Physiologically Based Pharmacokinetic Modeling Suggests Limited Drug-Drug Interaction for Fesoterodine When

Jian Lin1, Theunis C Goosen1, Susanna Tse1

  • 1Medicine Design - Department of Pharmacokinetics, Dynamics, and Metabolism, Pfizer Inc., Groton, CT, USA.

Insights

Drug interaction studies show that coadministering mirabegron with fesoterodine results in a modest, clinically insignificant increase in 5-hydroxymethyl tolterodine (5-HMT) exposure, not requiring dose adjustments.

Area of Science:

  • Pharmacokinetics and Drug Metabolism
  • Pharmacology
  • Drug Interactions

Background:

  • 5-Hydroxymethyl tolterodine (5-HMT), the active metabolite of fesoterodine, is processed by cytochrome P450 (CYP) 2D6 and CYP3A enzymes.
  • Mirabegron is a moderate inhibitor of CYP2D6 and a weak inhibitor of CYP3A, suggesting potential drug-drug interactions (DDIs) with other medications metabolized by these enzymes.

Purpose of the Study:

  • To estimate potential DDIs between mirabegron and fesoterodine (metabolized to 5-HMT) using physiologically based pharmacokinetic (PBPK) modeling.
  • To verify the accuracy of the PBPK models by comparing predicted pharmacokinetic profiles with observed data from clinical studies.

Main Methods:

  • Developed and validated PBPK models for mirabegron and 5-HMT using existing clinical DDI study data (e.g., with desipramine, metoprolol, ketoconazole, fluconazole).
  • Predicted the pharmacokinetic changes in 5-HMT exposure when coadministered with mirabegron using the validated models.

Main Results:

  • The PBPK models accurately predicted mirabegron's inhibition of CYP2D6 and 5-HMT's metabolism by CYP3A and CYP2D6, with predictions within 11% of observed clinical data.
  • Coadministration of 8 mg fesoterodine with 50 mg mirabegron was predicted to increase 5-HMT area under the curve (AUC) and maximum concentration (Cmax) by approximately 1.22-fold and 1.17-fold, respectively.
  • These predicted increases in 5-HMT exposure (around 20%) were deemed clinically insignificant.

Conclusions:

  • The PBPK models are reliable for predicting DDIs involving mirabegron and fesoterodine.
  • Coadministration of fesoterodine and mirabegron at approved daily doses is unlikely to cause clinically significant DDIs.
  • No dose adjustment for fesoterodine is necessary when used concurrently with mirabegron.

Related Concept Videos

Pharmacokinetics: Drug–Drug Interactions01:25

Pharmacokinetics: Drug–Drug Interactions

Drug interactions occur when the pharmacological effect of one drug is altered by another substance, either enhancing or diminishing its activity. The drug whose activity is altered is known as the object drug, and the substance causing the alteration is called the agent drug or the precipitant. The net effects of these interactions are mostly undesirable, leading to decreased effectiveness or increased adverse effects. In rare cases, interactions can be beneficial, such as the enhanced...
399
Pharmacokinetics: Drug–Food and Drug–Viral Interactions01:26

Pharmacokinetics: Drug–Food and Drug–Viral Interactions

A drug interaction occurs when the concurrent use of another drug, food, or an external substance alters the pharmacological activity of a drug. This interaction can modify the action of the original drug, affecting its effectiveness and safety.Drug–food interactions are significant as they impact drug absorption, metabolism, and excretion. For example, grapefruit juice is a well-known disruptor of drug metabolism. It inhibits the cytochrome P450 3A4 enzyme, crucial for the metabolism of...
226
Physiological Pharmacokinetic Models: Blood Flow-Limited Versus Diffusion-Limited Models00:57

Physiological Pharmacokinetic Models: Blood Flow-Limited Versus Diffusion-Limited Models

Physiological pharmacokinetic models, often called flow-limited or perfusion models, typically assume a swift drug distribution between tissue and venous blood, creating a rapid drug equilibrium. This premise is based on the idea that drug diffusion is extremely fast, and the cell membrane presents no barrier to drug permeation. In this scenario, where no drug binding occurs, the drug concentration in the tissue equals that of the venous blood leaving the tissue. This greatly simplifies the...
345
Pharmacokinetics in Pediatric Patients: Drug Excretion01:26

Pharmacokinetics in Pediatric Patients: Drug Excretion

In pediatric medicine, understanding the renal function and drug elimination nuances is crucial for administering safe and effective treatments. Newborns, in particular, display markedly slower renal functions than adults, profoundly affecting how drugs are cleared from their bodies. This slower drug clearance requires clinicians to extend the dosing intervals for many medications to prevent drug accumulation and toxicity while ensuring therapeutic efficacy.One key area where these adjustments...
214
Drug-Receptor Interactions01:29

Drug-Receptor Interactions

Drug-receptor interaction describes the binding of receptors by drugs, but not all drug-receptor interactions result in activation and tissue response. For instance, the binding of agonists activates the receptor to generate a cellular reaction, while antagonists bind to receptors without causing their activation.
Several parameters, such as the drug's affinity for its receptor and its efficacy, which is its ability to activate the receptor, determine the drug's effect on the tissue....
7.4K
Factors Affecting Protein-Drug Binding: Drug Interactions01:23

Factors Affecting Protein-Drug Binding: Drug Interactions

Drug interactions are a critical aspect of pharmacology and can occur when two or more drugs compete for the same binding site. This competition can result in one drug displacing another, altering the effect of the displaced drug. Drug interactions are complex processes that rely heavily on how much of the displacer drug is present and how strongly it can bind to the same sites as the displaced drug.
Displacement interactions can have varying outcomes, ranging from toxicity to virtually...
576