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Cardiac metabolism as a driver and therapeutic target of myocardial infarction
Coert J Zuurbier1, Luc Bertrand2, Christoph R Beauloye2,3
1Department of Anesthesiology, Laboratory of Experimental Intensive Care and Anesthesiology, Amsterdam Infection & Immunity, Amsterdam Cardiovascular Sciences, Amsterdam UMC, University of Amsterdam, Amsterdam, The Netherlands.
Insights
Targeting metabolic pathways can reduce cardiac ischaemia-reperfusion injury (IRI). Activating glycolysis, ketone oxidation, and O-GlcNAcylation, while inhibiting fatty acid oxidation, shows promise for reducing infarct size and preventing heart failure.
Area of Science:
- Cardiology
- Metabolic Medicine
- Biochemistry
Background:
- Cardiac ischaemia-reperfusion injury (IRI) significantly contributes to myocardial necrosis and subsequent heart failure.
- IRI is fundamentally a metabolic disorder exacerbated by metabolic shifts during ischaemia and reperfusion.
Purpose of the Study:
- To review current knowledge on metabolic pathways as therapeutic targets for mitigating cardiac IRI.
- To identify promising metabolic interventions for reducing infarct size.
Main Methods:
- Review of scientific literature on metabolic pathways involved in cardiac IRI.
- Analysis of therapeutic strategies targeting specific metabolic pathways, including activation and inhibition.
Main Results:
- Activating glycolysis, glucose oxidation, ketone oxidation, hexosamine biosynthesis pathway (O-GlcNAcylation), and deacetylation (sirtuins) show potential for reducing IRI.
- Inhibiting the malate-aspartate shuttle, mitochondrial oxygen consumption, fatty acid oxidation, and succinate metabolism may offer protection.
- Maintaining mitochondrial structural integrity via hexokinase II or creatine kinase association, or inhibiting FOF1-ATPase dimer destabilization, prevents mitochondrial damage.
Conclusions:
- Targeting metabolic pathways offers a promising therapeutic approach to reduce cardiac IRI.
- Combined targeting of glycolysis, O-GlcNAcylation, ketone, fatty acid, and succinate metabolism represents the most promising druggable strategy against cardiac IRI.
Abstract:
Reducing infarct size during a cardiac ischaemic-reperfusion episode is still of paramount importance, because the extension of myocardial necrosis is an important risk factor for developing heart failure. Cardiac ischaemia-reperfusion injury (IRI) is in principle a metabolic pathology as it is caused by abruptly halted metabolism during the ischaemic episode and exacerbated by sudden restart of specific metabolic pathways at reperfusion. It should therefore not come as a surprise that therapy directed at metabolic pathways can modulate IRI. Here, we summarize the current knowledge of important metabolic pathways as therapeutic targets to combat cardiac IRI. Activating metabolic pathways such as glycolysis (eg AMPK activators), glucose oxidation (activating pyruvate dehydrogenase complex), ketone oxidation (increasing ketone plasma levels), hexosamine biosynthesis pathway (O-GlcNAcylation; administration of glucosamine/glutamine) and deacetylation (activating sirtuins 1 or 3; administration of NAD+ -boosting compounds) all seem to hold promise to reduce acute IRI. In contrast, some metabolic pathways may offer protection through diminished activity. These pathways comprise the malate-aspartate shuttle (in need of novel specific reversible inhibitors), mitochondrial oxygen consumption, fatty acid oxidation (CD36 inhibitors, malonyl-CoA decarboxylase inhibitors) and mitochondrial succinate metabolism (malonate). Additionally, protecting the cristae structure of the mitochondria during IR, by maintaining the association of hexokinase II or creatine kinase with mitochondria, or inhibiting destabilization of FO F1 -ATPase dimers, prevents mitochondrial damage and thereby reduces cardiac IRI. Currently, the most promising and druggable metabolic therapy against cardiac IRI seems to be the singular or combined targeting of glycolysis, O-GlcNAcylation and metabolism of ketones, fatty acids and succinate.
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