Validation of the in vivo assessment of pyruvate dehydrogenase activity using hyperpolarised 13C MRS
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G. Radda | K. Clarke | N. Sibson | E. Carter | D. Tyler | H. Atherton | L. Cochlin | M. Schroeder | L. Heather | M. Dodd | S. Nagel
[1] G. Radda,et al. Measuring intracellular pH in the heart using hyperpolarized carbon dioxide and bicarbonate: a 13C and 31P magnetic resonance spectroscopy study , 2009, Cardiovascular research.
[2] Kieran Clarke,et al. The effect of hyperpolarized tracer concentration on myocardial uptake and metabolism , 2009, Magnetic resonance in medicine.
[3] G. Radda,et al. In vivo assessment of pyruvate dehydrogenase flux in the heart using hyperpolarized carbon-13 magnetic resonance , 2008, Proceedings of the National Academy of Sciences.
[4] G. Radda,et al. Application of Hyperpolarized Magnetic Resonance in the Study of Cardiac Metabolism , 2008 .
[5] Craig R. Malloy,et al. Hyperpolarized 13C allows a direct measure of flux through a single enzyme-catalyzed step by NMR , 2007, Proceedings of the National Academy of Sciences.
[6] M. Thaning,et al. Real-time metabolic imaging. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[7] William C Stanley,et al. Myocardial substrate metabolism in the normal and failing heart. , 2005, Physiological reviews.
[8] M. Chandler,et al. Regulation of pyruvate dehydrogenase activity and citric acid cycle intermediates during high cardiac power generation , 2005, The Journal of physiology.
[9] Lionel H. Opie,et al. Heart Physiology: From Cell to Circulation , 2003 .
[10] J. Ardenkjær-Larsen,et al. Increase in signal-to-noise ratio of > 10,000 times in liquid-state NMR , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[11] M. Holness,et al. Control of cardiac pyruvate dehydrogenase activity in peroxisome proliferator-activated receptor-alpha transgenic mice. , 2003, American journal of physiology. Heart and circulatory physiology.
[12] William C Stanley,et al. Impaired Myocardial Fatty Acid Oxidation and Reduced Protein Expression of Retinoid X Receptor-&agr; in Pacing-Induced Heart Failure , 2002, Circulation.
[13] R. de Beer,et al. Java-based graphical user interface for MRUI, a software package for quantitation of in vivo/medical magnetic resonance spectroscopy signals , 2001, Comput. Biol. Medicine.
[14] K. Bulmer,et al. Fuel-sensing mechanisms integrating lipid and carbohydrate utilization. , 2001, Biochemical Society transactions.
[15] P L Greenhaff,et al. Muscle acetyl group availability is a major determinant of oxygen deficit in humans during submaximal exercise. , 1998, The American journal of physiology.
[16] J. Chatham,et al. The effects of hypertrophy and diabetes on cardiac pyruvate dehydrogenase activity. , 1997, Journal of molecular and cellular cardiology.
[17] M. Holness,et al. Molecular mechanisms underlying the long-term impact of dietary fat to increase cardiac pyruvate dehydrogenase kinase: regulation by insulin, cyclic AMP and pyruvate. , 1997, Journal of molecular and cellular cardiology.
[18] K. M. Wyatt,et al. Ranolazine increases active pyruvate dehydrogenase in perfused normoxic rat hearts: evidence for an indirect mechanism. , 1996, Journal of molecular and cellular cardiology.
[19] G. Cooney,et al. High-fat feeding alters the response of rat PDH complex to acute changes in glucose and insulin. , 1995, The American journal of physiology.
[20] H. Taegtmeyer. Energy metabolism of the heart: from basic concepts to clinical applications. , 1994, Current problems in cardiology.
[21] Lewandowski Ed. Metabolic heterogeneity of carbon substrate utilization in mammalian heart: NMR determinations of mitochondrial versus cytosolic compartmentation. , 1992 .
[22] M. Holness,et al. Pyruvate dehydrogenase activities during the fed-to-starved transition and on re-feeding after acute or prolonged starvation. , 1989, The Biochemical journal.
[23] P. J. Randle. Fuel selection in animals. , 1986, Biochemical Society transactions.
[24] J. Hiltunen,et al. Metabolic compartmentation of pyruvate in the isolated perfused rat heart. , 1983, The Biochemical journal.
[25] J. Hiltunen,et al. Role of pyruvate carboxylation in the energy-linked regulation of pool sizes of tricarboxylic acid-cycle intermediates in the myocardium. , 1982, The Biochemical journal.
[26] J. Lonsdorfer,et al. Blood pyruvate recovery curves after short heavy submaximal exercise in man , 1980, European Journal of Applied Physiology and Occupational Physiology.
[27] E. Hoffman,et al. Investigation of [18F]2-fluoro-2-deoxyglucose for the measure of myocardial glucose metabolism. , 1978, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[28] 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.
[29] A. Leiter,et al. Relationshiop between phosphorylation and activity of pyruvate dehydrogenase in rat liver mitochondria and the absence of such a relationship for pyruvate carboxylase. , 1978, The Journal of biological chemistry.
[30] R. Denton,et al. Stimulation of phosphorylation and inactivation of pyruvate dehydrogenase by physiological inhibitors of the pyruvate dehydrogenase reaction , 1975, Nature.
[31] P. J. Randle,et al. Activation of pyruvate dehydrogenase in perfused rat heart by dichloroacetate (Short Communication). , 1973, The Biochemical journal.
[32] M. Mehlman,et al. Metabolic control of enzymes in normal, diabetic, and diabetic insulin-treated rats utilizing 1,3 butanediol. , 1971, Metabolism: clinical and experimental.
[33] J. Wahren,et al. Studies on the peripheral circulation and metabolism in man. IV. Oxygen utilization and lactate formation in the legs of healthy young men during strenuous exercise. , 1965, Acta physiologica Scandinavica.
[34] L. Carlson,et al. Studies on the peripheral circulation and metabolism in man. 1. Oxygen utilization and lactate-pyruvate formation in the legs at rest and during exercise in healthy subjects. , 1961, Acta physiologica Scandinavica.
[35] Ilwoo Park,et al. Kinetic modeling of hyperpolarized 13C1-pyruvate metabolism in normal rats and TRAMP mice. , 2010, Journal of magnetic resonance.
[36] J. Kere,et al. Physical exercise-induced hyperinsulinemic hypoglycemia is an autosomal-dominant trait characterized by abnormal pyruvate-induced insulin release. , 2003, Diabetes.
[37] J. C. Gomez,et al. Impaired Myocardial Fatty Acid Oxidation and Reduced Protein Expression of Retinoid X Receptor-alpha in Pacing-Induced Heart Failure , 2002 .
[38] I. Macdonald,et al. Substrate availability limits human skeletal muscle oxidative ATP regeneration at the onset of ischemic exercise. , 1998, The Journal of clinical investigation.
[39] K. M. Popov,et al. Starvation and diabetes increase the amount of pyruvate dehydrogenase kinase isoenzyme 4 in rat heart. , 1998, The Biochemical journal.
[40] E. Lewandowski. Metabolic heterogeneity of carbon substrate utilization in mammalian heart: NMR determinations of mitochondrial versus cytosolic compartmentation. , 1992, Biochemistry.
[41] L. Reed,et al. Regulation of mammalian pyruvate dehydrogenase complex by a phosphorylation-dephosphorylation cycle. , 1981, Current topics in cellular regulation.