A Physiologically Based Modeling Approach to Evaluate Intravenous Levetiracetam Dosing in Term and Preterm Neonates

Alexis Johnson1, Nolan Thomas1, Max Blumenthal1

  • 1Pharmacy Practice and Translational Research Division, School of Pharmacy, University of Wisconsin-Madison, Madison, USA.

Insights

New research on levetiracetam dosing for neonatal seizures suggests current regimens may be too high for preterm infants. This study developed a model to optimize levetiracetam dosage, reducing risks of adverse events or insufficient effects in vulnerable newborns.

Area of Science:

  • Neonatal Neurology
  • Pharmacokinetics
  • Drug Development

Background:

  • Neonatal seizures are common, with phenobarbital causing adverse effects.
  • Levetiracetam is a safer alternative, but optimal neonatal dosing is unknown.
  • Current weight-based dosing may be inappropriate for preterm neonates.

Purpose of the Study:

  • To develop a physiologically based pharmacokinetic (PBPK) model for levetiracetam in term and preterm neonates.
  • To evaluate pharmacokinetic differences between term and preterm neonates.
  • To inform optimal levetiracetam dosing strategies for neonatal seizures.

Main Methods:

  • Developed a PBPK model for levetiracetam in neonates.
  • Accounted for physiological changes affecting drug distribution and clearance.
  • Extrapolated renal and metabolic clearance using allometric scaling and age-dependent corrections.

Main Results:

  • A 1.56-fold increase in tissue distribution was needed for neonates.
  • Renal clearance required a 61% increase in term neonates.
  • In preterm neonates (<37.5 weeks), renal clearance was the primary elimination route, with metabolic clearance near zero.
  • Simulations indicated higher plasma concentrations in more premature neonates, potentially exceeding toxicity thresholds.

Conclusions:

  • Standard levetiracetam dosing may lead to toxicity in preterm neonates.
  • Lower weight-based dosing is likely needed for preterm infants.
  • PBPK modeling is crucial for understanding and optimizing neonatal drug dosing.

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