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

Abstract

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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