Incorporating pharmacokinetic differences between children and adults in assessing children's risks to environmental

Gary Ginsberg1, Dale Hattis, Babasaheb Sonawane

  • 1Connecticut Department of Public Health, Hartford, CT 06134, USA. gary.ginsberg@po.state.ct.us

Insights

Children

Area of Science:

  • Environmental toxicology
  • Pediatric pharmacology
  • Physiologically based pharmacokinetic modeling

Background:

  • Children exhibit unique physiological differences impacting toxicant pharmacokinetics compared to adults.
  • Immature hepatic and renal systems in neonates affect xenobiotic clearance.
  • Pharmacokinetic variations between children and adults diminish with age but remain relevant.

Purpose of the Study:

  • To review the development and application of physiologically based pharmacokinetic (PBPK) models for children.
  • To focus on the development of hepatic cytochrome P-450 enzymes (CYPs) in early life for PBPK modeling.
  • To understand age-related differences in toxicant metabolism and elimination.

Main Methods:

  • Utilized PBPK models to simulate xenobiotic absorption, distribution, metabolism, and excretion (ADME).
  • Focused on the development of hepatic cytochrome P-450 enzymes (CYPs) in early life.
  • Developed neonatal PBPK models for CYP1A2 substrates (caffeine, theophylline) using neonatal data.

Main Results:

  • PBPK models enable direct comparison of internal toxicant dose and risk across age groups.
  • Neonatal PBPK models for caffeine and theophylline were successfully calibrated.
  • Key metabolic differences between neonates and adults for specific drugs were elucidated.

Conclusions:

  • PBPK modeling is a valuable tool for assessing children's risk from environmental toxicants.
  • Understanding early-life hepatic enzyme development is crucial for accurate pediatric PBPK models.
  • Age-specific pharmacokinetic data are essential for pediatric risk assessment of xenobiotics.

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