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March 17, 2000Circulation Research819 citations

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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PKPaul F. KantorALArnaud LucienRKRaymond Kozak

Key Result

Trimetazidine decreased palmitate oxidation from 488 to 408 nmol/g/min and increased glucose oxidation from 1889 to 2378 nmol/g/min in isolated rat hearts (P<0.05).

Key Points

  • This research aims to explore how trimetazidine affects cardiac energy metabolism, specifically focusing on fatty acid and glucose oxidation.
  • Isolated working rat hearts were perfused with Krebs-Henseleit solution containing various substrates.
  • Fatty acids and glucose were radiolabeled for measuring their metabolic rates.
  • Activity of enzymes involved in fatty acid oxidation was assessed.
  • Trimetazidine decreased palmitate oxidation from 488 to 408 nmol x g dry weight(-1) x minute(-1) (P<0.05).
  • Increased glucose oxidation rates from 1889 to 2378 nmol x g dry weight(-1) x minute(-1) (P<0.05).
  • 210% increase in glucose oxidation rates was observed under low-flow ischemia.

Structured PICO

P
Population
Isolated working rat hearts perfused with Krebs-Henseleit solution containing 100 microU/mL insulin, 3% albumin, 5 mmol/L glucose, and fatty acids of different chain lengths
I
Intervention
Trimetazidine
O
Outcome
Rates of glycolysis, glucose oxidation, and fatty acid oxidation, and activities of enzymes involved in fatty acid oxidation (including 3-ketoacyl CoA thiolase)surrogate

Trimetazidine exerts its antianginal effects by directly inhibiting long-chain 3-ketoacyl CoA thiolase, which shifts cardiac energy metabolism from fatty acid oxidation to glucose oxidation.

Main Result

p-value: p=<0.05

Abstract

Trimetazidine is a clinically effective antianginal agent that has no negative inotropic or vasodilator properties. Although it is thought to have direct cytoprotective actions on the myocardium, the mechanism(s) by which this occurs is as yet undefined. In this study, we determined what effects trimetazidine has on both fatty acid and glucose metabolism in isolated working rat hearts and on the activities of various enzymes involved in fatty acid oxidation. Hearts were perfused with Krebs-Henseleit solution containing 100 microU/mL insulin, 3% albumin, 5 mmol/L glucose, and fatty acids of different chain lengths. Both glucose and fatty acids were appropriately radiolabeled with either (3)H or (14)C for measurement of glycolysis, glucose oxidation, and fatty acid oxidation. Trimetazidine had no effect on myocardial oxygen consumption or cardiac work under any aerobic perfusion condition used. In hearts perfused with 5 mmol/L glucose and 0.4 mmol/L palmitate, trimetazidine decreased the rate of palmitate oxidation from 488+/-24 to 408+/-15 nmol x g dry weight(-1) x minute(-1) (P<0.05), whereas it increased rates of glucose oxidation from 1889+/-119 to 2378+/-166 nmol x g dry weight(-1) x minute(-1) (P<0.05). In hearts subjected to low-flow ischemia, trimetazidine resulted in a 210% increase in glucose oxidation rates. In both aerobic and ischemic hearts, glycolytic rates were unaltered by trimetazidine. The effects of trimetazidine on glucose oxidation were accompanied by a 37% increase in the active form of pyruvate dehydrogenase, the rate-limiting enzyme for glucose oxidation. No effect of trimetazidine was observed on glycolysis, glucose oxidation, fatty acid oxidation, or active pyruvate dehydrogenase when palmitate was substituted with 0.8 mmol/L octanoate or 1.6 mmol/L butyrate, suggesting that trimetazidine directly inhibits long-chain fatty acid oxidation. This reduction in fatty acid oxidation was accompanied by a significant decrease in the activity of the long-chain isoform of the last enzyme involved in fatty acid beta-oxidation, 3-ketoacyl coenzyme A (CoA) thiolase activity (IC(50) of 75 nmol/L). In contrast, concentrations of trimetazidine in excess of 10 and 100 micromol/L were needed to inhibit the medium- and short-chain forms of 3-ketoacyl CoA thiolase, respectively. Previous studies have shown that inhibition of fatty acid oxidation and stimulation of glucose oxidation can protect the ischemic heart. Therefore, our data suggest that the antianginal effects of trimetazidine may occur because of an inhibition of long-chain 3-ketoacyl CoA thiolase activity, which results in a reduction in fatty acid oxidation and a stimulation of glucose oxidation.

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Cite This Study

Kantor et al. (2000) studied Myocardial ischemia (experimental model). Trimetazidine vs. Control (baseline/untreated) was evaluated on Palmitate oxidation and glucose oxidation rates (p=<0.05). Trimetazidine decreased palmitate oxidation from 488 to 408 nmol/g/min and increased glucose oxidation from 1889 to 2378 nmol/g/min in isolated rat hearts (P<0.05).

synapsesocial.com/papers/6a110de6076612a7a71697e0https://doi.org/10.1161/01.res.86.5.580
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Acetyl-CoA carboxylase regulation of fatty acid oxidation in the heart.1993 · 395 citations
  2. 2Trimetazidine: a new concept in the treatment of angina. Comparison with propranolol in patients with stable angina. Trimetazidine European Multicenter Study Group.1994 · 237 citations
  3. 3Combination treatment with trimetazidine and diltiazem in stable angina pectoris1997 · 104 citations
  4. 4THE GLUCOSE FATTY-ACID CYCLE ITS ROLE IN INSULIN SENSITIVITY AND THE METABOLIC DISTURBANCES OF DIABETES MELLITUS1963 · 5,189 citations
  5. 5An 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 · 266 citations