Predicting Cumulative Neonatal Sodium Benzoate Exposures During Breastfeeding with Physiologically Based

Shirley Wang1, Abdullah Hamadeh1, Paola Mian2,3

  • 1School of Pharmacy, University of Waterloo, Kitchener, ON, Canada.

Clinical Pharmacokinetics
|February 27, 2026
PubMed

Insights

Sodium benzoate (SB) is minimally transferred to infants via breastfeeding, according to a new paediatric physiologically based pharmacokinetic (PBPK) model. This finding supports breastfeeding continuation for mothers using SB for urea cycle disorders.

Area of Science:

  • Pharmacokinetics and Drug Metabolism
  • Paediatric Pharmacology
  • Maternal-Foetal Transfer

Background:

  • Sodium benzoate (SB) is a second-line treatment for urea cycle disorders (UCDs) in paediatric and adult patients.
  • Limited lactation data for SB creates uncertainty about infant exposure through breastfeeding, potentially leading to unnecessary cessation.
  • Physiologically based pharmacokinetic (PBPK) modeling can predict drug exposure in infants.

Purpose of the Study:

  • To develop and apply a paediatric PBPK model to predict neonatal exposure to SB.
  • To assess cumulative SB exposure in infants from both in utero and breastfeeding routes.
  • To evaluate the safety of breastfeeding for infants whose mothers are taking SB.

Main Methods:

  • Developed and validated an adult PBPK model for SB, then scaled it to paediatric populations using age-dependent algorithms.
  • Incorporated ontogeny functions to capture the maturation of relevant enzymes and transporters.
  • Simulated cumulative pre- and post-natal SB exposure in breastfed infants using a cord-coupled PBPK workflow and a 1:1 milk-to-plasma ratio.

Main Results:

  • The paediatric PBPK model accurately predicted observed SB plasma concentrations in neonates and children.
  • Highest neonatal SB exposure occurred on day one of life due to residual prenatal levels (UAR: 14.2%).
  • Subsequent exposure via breastfeeding was low (UAR: 1.5-3.3%), indicating rapid neonatal clearance and minimal risk.

Conclusions:

  • This study presents the first paediatric PBPK model for SB, incorporating prenatal and lactational exposure.
  • Model predictions suggest minimal SB exposure through breastfeeding, unlikely to cause adverse outcomes.
  • Findings support clinical decision-making regarding breastfeeding for mothers on SB, though empirical validation is recommended.
Abstract

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