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Updated: Aug 9, 2026

Human Pluripotent Stem Cell Based Developmental Toxicity Assays for Chemical Safety Screening and Systems Biology Data Generation
Published on: June 17, 2015
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.
Abstract:
Children's risks from environmental toxicant exposure can be affected by pharmacokinetic factors that affect the internal dose of parent chemical or active metabolite. There are numerous physiologic differences between neonates and adults that affect pharmacokinetics including size of lipid, and tissue compartments, organ blood flows, protein binding capacity, and immature function of renal and hepatic systems. These factors combine to decrease the clearance of many therapeutic drugs, which can also be expected to occur with environmental toxicants in neonates. The net effect may be greater or lesser internal dose of active toxicant depending upon how the agent is distributed, metabolized, and eliminated. Child/adult pharmacokinetic differences decrease with increasing postnatal age, but these factors should still be considered in any children's age group, birth through adolescence, for which there is toxicant exposure. Physiologically based pharmacokinetic (PBPK) models can simulate the absorption, distribution, metabolism, and excretion of xenobiotics in both children and adults, allowing for a direct comparison of internal dose and risk across age groups. This review provides special focus on the development of hepatic cytochrome P-450 enzymes (CYPs) in early life and how this information, along with many factors unique to children, can be applied to PBPK models for this receptor population. This review describes a case study involving the development of neonatal PBPK models for the CYP1A2 substrates caffeine and theophylline. These models were calibrated with pharmacokinetic data in neonates and used to help understand key metabolic differences between neonates and adults across these two drugs.
Related Concept Videos
Drug Dosing: Infants and Children
Pharmacokinetics in Pediatric Patients: Overview and Drug Absorption
Pharmacokinetics in Pediatric Patients: Drug Distribution
Pharmacokinetics in Pediatric Patients: Drug Metabolism
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Toxicokinetics: Overview

