Ontogeny of methionine utilization and splanchnic uptake in critically ill children

Sascha Verbruggen1, Jama Sy, William E Gordon

  • 1Texas Children's Hospital, Children's Nutrition Research Center, USDA/ARS at Baylor College Medicine, 1100 Bates St., Houston, TX 77030, USA.

Insights

Critically ill infants show higher methionine uptake and utilization for protein synthesis, unlike adolescents. Current enteral nutrition is insufficient for these pediatric patients, highlighting age-related metabolic differences.

Area of Science:

  • Biochemistry
  • Pediatric Critical Care
  • Nutritional Metabolism

Background:

  • Methionine metabolism is crucial for protein synthesis and cellular function.
  • Understanding methionine kinetics in critically ill children is vital for optimizing nutritional support.
  • Age-related differences in methionine utilization may exist in pediatric critical illness.

Purpose of the Study:

  • To determine splanchnic uptake and utilization rates of methionine in critically ill pediatric patients.
  • To investigate age-specific differences in methionine metabolism across infants, children, and adolescents.
  • To evaluate the adequacy of current enteral nutritional support based on methionine balance.

Main Methods:

  • Employed two kinetic models: plasma methionine enrichment and intracellular homocysteine enrichment.
  • Administered simultaneous intravenous infusions of labeled methionine isotopes (l-[(2)H(3)]methylmethionine and l-[1-(13)C]methionine).
  • Analyzed enrichment ratios of homocysteine to methionine and calculated methionine splanchnic uptake and utilization pathways.

Main Results:

  • Infants demonstrated higher methionine splanchnic uptake (63%) compared to children (45%) and adolescents (36%).
  • Infants preferentially utilized methionine for nonoxidative disposal (73%), while adolescents favored transulfuration (60%).
  • All patient groups were in negative methionine balance, indicating inadequate nutritional support.

Conclusions:

  • Significant ontogeny in methionine splanchnic uptake and utilization exists in critically ill children.
  • Infants show greater methionine utilization for protein synthesis and reduced transulfuration compared to adolescents.
  • The plasma model may underestimate methionine kinetics in older pediatric groups due to metabolic compartmentation.

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