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Pyruvate modifies metabolic flux and nutrient sensing during extracorporeal membrane oxygenation in an immature swine
Dolena R Ledee1, Masaki Kajimoto1, Colleen M O'Kelly Priddy2
1Center for Developmental Therapeutics, Seattle Children's Research Institute, Seattle, Washington;
Insights
Supplementing pyruvate during extracorporeal membrane oxygenation (ECMO) in piglets did not increase pyruvate oxidation. However, pyruvate altered nutrient-sensitive pathways, suggesting potential cardiac benefits warranting further investigation.
Area of Science:
- Biochemistry
- Pediatric Cardiology
- Metabolic Research
Background:
- Extracorporeal membrane oxygenation (ECMO) is crucial for pediatric cardiopulmonary failure.
- Nutritional support is essential during ECMO, but substrate effects on the heart are unclear.
- Enhanced pyruvate oxidation may aid in weaning patients from ECMO.
Purpose of the Study:
- To investigate if prolonged systemic pyruvate supplementation enhances pyruvate oxidation in an immature swine model during ECMO.
- To explore the effects of pyruvate on metabolic pathways, including the citric acid cycle and nutrient-sensitive enzymes.
Main Methods:
- Twelve piglets (30-49 days old) underwent 8 hours of ECMO.
- During the final 6 hours, piglets received either saline (control) or pyruvate infusion.
- Isotopically labeled pyruvate and leucine were administered in the final hour to trace oxidation and synthesis.
Main Results:
- Pyruvate supplementation increased blood lactate and pyruvate concentrations and citric acid cycle intermediates.
- Pyruvate increased anaplerotic flux via pyruvate carboxylation but did not alter pyruvate oxidation.
- Pyruvate enhanced phosphorylation of AMP-activated protein kinase and acetyl CoA carboxylase, suggesting fatty acid oxidation activation, and increased O-GlcNAcylation.
Conclusions:
- Prolonged pyruvate supplementation did not increase pyruvate oxidation in piglets during ECMO.
- Pyruvate supplementation induced significant changes in nutrient- and energy-sensitive metabolic pathways.
- These findings support further research into pyruvate's downstream effects on cardiac function in critical care settings.
Abstract:
Extracorporeal membrane oxygenation (ECMO) provides mechanical circulatory support for infants and children with postoperative cardiopulmonary failure. Nutritional support is mandatory during ECMO although specific actions for substrates on the heart have not been delineated. Prior work shows that enhancing pyruvate oxidation promotes successful weaning from ECMO. Accordingly, we tested the hypothesis that prolonged systemic pyruvate supplementation activates pyruvate oxidation in an immature swine model in vivo. Twelve male mixed-breed Yorkshire piglets (age 30-49 days) received systemic infusion of either normal saline (group C) or pyruvate (group P) during the final 6 h of 8 h of ECMO. Over the final hour, piglets received [2-(13)C] pyruvate, as a reference substrate for oxidation, and [(13)C6]-l-leucine, as an indicator for amino acid oxidation and protein synthesis. A significant increase in lactate and pyruvate concentrations occurred, along with an increase in the absolute concentration of the citric acid cycle intermediates. An increase in anaplerotic flux through pyruvate carboxylation in group P occurred compared with no change in pyruvate oxidation. Additionally, pyruvate promoted an increase in the phosphorylation state of several nutrient-sensitive enzymes, like AMP-activated protein kinase and acetyl CoA carboxylase, suggesting activation for fatty acid oxidation. Pyruvate also promoted O-GlcNAcylation through the hexosamine biosynthetic pathway. In conclusion, although prolonged pyruvate supplementation did not alter pyruvate oxidation, it did elicit changes in nutrient- and energy-sensitive pathways. Therefore, the observed results support the further study of pyruvate and its downstream effect on cardiac function.
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