Is a high glycogen content beneficial or detrimental to the ischemic rat heart? A controversy resolved.
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G. Radda | K. Clarke | L. Opie | H. Cross | H. R. Cross
[1] G. Radda,et al. The role of Na+/K+ ATPase activity during low flow ischemia in preventing myocardial injury: A 31P, 23Na and 87Rb NMR spectroscopic study , 1995, Magnetic resonance in medicine.
[2] G. Radda,et al. Is lactate-induced myocardial ischaemic injury mediated by decreased pH or increased intracellular lactate? , 1995, Journal of molecular and cellular cardiology.
[3] H. Taegtmeyer,et al. Metabolic recovery of isolated working rat heart after brief global ischemia. , 1994, The American journal of physiology.
[4] K. Clarke,et al. Intracellular and extracellular spaces and the direct quantification of molar intracellular concentrations of phosphorus metabolites in the isolated rat heart using 31P NMR spectroscopy and phosphonate markers , 1994, Magnetic resonance in medicine.
[5] M. Boska. ATP production rates as a function of force level in the human gastrocnemius/soleus using 31P MRS , 1994, Magnetic resonance in medicine.
[6] M. Janier,et al. The relative importance of myocardial energy metabolism compared with ischemic contracture in the determination of ischemic injury in isolated perfused rabbit hearts. , 1994, Circulation research.
[7] M. Stern,et al. Ionic basis of ischaemic cardiac injury: insights from cellular studies. , 1994, Cardiovascular research.
[8] G. Pohost,et al. NMR measurements of Na+ and cellular energy in ischemic rat heart: role of Na(+)-H+ exchange. , 1993, The American journal of physiology.
[9] S. Neubauer,et al. Extracellular volume and transsarcolemmal proton movement during ischemia and reperfusion: A 31P NMR spectroscopic study of the isovolumic rat heart , 1993, NMR in biomedicine.
[10] W. Linz,et al. Hoe 694, a new Na+/H+ exchange inhibitor and its effects in cardiac ischaemia , 1993, British journal of pharmacology.
[11] R. Jennings,et al. Adenosine slows ischaemic metabolism in canine myocardium in vitro: relationship to ischaemic preconditioning. , 1993, Cardiovascular research.
[12] R. Sievers,et al. Loss of Myocardial Protection After Preconditioning Correlates With the Time Course of Glycogen Recovery Within the Preconditioned Segment , 1993, Circulation.
[13] K. Clarke,et al. Changes in probe sensitivity during nmr spectroscopic studies of the perfused rat heart: a warning , 1992, Magnetic resonance in medicine.
[14] P. Cobbold,et al. Bioluminescent measurement in single cardiomyocytes of sudden cytosolic ATP depletion coincident with rigor. , 1992, Journal of molecular and cellular cardiology.
[15] A. From,et al. Ischemic contracture begins when anaerobic glycolysis stops: a 31P-NMR study of isolated rat hearts. , 1991, The American journal of physiology.
[16] R. London,et al. Amiloride delays the ischemia-induced rise in cytosolic free calcium. , 1991, Circulation research.
[17] C. Schneider,et al. Fasting in vivo delays myocardial cell damage after brief periods of ischemia in the isolated working rat heart. , 1991, Circulation research.
[18] F. Eberli,et al. Protective effect of increased glycolytic substrate against systolic and diastolic dysfunction and increased coronary resistance from prolonged global underperfusion and reperfusion in isolated rabbit hearts perfused with erythrocyte suspensions. , 1991, Circulation research.
[19] E. Lakatta,et al. Effects of amiloride on metabolism and contractility during reoxygenation in perfused rat hearts. , 1990, Circulation research.
[20] L. Opie,et al. Glucose flux rate regulates onset of ischemic contracture in globally underperfused rat hearts. , 1990, Circulation research.
[21] M. Tani,et al. Role of Intracellular Na+ in Ca2+ Overload and Depressed Recovery of Ventricular Function of Reperfused Ischemic Rat Hearts Possible Involvement of H+-Na+ and Na+-Ca2+ Exchange , 1989, Circulation research.
[22] V. Kupriyanov,et al. Relationships between pre-ischemic ATP and glycogen content and post-ischemic recovery of rat heart. , 1988, Journal of molecular and cellular cardiology.
[23] M. Karmazyn,et al. Amiloride enhances postischemic ventricular recovery: possible role of Na+-H+ exchange. , 1988, The American journal of physiology.
[24] R. V. Vander Heide,et al. Irreversible injury of isolated adult rat myocytes. Osmotic fragility during metabolic inhibition. , 1988, The American journal of pathology.
[25] H. Taegtmeyer,et al. Failure of glycogen depletion to improve left ventricular function of the rabbit heart after hypothermic ischemic arrest. , 1988, Circulation research.
[26] W. Barry,et al. Role of Changes in [Ca2+]i in Energy Deprivation Contracture , 1987, Circulation research.
[27] J. Weiss,et al. Glycolysis preferentially inhibits ATP-sensitive K+ channels in isolated guinea pig cardiac myocytes. , 1987, Science.
[28] K. Clarke,et al. Temporal relation between energy metabolism and myocardial function during ischemia and reperfusion. , 1987, The American journal of physiology.
[29] P. Cobbold,et al. Cytosolic free Ca2+ in single rat heart cells during anoxia and reoxygenation. , 1987, The Biochemical journal.
[30] M. Nelson,et al. Effects of the ATP, ADP and inorganic phosphate on the transport rate of the Na+,K+-pump. , 1986, Biochimica et biophysica acta.
[31] M. Lazdunski,et al. The sodium/hydrogen exchange system in cardiac cells: its biochemical and pharmacological properties and its role in regulating internal concentrations of sodium and internal pH. , 1985, Journal of molecular and cellular cardiology.
[32] J. Weiss,et al. Functional compartmentation of glycolytic versus oxidative metabolism in isolated rabbit heart. , 1985, The Journal of clinical investigation.
[33] J. R. Neely,et al. Role of Glycolytic Products in Damage to Ischemic Myocardium: Dissociation of Adenosine Triphosphate Levels and Recovery of Function of Reperfused Ischemic Hearts , 1984, Circulation research.
[34] R. Coronel,et al. The change of the free energy of ATP hydrolysis during global ischemia and anoxia in the rat heart. Its possible role in the regulation of transsarcolemmal sodium and potassium gradients. , 1984, Journal of molecular and cellular cardiology.
[35] C. Haudenschild,et al. Determinants of a protective effect of glucose and insulin on the ischemic myocardium. Effects on contractile function, diastolic compliance, metabolism, and ultrastructure during ischemia and reperfusion. , 1983, Circulation research.
[36] T. Nagao,et al. Ischemia-reperfusion induced elevation of diastolic tension in the isolated guinea pig heart and the effects of calcium antagonists. , 1983, Japanese heart journal.
[37] E Jüngling,et al. Free energy change of ATP-hydrolysis: a causal factor of early hypoxic failure of the myocardium? , 1982, Journal of molecular and cellular cardiology.
[38] J. Gavin,et al. The Effect of an Isovolumic Left Ventricle on the Coronary Vascular Competence during Reflow after Global Ischemia in the Rat Heart , 1981, Circulation research.
[39] J. Fleiss,et al. Some Statistical Methods Useful in Circulation Research , 1980, Circulation research.
[40] R. Veech,et al. Effects of pH and free Mg2+ on the Keq of the creatine kinase reaction and other phosphate hydrolyses and phosphate transfer reactions. , 1979, The Journal of biological chemistry.
[41] L. Opie,et al. Effects of Substrates on Tissue Metabolic Changes in the Isolated Rat Heart during Underperfusion and on Release of Lactate Dehydrogenase and Arrhythmias during Reperfusion , 1978, Circulation research.
[42] M. Rovetto,et al. Mechanisms of Glycolytic Inhibition in Ischemic Rat Hearts , 1975, Circulation research.
[43] P. J. Garrahan,et al. The interaction of adenosinetriphosphate and inorganic phosphate with the sodium pump in red cells. , 1975, The Journal of physiology.
[44] J. Scheuer,et al. Protective Role of Increased Myocardial Glycogen Stores in Cardiac Anoxia in the Rat , 1970, Circulation research.
[45] R. London,et al. Correlation between cytosolic free calcium, contracture, ATP, and irreversible ischemic injury in perfused rat heart. , 1990, Circulation research.
[46] E. Marbán,et al. Mechanism of ischemic contracture in ferret hearts: relative roles of [Ca2+]i elevation and ATP depletion. , 1990, The American journal of physiology.
[47] H. Taegtmeyer,et al. Glycogen loading improves left ventricular function of the rabbit heart after hypothermic ischemic arrest , 1989 .