Pharmacokinetic model-guided enoxaparin dosing in the Neonatal ICU: Retrospective cohort study to plan for

Haden Bunn1, Catherine Schentag2, Leonardo R Brandão3,4

  • 1Pumas-AI, Inc, Dover, Delaware, USA.

PubMed

Insights

Pharmacokinetic model-informed precision dosing (MIPD) for enoxaparin in neonates resulted in higher initial doses compared to standard care. This approach may reduce the time to achieve therapeutic anti-Xa levels in this vulnerable population.

Area of Science:

  • Neonatal pharmacology
  • Pharmacokinetics and pharmacodynamics
  • Drug dosing optimization

Background:

  • Standard enoxaparin dosing in neonates often fails to achieve therapeutic anti-Xa levels promptly.
  • This necessitates frequent laboratory monitoring and dose adjustments, increasing healthcare burden.

Purpose of the Study:

  • To compare standard-of-care (SOC) mg/kg dosing with pharmacokinetic (PK) model-informed precision dosing (MIPD) for enoxaparin in neonates.
  • To evaluate the impact of MIPD on achieving target anti-Xa levels and time to therapeutic levels.

Main Methods:

  • Retrospective analysis of 168 hospitalized neonates (less than 44 weeks postmenstrual age) treated with enoxaparin.
  • Comparison of initial SOC enoxaparin doses with MIPD-recommended doses using the Pumas-AI Lyv dosing tool.
  • Analysis of time to achieve therapeutic anti-Xa levels as a secondary outcome.

Main Results:

  • MIPD recommended initial enoxaparin doses that were 20%-60% higher than SOC in 32% of cases, and over 60% higher in 11%.
  • Neonates receiving SOC doses significantly lower than MIPD recommendations experienced the longest delays in reaching therapeutic anti-Xa levels.
  • PK model-informed dosing resulted in higher initial enoxaparin dosages compared to SOC.

Conclusions:

  • PK model-informed precision dosing of enoxaparin in neonates leads to higher initial dosages than standard care.
  • This strategy holds potential for reducing the time to achieve therapeutic anti-Xa levels in neonates.
  • Findings are informing dosing limits for a prospective trial of MIPD in neonatal intensive care settings.

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