Gluconeogenesis in very low birth weight infants receiving total parenteral nutrition

A L Sunehag1, M W Haymond, R J Schanler

  • 1US Department of Agriculture/Agricultural Research Service Children's Nutrition Research Center, Department of Pediatrics, Baylor College of Medicine, Houston, Texas 77030, USA. asunehag@bcm.tmc.edu

Diabetes
|April 2, 1999
PubMed

Insights

Very low birth weight (VLBW) infants can maintain normal blood sugar levels during reduced glucose infusions by producing glucose through gluconeogenesis. Glycerol is identified as the primary substrate for this essential process in VLBW infants receiving total parenteral nutrition (TPN).

Area of Science:

  • Neonatal Physiology
  • Metabolic Regulation
  • Nutritional Support

Background:

  • Very low birth weight (VLBW) infants often require total parenteral nutrition (TPN) for adequate energy and to prevent hypoglycemia.
  • High glucose infusion rates in TPN can lead to hyperglycemia in VLBW infants due to diminished glucose tolerance.

Purpose of the Study:

  • To investigate the hypothesis that VLBW infants can maintain normoglycemia via gluconeogenesis from glycerol and amino acids when glucose supply is reduced.
  • To determine the primary substrates contributing to glucose production in VLBW infants under TPN with restricted glucose infusion.

Main Methods:

  • Utilized stable isotope tracers, including [U-13C]glucose, [2-(13)C]glycerol, and 2H2O, to measure gluconeogenesis in VLBW infants.
  • Employed mass isotopomer distribution analysis (MIDA) and deuterium incorporation methods to quantify glucose production and substrate contribution.
  • Infants received standardized TPN including lipids, protein, and a reduced glucose infusion rate.

Main Results:

  • VLBW infants maintained normoglycemia (blood glucose averaging 3.0 +/- 0.1 mmol/l) despite reduced glucose infusion.
  • Gluconeogenesis accounted for a significant portion of glucose production, estimated at 72-73% of the glucose production rate (GPR).
  • Glycerol was identified as the principal gluconeogenic substrate, contributing approximately 64% of total gluconeogenesis.

Conclusions:

  • VLBW infants can effectively utilize gluconeogenesis to maintain normoglycemia when glucose infusion is limited during TPN.
  • Glycerol serves as the primary substrate for gluconeogenesis in this vulnerable population.
  • These findings have implications for optimizing TPN strategies in VLBW infants to prevent both hypoglycemia and hyperglycemia.

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