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Published on: November 16, 2016
The effect of azithromycin on ivermectin pharmacokinetics--a population pharmacokinetic model analysis
Ahmed El-Tahtawy1, Paul Glue, Emma N Andrews
1Global Clinical Research, Pfizer, New York, New York, USA. ahmed.el-tahtawy@pfizer.com
Background:
A recent drug interaction study reported that when azithromycin was administered with the combination of ivermectin and albendazole, there were modest increases in ivermectin pharmacokinetic parameters. Data from this study were reanalyzed to further explore this observation. A compartmental model was developed and 1,000 interaction studies were simulated to explore extreme high ivermectin values that might occur.
Methods And Findings:
A two-compartment pharmacokinetic model with first-order elimination and absorption was developed. The chosen final model had 7 fixed-effect parameters and 8 random-effect parameters. Because some of the modeling parameters and their variances were not distributed normally, a second mixture model was developed to further explore these data. The mixture model had two additional fixed parameters and identified two populations, A (55% of subjects), where there was no change in bioavailability, and B (45% of subjects), where ivermectin bioavailability was increased 37%. Simulations of the data using both models were similar, and showed that the highest ivermectin concentrations fell in the range of 115-201 ng/mL.
Conclusions:
This is the first pharmacokinetic model of ivermectin. It demonstrates the utility of two modeling approaches to explore drug interactions, especially where there may be population heterogeneity. The mechanism for the interaction was identified (an increase in bioavailability in one subpopulation). Simulations show that the maximum ivermectin exposures that might be observed during co-administration with azithromycin are below those previously shown to be safe and well tolerated. These analyses support further study of co-administration of azithromycin with the widely used agents ivermectin and albendazole, under field conditions in disease control programs.
Insights
Azithromycin co-administration with ivermectin and albendazole may increase ivermectin bioavailability in some individuals. Modeled simulations indicate maximum ivermectin exposures remain below safe limits, supporting further field studies.
Area of Science:
- Pharmacokinetics
- Drug Interactions
- Mathematical Modeling
Background:
- A prior study noted increased ivermectin pharmacokinetic parameters when co-administered with azithromycin and albendazole.
- This analysis re-examined data to further investigate the observed drug interaction.
Purpose of the Study:
- To develop a pharmacokinetic model for ivermectin.
- To explore potential drug interactions between azithromycin and ivermectin.
- To simulate extreme ivermectin concentrations during co-administration.
Main Methods:
- Developed a two-compartment pharmacokinetic model with first-order elimination and absorption.
- Utilized a mixture model to identify distinct subpopulations.
- Simulated 1,000 interaction scenarios to assess ivermectin exposure.
Main Results:
- A two-compartment model with 7 fixed and 8 random-effect parameters was established.
- A mixture model identified two populations: 55% with no bioavailability change and 45% with a 37% increase in ivermectin bioavailability.
- Simulations predicted maximum ivermectin concentrations between 115-201 ng/mL.
Conclusions:
- This study presents the first pharmacokinetic model for ivermectin.
- The findings demonstrate population heterogeneity in ivermectin bioavailability during co-administration with azithromycin.
- Simulated exposures suggest safety, supporting further investigation in disease control programs.
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