Prediction of the in vivo interaction between midazolam and macrolides based on in vitro studies using human liver

Kiyomi Ito1, Kanako Ogihara, Shin-Ichi Kanamitsu

  • 1School of Pharmaceutical Sciences, Kitasato University, 5-9-1 Shirokane, Minato-ku, Tokyo 108-8641, Japan.

Insights

Coadministration of erythromycin and clarithromycin significantly increases midazolam plasma concentrations due to CYP3A inhibition, while azithromycin has minimal effect. This study quantitatively predicts these drug interactions using in vitro and in vivo data.

Area of Science:

  • Pharmacology
  • Drug Metabolism
  • Drug Interactions

Background:

  • Macrolide antibiotics like erythromycin and clarithromycin inhibit CYP3A, an enzyme crucial for midazolam metabolism.
  • Clinical observations show increased midazolam levels with erythromycin and clarithromycin, but not azithromycin.

Purpose of the Study:

  • To quantitatively predict in vivo drug interactions between macrolide antibiotics and midazolam.
  • To correlate in vitro inhibitory potencies of macrolides with observed in vivo effects on midazolam pharmacokinetics.

Main Methods:

  • In vitro inhibition of midazolam alpha- and 4-hydroxylation by human liver microsomes using erythromycin, clarithromycin, and azithromycin.
  • Determination of kinetic parameters for CYP3A inactivation (K'app, kinact).
  • Simulation of in vivo drug interactions using a physiological flow model with determined kinetic and pharmacokinetic parameters.

Main Results:

  • Midazolam hydroxylation was inhibited time- and concentration-dependently by macrolides after NADPH-dependent preincubation.
  • Erythromycin and clarithromycin demonstrated significant CYP3A inactivation kinetics, unlike azithromycin.
  • Predicted midazolam AUC increases of 2.9-3.0 fold with erythromycin and 2.1-2.5 fold with clarithromycin, consistent with clinical data; azithromycin showed minimal predicted effect.

Conclusions:

  • In vitro kinetic parameters accurately predict the in vivo drug interaction potential of macrolides with midazolam.
  • Erythromycin and clarithromycin are potent mechanism-based CYP3A inhibitors, leading to significant midazolam exposure increases.
  • Azithromycin exhibits weak CYP3A inhibition, resulting in negligible impact on midazolam pharmacokinetics.

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