Real-time continuous glucose monitoring in preterm infants (REACT): an international, open-label, randomised

Kathryn Beardsall1, Lynn Thomson1, Catherine Guy2

  • 1Department of Paediatrics, University of Cambridge, Cambridge, UK; Neonatal Unit, Cambridge University Hospitals NHS Foundation Trust, Cambridge, UK.

Insights

Continuous glucose monitoring (CGM) in preterm infants improved time within target glucose ranges and reduced hypoglycaemia exposure. This technology shows promise for neonatal intensive care, though further research on optimal targets and long-term outcomes is needed.

Area of Science:

  • Neonatal Medicine
  • Medical Technology
  • Clinical Trials

Background:

  • Hyperglycaemia and hypoglycaemia are significant risks for preterm infants.
  • Current glucose monitoring methods are infrequent, posing challenges for intervention.
  • Continuous glucose monitoring (CGM) is established in older populations but not yet approved for neonates.

Purpose of the Study:

  • To evaluate the efficacy and safety of real-time CGM in preterm infants in the neonatal intensive care unit (NICU).
  • To assess CGM's impact on glucose control and associated risks in vulnerable newborns.

Main Methods:

  • An international, open-label, randomised controlled trial involving 182 preterm infants across 13 NICUs.
  • Infants were randomized to real-time CGM or standard care.
  • Primary outcome: time in target glucose range (2.6-10 mmol/L) during the first week of life.

Main Results:

  • CGM use resulted in significantly more time within the target glucose range (84% vs. 94% in standard care).
  • The CGM group experienced fewer prolonged hypoglycaemic episodes (<2.6 mmol/L for >1 hour).
  • No serious adverse events or infections were linked to CGM device use.

Conclusions:

  • Real-time CGM is effective in reducing exposure to prolonged or severe hyperglycaemia and hypoglycaemia in preterm infants.
  • Further research is needed to establish optimal glucose targets and long-term health effects.
Abstract

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