The antianginal drug trimetazidine shifts cardiac energy metabolism from fatty acid oxidation to glucose oxidation by inhibiting mitochondrial long-chain 3-ketoacyl coenzyme A thiolase.
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[1] A. Beckett,et al. The influence of smoking on the intersubject variation in pentazocine elimination. , 1976, British journal of clinical pharmacology.
[2] J. Passeron. [Effectiveness of trimetazidine in stable effort angina due to chronic coronary insufficiency. A double-blind versus placebo study]. , 1986, Presse medicale.
[3] C. Labrid,et al. Trimetazidine, a cellular anti-ischemic agent , 1988 .
[4] C. Guarnieri,et al. Improvement of long-term preservation of the isolated arrested rat heart by trimetazidine: effects on the energy state and mitochondrial function. , 1995, The American journal of cardiology.
[5] A. Munnich,et al. Human trifunctional protein deficiency: a new disorder of mitochondrial fatty acid beta-oxidation. , 1992, Biochemical and biophysical research communications.
[6] G. Lopaschuk,et al. Uncoupling of contractile function from mitochondrial TCA cycle activity and MVO2 during reperfusion of ischemic hearts. , 1996, The American journal of physiology.
[7] G. Lopaschuk,et al. An imbalance between glycolysis and glucose oxidation is a possible explanation for the detrimental effects of high levels of fatty acids during aerobic reperfusion of ischemic hearts. , 1993, The Journal of pharmacology and experimental therapeutics.
[8] G. Lopaschuk,et al. Regulation of fatty acid oxidation in the mammalian heart in health and disease. , 1994, Biochimica et biophysica acta.
[9] H. Schulz,et al. Beta oxidation of fatty acids. , 1991, Biochimica et biophysica acta.
[10] R. Wanders,et al. β-Oxidation Enzymes in Fibroblasts from Patients with 3-Hydroxydicarboxylic Aciduria , 1994, Pediatric Research.
[11] P. Sellier. [The effects of trimetazidine on ergometric parameters in exercise-induced angina. Controlled multicenter double blind versus placebo study]. , 1986, Archives des maladies du coeur et des vaisseaux.
[12] M. Czubryt,et al. The contribution of ionic contribution of ionic imbalance to ischemia/reperfusion-induced injury , 1995 .
[13] D. Hardie,et al. AMP-activated protein kinase: an ultrasensitive system for monitoring cellular energy charge. , 1999, The Biochemical journal.
[14] D. Pessayre,et al. Effects of female sex hormones on mitochondria: possible role in acute fatty liver of pregnancy. , 1995, The American journal of physiology.
[15] J. Mccormack,et al. Regulation of myocardial carbohydrate metabolism under normal and ischaemic conditions Potential for pharmacological interventions , 1997 .
[16] G. Lopaschuk,et al. Epinephrine increases ATP production in hearts by preferentially increasing glucose metabolism. , 1994, The American journal of physiology.
[17] G. A. Murphy,et al. Inhibition of long-chain fatty acid metabolism does not affect platelet aggregation responses. , 1998, European journal of pharmacology.
[18] H. Dargie,et al. Trimetazidine: a new concept in the treatment of angina. Comparison with propranolol in patients with stable angina. Trimetazidine European Multicenter Study Group. , 1994, British journal of clinical pharmacology.
[19] D. Constantin-Teodosiu,et al. A sensitive radioisotopic assay of pyruvate dehydrogenase complex in human muscle tissue. , 1991, Analytical biochemistry.
[20] N. Lavanchy,et al. Anti-ischemic effects of trimetazidine: 31P-NMR spectroscopy in the isolated rat heart. , 1987, Archives internationales de pharmacodynamie et de therapie.
[21] S. Lévy. Combination therapy of trimetazidine with diltiazem in patients with coronary artery disease. Group of South of France Investigators. , 1995, The American journal of cardiology.
[22] G. Lopaschuk,et al. High Rates of Fatty Acid Oxidation during Reperfusion of Ischemic Hearts Are Associated with a Decrease in Malonyl-CoA Levels Due to an Increase in 5′-AMP-activated Protein Kinase Inhibition of Acetyl-CoA Carboxylase (*) , 1995, The Journal of Biological Chemistry.
[23] M. Czubryt,et al. The contribution of ionic imbalance to ischemia/reperfusion-induced injury. , 1995, Journal of molecular and cellular cardiology.
[24] H. Taegtmeyer. Energy metabolism of the heart: from basic concepts to clinical applications. , 1994, Current problems in cardiology.
[25] L. Witters,et al. Acetyl-CoA carboxylase regulation of fatty acid oxidation in the heart. , 1993, The Journal of biological chemistry.
[26] G. Lopaschuk,et al. Characterization of cardiac malonyl-CoA decarboxylase and its putative role in regulating fatty acid oxidation. , 1998, The American journal of physiology.
[27] M. Gallet. [Clinical effectiveness of trimetazidine in stable effort angina. A double-blind versus placebo controlled study]. , 1986, Presse medicale.
[28] S. Krishnaswami,et al. Combination treatment with trimetazidine and diltiazem in stable angina pectoris , 1997, Heart.
[29] Bin Liu,et al. Cardiac efficiency is improved after ischemia by altering both the source and fate of protons. , 1996, Circulation research.
[30] E. Newsholme,et al. The glucose fatty-acid cycle. Its role in insulin sensitivity and the metabolic disturbances of diabetes mellitus. , 1963, Lancet.
[31] P. Sellier,et al. [Ergometric effects of a single administration of trimetazidine]. , 1986, Presse medicale.
[32] L. Demaison,et al. Some biochemical aspects of the protective effect of trimetazidine on rat cardiomyocytes during hypoxia and reoxygenation. , 1994, Journal of molecular and cellular cardiology.
[33] L. Opie. Metabolism of the heart in health and disease. Part I , 1968 .
[34] G. Lopaschuk,et al. Glucose and palmitate oxidation in isolated working rat hearts reperfused after a period of transient global ischemia. , 1990, Circulation research.
[35] J. Mccormack,et al. Ranolazine stimulates glucose oxidation in normoxic, ischemic, and reperfused ischemic rat hearts. , 1996, Circulation.
[36] L. Opie. Metabolism of the heart in health and disease. 3. , 1969, American heart journal.