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Optimization of vigabatrin dosage in children with epileptic spasms: A population pharmacokinetic approach
Agathe Molimard1, Frantz Foissac2,3, Naïm Bouazza2,3
1Service de Neuropédiatrie et Maladies Métaboliques, Hôpital Necker-Enfants-malades, AP-HP, Université Paris Cité, Paris, France.
Insights
This study developed a pharmacokinetic model for vigabatrin in children, identifying an effective exposure range to prevent ocular toxicity and optimize treatment for epileptic spasms.
Area of Science:
- Pharmacokinetics and Pharmacodynamics
- Pediatric Neurology
- Drug Safety
Background:
- Vigabatrin is an antiepileptic drug for severe childhood epilepsy.
- Ocular toxicity is a significant adverse effect, dose-dependent.
- Understanding vigabatrin exposure is crucial for safe and effective treatment.
Purpose of the Study:
- Develop a population pharmacokinetic model for vigabatrin in children.
- Determine an acceptable therapeutic exposure range.
- Correlate exposure with treatment response in epileptic spasms.
Main Methods:
- Retrospective study of 79 children with epilepsy.
- Population pharmacokinetic analysis using nonlinear mixed-effects modeling (Monolix2021).
- Classification of responders and non-responders for epileptic spasms.
Main Results:
- A 2-compartment model identified bodyweight and creatinine clearance as key factors.
- For responders (36%), 95% had an AUC0-24 between 264-549 mg.h.L-1.
- Identified an acceptable exposure range for vigabatrin in pediatric patients.
Conclusions:
- Population pharmacokinetics revealed interindividual variability drivers.
- Established an acceptable vigabatrin exposure range for pediatric epilepsy.
- A target concentration strategy can minimize overexposure and optimize therapy.
Aims:
Vigabatrin is an antiepileptic drug used to treat some forms of severe epilepsy in children. The main adverse effect is ocular toxicity, which is related to the cumulative dose. The aim of the study is to identify an acceptable exposure range, both through the development of a population pharmacokinetic model of vigabatrin in children enabling us to calculate patient exposure and through the study of therapeutic response.
Methods:
We performed a retrospective study including children with epilepsy followed at Necker-Enfants Malades hospital who had a vigabatrin assay between January 2019 and January 2022. The population pharmacokinetic study was performed on Monolix2021 using a nonlinear mixed-effects modelling approach. Children treated for epileptic spasms were classified into responder and nonresponder groups according to whether the spasms resolved, in order to identify an effective plasma exposure range.
Results:
We included 79 patients and analysed 159 samples. The median age was 4.2 years (range 0.3-18). A 2-compartment model with allometry and creatinine clearance on clearance best fit our data. Exposure analysis was performed on 61 patients with epileptic spasms. Of the 22 patients who responded (36%), 95% had an AUC0-24 between 264 and 549 mg.h.L-1.
Conclusions:
The population pharmacokinetic model allowed us to identify bodyweight and creatinine clearance as the 2 main factors explaining the observed interindividual variability of vigabatrin. An acceptable exposure range was defined in this study. A target concentration intervention approach using this pharmacokinetic model could be used to avoid overexposure in responder patients.
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