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Impact of anaerobic glycolysis and oxidative substrate selection on contractile function and mechanical efficiency
Lufang Zhou1, Hazel Huang, Tracy A McElfresh
1Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio, USA.
Abstract:
The role of anaerobic glycolysis and oxidative substrate selection on contractile function and mechanical efficiency during moderate severity myocardial ischemia is unclear. We hypothesize that 1) preventing anaerobic glycolysis worsens contractile function and mechanical efficiency and 2) increasing glycolysis and glucose oxidation while inhibiting free fatty acid oxidation improves contractile function during ischemia. Experiments were performed in anesthetized pigs, with regional ischemia induced by a 60% decrease in left anterior descending coronary artery blood flow for 40 min. Three groups were studied: 1) no treatment, 2) inhibition of glycolysis with iodoacetate (IAA), or 3) hyperinsulinemia and hyperglycemia (HI + HG). Glucose and free fatty acid oxidation were measured using radioisotopes and anaerobic glycolysis from net lactate efflux and myocardial lactate content. Regional contractile power was assessed from left ventricular pressure and segment length in the anterior wall. We found that preventing anaerobic glycolysis with IAA during ischemia in the absence of alterations in free fatty acid and glucose oxidation did not adversely affect contractile function or mechanical efficiency during myocardial ischemia, suggesting that anaerobic glycolysis is not essential for maintaining residual contractile function. Increasing glycolysis and glucose oxidation with HI + HG inhibited free fatty acid oxidation and improved contractile function and mechanical efficiency. In conclusion, these results show a dissociation between myocardial function and anaerobic glycolysis during moderate severity ischemia in vivo, suggesting that metabolic therapies should not be aimed at inhibiting anaerobic glycolysis per se, but rather activating insulin signaling and/or enhancing carbohydrate oxidation and/or decreasing fatty acid oxidation.
Insights
Preventing anaerobic glycolysis does not harm heart function during ischemia. Activating insulin signaling and increasing glucose oxidation improves heart function by reducing fatty acid oxidation.
Area of Science:
- Cardiology
- Metabolic Physiology
- Biochemistry
Background:
- The interplay between substrate utilization and cardiac performance during myocardial ischemia remains incompletely understood.
- Investigating the specific roles of anaerobic glycolysis and oxidative substrate selection is crucial for understanding heart function under stress.
Purpose of the Study:
- To determine if inhibiting anaerobic glycolysis impairs contractile function and mechanical efficiency during moderate myocardial ischemia.
- To assess if enhancing glycolysis and glucose oxidation while suppressing free fatty acid oxidation improves cardiac function during ischemia.
Main Methods:
- Experiments were conducted in anesthetized pigs subjected to regional myocardial ischemia.
- Three groups were studied: control, glycolysis inhibition with iodoacetate (IAA), and hyperinsulinemia/hyperglycemia (HI + HG).
- Substrate oxidation (glucose, free fatty acids) and anaerobic glycolysis were quantified; regional contractile power was measured.
Main Results:
- Inhibition of anaerobic glycolysis with IAA did not negatively impact contractile function or mechanical efficiency.
- Enhancing glycolysis and glucose oxidation via HI + HG, coupled with inhibited free fatty acid oxidation, led to improved contractile function and mechanical efficiency.
- A dissociation was observed between myocardial function and anaerobic glycolysis during moderate ischemia.
Conclusions:
- Anaerobic glycolysis is not essential for maintaining residual contractile function during moderate myocardial ischemia.
- Metabolic interventions should focus on activating insulin signaling and/or promoting carbohydrate oxidation while reducing fatty acid oxidation for improved cardiac outcomes during ischemia.
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