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June 11, 2026Journal of the American College of Cardiology155 citations

The Adrenergic-Fatty Acid Load in Heart Failure

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LOLionel H. OpieGeneral Cardiology
Juhani Knuuti
Juhani KnuutiCardiac Imaging

Key Result

Metabolic therapies targeting the hyperadrenergic state and free fatty acid metabolism offer potential clinical benefits in heart failure, though large outcome trials are lacking.

Key Points

  • The study evaluates the relationship between hyperadrenergic states, free fatty acids, and glucose metabolism in heart failure.
  • Hypothesis-driven approach focusing on plasma free fatty acids and mitochondrial activity.
  • Interventions include beta-adrenergic blockade, fatty acid oxidation inhibitors, and exercise with metformin.
  • Evaluation of existing data on trimetazidine and exercise as potential blockers of heart failure progression.
  • Positive data on metabolic benefits and safety of trimetazidine with almost no side effects.
  • Exercise demonstrated mortality reduction in heart failure; other therapies lack large outcome trial evidence.
  • Future therapies may involve fat oxidation inhibition, fish oil, and novel insulin treatments.

Structured PICO

P
Population
Patients with heart failure
I
Intervention
Metabolic therapies including beta-blockers, trimetazidine, perhexiline, exercise, and metformin

This review highlights the potential of metabolic therapies to counteract the hyperadrenergic state and lipotoxicity associated with heart failure.

Limitations

  • Data from a large outcome trial are lacking for trimetazidine
  • Ranolazine requires testing in human heart failure
  • Insulin to reduce hyperglycemia and free fatty acids is untested in heart failure

Abstract

The hypothesis proposed is that heart failure (HF) is associated with a reactive hyperadrenergic state that increases circulating plasma free fatty acids (FFAs), which leads to impaired glucose metabolism and insulin resistance. We propose that increased FFA-induced mitochondrial uncoupling and substantial oxygen wastage is closely associated with the generation of reactive oxygen species, inflammatory markers, and the development of insulin resistance. The therapeutic aims of metabolic therapy are as follows: 1) to decrease hyperadrenergic drive; 2) to inhibit lipotoxicity and glucotoxicity; and 3) to increase glucose uptake by muscle. These aims are achieved, respectively, by the following: 1) the use of beta-adrenergic blockade and all measures that relieve the mechanical load on the heart; 2) the use of drugs that inhibit fatty acid oxidation (trimetazidine, perhexiline), although without clinical evidence that the heart is their major site of action in HF; and 3) increase of the transport of glucose into the cells by exercise and metformin. Of these measures, only data concerning the reduction of mortality as the result of exercise are available. Of all the other measures, there are substantial positive data on the use of trimetazidine that demonstrate metabolic and clinical benefit with almost no side effects, but data from a large outcome trial are lacking. Our data suggest a major extracardiac site of trimetazidine action. Ranolazine, which inhibits the late sodium inward current, requires testing in human HF. Insulin to reduce hyperglycemia and FFAs is untested in HF, with incretins such as glucagon-like peptide-1 on the horizon. Other future therapies may include malonyl-coenzyme A regulators to inhibit fatty acid oxidation, fish oil omega-3, and activators of protein kinase C-epsilon.

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Cite This Study

Opie et al. (2009) conducted a review in Heart failure. Metabolic therapy was evaluated. Metabolic therapies targeting the hyperadrenergic state and free fatty acid metabolism offer potential clinical benefits in heart failure, though large outcome trials are lacking.

synapsesocial.com/papers/6a2b2649915c210bd35c5e70https://doi.org/10.1016/j.jacc.2009.07.024
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