PubMed HealthSearch

Biomedical subjects

J R Neely

Publications and source records attributed to J R Neely.

26 records · Page 2Linked to original sources

Regulation of long chain fatty acid activation in heart muscle.

Regulation of fatty acid activation was studied in whole tissue homogenates of rat heart. The palmityl-CoA synthestase activity was proportional to the fatty acid to albumin ratio in the incubation medium with maximal activity occurring at a molar ratio of about 5. Fatty acyl-CoA synthetase activity was inhibited by products of the reaction (AMP, pyrophosphate, and palmityl-CoA). The apparent Ki for palmityl-CoA inhibition was 5 muM and this inhibition could be relieved by CoA-SH or albumin. The Km for CoA-SH in the absence of palmityl-CoA was 7 muM and was increased to 24 muM by addition of 8 muM palmityl-CoA. Cytosolic and mitochondrial levels of CoA-SH and carnitine were estimated in whole tissue homogenates of heart and liver. From 90 to 100% of whole tissue CoA was recovered in the mitochondrial fraction of heart muscle and it was estimated that the cytosolic concentration of free CoA-SH probably never exceeds its Km value for fatty acid activation in this tissue. Therefore, the rate of fatty acid activation would be expected to depend on the availability of CoA-SH in the cytosolic space. By adjusting the concentration of CoA-SH in the cytosol to the rate of acetyl-CoA oxidation, carnitineacetyl-CoA transferase may function in cardiac muscle to couple the rate of fatty acid activation in the cytosolic compartment to acetyl-CoA oxidation in the mitochondria. Approximately 30% of whole tissue CoA-SH was located in the cytosolic space in liver. Heart muscle has about twice as much carnitine as liver but in both tissues 100% of whole tissue carintine was located in the cytosolic space. The ratio of carnitine to CoA-SH in the cytosolic space was estimated to be about 100 in heart and 17 in liver. This high ratio in cardiac muscle may function to channel fatty acids toward oxidation rather than toward synthesis of complex lipids.

Acetyltransferases

Metabolic responses to varying restrictions of coronary blood flow in swine.

An in situ working swine heart preparation is described in which total coronary perfusion was controlled. At normal rates of coronary flow, oxygen, glucose, and fatty acid utilization were stable for at least a 60-min perfusion period. With a 50% reduction in coronary flow, oxygen and glucose consumption were reduced during 30 min of perfusion and fatty acid extraction was lower at the end of 30 min. Glycogen utilization was increased, but tissue levels of creatine phosphate, ATP, and lactate were similar to those in hearts receiving normal flow. With a 60% reduction in coronary flow, uptake of oxygen, glucose, and fatty acids were further decreased. Tissue levels of high-energy phosphates and glycogen were decreased and ADP, AMP, and lactate increased. Mechanical performance progressively deteriorated in these hearts, and ventricular fibrillation developed after about 20 min (19.8 plus or minus 3.0 min). The data indicate that this preparation is suitable for the study of myocardial metabolism during mild and severe ischemia and may be useful for the evaluation of pharmacological interventions designed for the treatment of myocardial ischemia.

Adenosine Diphosphate

Effect of coronary blood flow on glycolytic flux and intracellular pH in isolated rat hearts.

The rate of coronary blood flow was varied in isolated working rat heart preparations to determine its influence on the rate of glocose utilization, tissue high-energy phosphates, and intracellular pH. A 60% reduction in coronary blood flow resulted in a 30% reduction in oxygen consumption, an accelerated rate of glusoe utilization, lower tissue levels of high-energy phosphate, and higher tissue levels of lactate and H+. Ventricular performance deteriorated as reflected by a decrease in heart rate and peak systolic pressure. Further reductions in coronary blood flow resulted in inhibition of glycolysis, a greater decrease in tissue levels of high-energy phosphates, and higher tissue levels of both lactate and H+. These changes in glycolytic flux, tissue metabolites, and ventricular performance were proportional to the degree of restriction in coronary blood flow. The importance of coronary blood flow and washout of the interstitial space in the maintenance of accelerated glycolytic flux in oxygen-deficient hearts is emphasized. It is concluded that acceleration of ATP production from glycolysis can occur only in the marginally ischemic tissue in the peripheral area of tissue supplied by an occluded artery. The central area of tissue which receives a low rate of coronary blood flow will have a reduced rate of ATP production due to both a lack of oxygen and an inhibition of glycolysis.

Adenosine Triphosphate

Mechanisms of glycolytic inhibition in ischemic rat hearts.

The mechanisms of glycolytic inhibition in ischemic myocardium were investigated in the isolated, perfused rat heart. Glycolysis was inhibited at the level of glyceraldehyde-3-phosphate dehydrogenase. The major factors that accounted for the glycolytic inhibition in the ischemic heart compared with the anoxic heart appeared to be higher tissue levels of lactate and H+ in the ischemic tissue. Increased extracellular pH inhibited glycolysis in anoxic and hypoxic hearts much more readily than it did in aerobic hearts. However, maintenance of both extracellular and intracellular pH caused only a modest acceleration of glycolysis in ischemic hearts. Accumulation of tissue lactate and inhibition of glycolysis were directly proportional to the reduction in coronary bloow flow in both anoxic and ischemic hearts. At intracellular lactate concentrations between 15 and 20 mM, glycolysis was inhibited under both conditions. Addition of either 10, 20, or 40 mM lactate to the perfusate inhibited glycolysis in aerobic, anoxic, and ischemic hearts. The effect of lactate did not appear to be mediated through changes in intracellular pH. It is concluded that accumulation of lactate represents a major factor in the inhibition of glycolysis that develops in ischemic hearts.

Animals

The mechanism of myocardial protection from ischemic arrest by intracoronary tetrodotoxin administration.

Intracoronary injection of 14 mcg. of tetrodotoxin into the ischemic isolated rat heart resulted in immediate cessation of mechanical activity. Upon reperfusion with oxygenated, modified Krebs-Henseleit bicarbonate buffer in a modified Langendorff apparatus, all hearts recovered normal rate, rtythm, and contractile vigor after up to 60 minutes of ischemia. In contrast, all hearts not administered tetrodotoxin showed bradycardia, irregular rhythm, and weak contraction upon reperfusion after 30 and 45 minutes of ischemia; after 60 minutes, no mechanical activity was evident. The improved cardiac function following ischemia in the tetrodotoxin-treated hearts was associated with persistence of normal adenosine triphosphate (ATP) levels after up to 30 minutes of ischemia and normal or elevated creatine phosphate (CP) levels after up to 60 minutes of ischemia. On the other hand, ATP and CP levels progressively declined to reach 50 per cent of normal values after 30 minutes in the ischemic hearts without tetrodotoxin. These findings indicate that postarrest ATP and CP levels play an important role in myocardial recovery after ischemic arrest.

Adenosine Triphosphate

An experimental model for studying myocardial ischemia. Correlation of hemodynamic performance and metabolism in the working swine heart.

An intact, working swine heart preparation with controlled coronary perfusion is described. In this model, hemodynamic and metabolic functions were correlated in control and ischemic myocardium. A closed-loop, extracorporeal coronary perfusion circuit in series with a perfusion pump and oxygenator was designed to return reoxygenated coronary venous blood at controlled flow rates to the left and right coronary arteries. In 9 swine at normal flows (232 plus or minus 17 ml. per minute), the preparation maintained stable hemodynamic performance and oxygen consumption for a 1 hour period, after which ischemia was induced by reducing coronary flow by 50 per cent. As a result, left ventricular end-diastolic pressure (LVEDP) rose by 227 per cent, whereas heart rate (-17 per cent), aortic pressure (-9 per cent), pressure time/minute (PTM) (-28 per cent), left ventricular work (-47 per cent), and oxygen consumption (-39 per cent) all decreased. The ischemic myocardium shifted from lactate extraction to production. With this model, we can define, over a period of time, several mechanical and metabolic collations as a function of total coronary blood flow in an intact, large animal. We can also test interventions during the acute phases of ischemia in an effort to reduce myocardial damage.

Animals

Inhibition of glycolysis in hearts during ischemic perfusion.

Rates of glycolysis were determined in the isolated perfused rat heart under aerobic, anoxic, and ischemic conditions. The rate was accelerated in anoxic and was inhibited in ischemic tissue. Glycolytic inhibition developed at the level of glyceraldehyde-3-P dehydrogenase and was associated with accumulation of high levels of tissue lactate and H+.

Anaerobiosis