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Updated: Jul 21, 2025

Isolation of Atrial Cardiomyocytes from a Rat Model of Metabolic Syndrome-related Heart Failure with Preserved Ejection Fraction
Published on: July 26, 2018
Metabolic Approaches for the Treatment of Dilated Cardiomyopathy
Roberto Spoladore1, Giuseppe Pinto2, Francesca Daus3
1Department of Cardiology, Heart Failure Clinic, Alessandro Manzoni Hospital, ASST Lecco, 23900 Lecco, Italy.
Insights
Dilated cardiomyopathy (DCM) heart failure involves abnormal cardiac metabolism. This review explores metabolic therapies, including SGLT2 inhibitors, to optimize heart energy and improve function in DCM patients.
Area of Science:
- Cardiology
- Metabolic Medicine
- Pharmacology
Background:
- Dilated cardiomyopathy (DCM) leads to heart failure (HF) with impaired cardiac metabolism and energy inefficiency.
- The optimal metabolic state for a failing heart remains debated, with conflicting evidence on glucose vs. fatty acid oxidation.
- Previous small trials suggest metabolic drugs can improve left ventricular (LV) function in HF, but larger trials are lacking.
Purpose of the Study:
- To identify optimal metabolic therapies for DCM patients.
- To review drugs directly targeting cardiac metabolism.
- To outline ancillary metabolic effects of standard HF treatments, focusing on SGLT2 inhibitors.
Main Methods:
- Review of existing literature on cardiac metabolism in HF and DCM.
- Analysis of pilot trials for metabolic drugs (trimetazidine, ranolazine, etc.).
- Examination of the role of ketone bodies and SGLT2 inhibitors in HF.
Main Results:
- Small trials of metabolic drugs showed potential benefits in LV function and energetics.
- Conflicting data exists on whether to increase glucose or fatty acid oxidation.
- SGLT2 inhibitors improve cardiac function in HF, potentially via elevated ketone bodies and optimized energy metabolism.
Conclusions:
- Metabolic dysfunction is a key issue in DCM-related HF.
- SGLT2 inhibitors show promise for improving cardiac function in HF by modulating energy metabolism.
- Further research is needed to establish optimal metabolic strategies for DCM.
Abstract:
In dilated cardiomyopathy (DCM), where the heart muscle becomes stretched and thin, heart failure (HF) occurs, and the cardiomyocytes suffer from an energetic inefficiency caused by an abnormal cardiac metabolism. Although underappreciated as a potential therapeutic target, the optimal metabolic milieu of a failing heart is still largely unknown and subject to debate. Because glucose naturally has a lower P/O ratio (the ATP yield per oxygen atom), the previous studies using this strategy to increase glucose oxidation have produced some intriguing findings. In reality, the vast majority of small-scale pilot trials using trimetazidine, ranolazine, perhexiline, and etomoxir have demonstrated enhanced left ventricular (LV) function and, in some circumstances, myocardial energetics in chronic ischemic and non-ischemic HF with a reduced ejection fraction (EF). However, for unidentified reasons, none of these drugs has ever been tested in a clinical trial of sufficient size. Other pilot studies came to the conclusion that because the heart in severe dilated cardiomyopathy appears to be metabolically flexible and not limited by oxygen, the current rationale for increasing glucose oxidation as a therapeutic target is contradicted and increasing fatty acid oxidation is supported. As a result, treating metabolic dysfunction in HF may benefit from raising ketone body levels. Interestingly, treatment with sodium-glucose cotransporter-2 inhibitors (SGLT2i) improves cardiac function and outcomes in HF patients with or without type 2 diabetes mellitus (T2DM) through a variety of pleiotropic effects, such as elevated ketone body levels. The improvement in overall cardiac function seen in patients receiving SGLT2i could be explained by this increase, which appears to be a reflection of an adaptive process that optimizes cardiac energy metabolism. This review aims to identify the best metabolic therapeutic approach for DCM patients, to examine the drugs that directly affect cardiac metabolism, and to outline all the potential ancillary metabolic effects of the guideline-directed medical therapy. In addition, a special focus is placed on SGLT2i, which were first studied and prescribed to diabetic patients before being successfully incorporated into the pharmacological arsenal for HF patients.
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