31] Satoshi Matsuoka,et al. Regulation of oxidative phosphorylation in intact mammalian heart in vivo. , 2005, Biophysical chemistry.
[32] J. Ingwall. ATP and the Heart , 2002, Basic Science for the Cardiologist.
[33] H. Bruining,et al. Increase of cardiac work is associated with decrease of mitochondrial NADH. , 1995, The American journal of physiology.