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Dexmedetomidine pharmacokinetics in pediatric intensive care--a pooled analysis
Amanda L Potts1, Brian J Anderson, Guy R Warman
1Department of Anaesthesiology, University of Auckland, Auckland, New Zealand. a.potts@auckland.ac.nz
Insights
This study analyzed dexmedetomidine pharmacokinetics in children, revealing age-dependent clearance and a therapeutic concentration similar to adults. Dosing adjustments are crucial for pediatric patients based on age and clinical context.
Area of Science:
- Pharmacology
- Pediatric Critical Care
- Clinical Pharmacy
Background:
- Limited pharmacokinetic data for dexmedetomidine in pediatric populations.
- Need for covariate analysis in pediatric dexmedetomidine studies.
Purpose of the Study:
- To perform a population pharmacokinetic analysis of dexmedetomidine in children.
- To investigate the effects of covariates, such as age and pathology, on dexmedetomidine pharmacokinetics.
- To determine a target therapeutic concentration for dexmedetomidine in pediatric patients.
Main Methods:
- Combined data from four studies on intravenous dexmedetomidine administration (n=95).
- Utilized nonlinear mixed-effects modeling (NONMEM) for population pharmacokinetic analysis.
- Employed allometric scaling to standardize estimates to a 70-kg adult.
Main Results:
- Dexmedetomidine clearance shows significant maturation in the first year of life, increasing from 18.2 L/h/70kg at birth to 84.5% of mature value by 1 year.
- Children undergoing cardiac surgery had 27% lower clearance compared to those receiving a bolus dose.
- Simulations identified a target therapeutic concentration of 0.4-0.8 µg/L for intensive care patients.
Conclusions:
- The target therapeutic concentration for dexmedetomidine in children is comparable to adults.
- Pediatric dexmedetomidine dosing requires age-specific adjustments due to immature clearance in infants and higher clearance in smaller children.
- Dosing strategies for intensive care patients after cardiac surgery may not be directly applicable to non-intensive care procedures.
Background:
Published dexmedetomidine pharmacokinetic studies in children are limited by participant numbers and restricted pathology. Pooling the available studies allows investigation of covariate effects.
Methods:
Data from four studies investigating dexmedetomidine pharmacokinetics after i.v. administration (n = 95) were combined to undertake a population pharmacokinetic analysis of dexmedetomidine time-concentration profiles (730 observations) using nonlinear mixed effects modeling (NONMEM). Estimates were standardized to a 70-kg adult using allometric size models.
Results:
Children had a mean age of 3.8 (median 3 years, range 1 week-14 years) and weight of 16.0 kg (median 13.3 kg, range 3.1-58.9 kg). Population parameter estimates (between subject variability) for a two-compartment model were clearance (CL) 42.1 (CV 30.9%) lx h(-1) x 70 kg(-1), central volume of distribution (V1) 56.3 (61.3%) l.70 kg(-1), inter-compartment clearance (Q) 78.3 (37.0%) l x h(-1) x 70 kg(-1) and peripheral volume of distribution (V2) 69.0 (47.0%) l.70 kg(-1). Clearance maturation with age was described using the Hill equation. Clearance increases from 18.2 l x h(-1) x 70 kg(-1) at birth in a term neonate to reach 84.5% of the mature value by 1 year of age. Children given infusion after cardiac surgery had 27% reduced clearance compared to a population given bolus dose. Simulation of published infusion rates that provide adequate sedation for intensive care patients found a target therapeutic concentration of between 0.4 and 0.8 microg x l(-1).
Conclusions:
The sedation target concentration is similar to that described for adults. Immature clearance in the first year of life and a higher clearance (when expressed as l x h(-1) x kg(-1)) in small children dictate infusion rates that change with age. Extrapolation of dose from children given infusion in intensive care after cardiac surgery may not be applicable to those sedated for noninvasive procedures out of intensive care.
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