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Updated: Oct 9, 2025

Mass Spectrometry and Luminogenic-based Approaches to Characterize Phase I Metabolic Competency of In Vitro Cell Cultures
Published on: March 28, 2017
Metopimazine is primarily metabolized by a liver amidase in humans
Robert W Busby1, Xiaokun Cai2, Sihyung Yang2
1Neurogastrx, Inc., Woburn, Massachusetts, USA.
Abstract:
Metopimazine (MPZ) is a peripherally restricted, dopamine D2 receptor antagonist used for four decades to treat acute nausea and vomiting. MPZ is currently under clinical investigation for the treatment of gastroparesis (GP). MPZ undergoes high first-pass metabolism that produces metopimazine acid (MPZA), the major circulating metabolite in humans. Despite a long history of use, the enzymes involved in the metabolism of MPZ have not been identified. Here we report a series of studies designed to identify potential MPZ metabolites in vitro, determine their clinical relevance in humans, and elucidate the enzymes responsible for their formation. The findings demonstrated that the formation of MPZA was primarily catalyzed by human liver microsomal amidase. Additionally, human liver cytosolic aldehyde oxidase (AO) catalyzes the formation of MPZA, in vitro, although to a much lesser extent. Neither cytochrome P450 enzymes nor flavin-monooxygenases (FMO) were involved in the formation MPZA, although two minor oxidative pathways were catalyzed by CYP3A4 and CYP2D6 in vitro. Analysis of plasma samples from subjects dosed 60 mg of MPZ verified that these oxidative pathways are very minor and that CYP enzyme involvement was negligible compared to microsomal amidase/hydrolase in overall MPZ metabolism in humans. The metabolism by liver amidase, an enzyme family not well defined in small molecule drug metabolism, with minimal metabolism by CYPs, differentiates this drug from current D2 antagonists used or in development for the treatment of GP.
Insights
Metopimazine (MPZ) metabolism primarily involves liver microsomal amidase, producing metopimazine acid (MPZA). This differs from other dopamine D2 antagonists, with minimal involvement of CYP enzymes in MPZ
Area of Science:
- Pharmacology
- Drug Metabolism
- Biochemistry
Background:
- Metopimazine (MPZ), a dopamine D2 antagonist, is used for nausea and vomiting and is being investigated for gastroparesis (GP).
- MPZ undergoes significant first-pass metabolism to metopimazine acid (MPZA), its major human metabolite.
- The enzymes responsible for MPZ metabolism have not been previously identified.
Purpose of the Study:
- To identify MPZ metabolites in vitro.
- To determine the clinical relevance of these metabolites in humans.
- To elucidate the specific enzymes responsible for MPZ biotransformation.
Main Methods:
- In vitro studies using human liver microsomes and cytosol to identify metabolites.
- Enzyme activity assays to determine catalytic roles of specific enzymes (CYP450, FMO, AO, amidase).
- Analysis of human plasma samples from subjects administered MPZ.
Main Results:
- Human liver microsomal amidase is the primary enzyme catalyzing MPZA formation.
- Human liver cytosolic aldehyde oxidase (AO) also contributes to MPZA formation, but to a lesser extent.
- Cytochrome P450 enzymes (CYP3A4, CYP2D6) and flavin-monooxygenases (FMO) play negligible roles in MPZ metabolism, forming only minor oxidative metabolites.
Conclusions:
- MPZ metabolism is predominantly mediated by liver amidase/hydrolase, not CYP enzymes.
- This metabolic profile distinguishes MPZ from other D2 antagonists in development for GP.
- Understanding MPZ metabolism is crucial for its therapeutic application in gastroparesis.
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