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.