Literature DB >> 31103741

Human CYP3A4-mediated toxification of the pyrrolizidine alkaloid lasiocarpine.

Johanna Ebmeyer1, Albert Braeuning1, Hansruedi Glatt1, Anja These2, Stefanie Hessel-Pras3, Alfonso Lampen1.   

Abstract

Pyrrolizidine alkaloids (PA) are widely distributed phytotoxins contaminating food and feed. Hepatic enzymes are considered to bioactivate PA. Previous studies showed differences in the metabolism rate in liver homogenates of different species. Thus, uncertainty remains with respect to the relevance of human metabolism. Our study aimed to analyze whether the PA representative lasiocarpine is toxified by human cytochrome P450 (CYP) enzymes. We compared the metabolic elimination of lasiocarpine in the presence of rat and human S9 fractions and liver microsomes. Experiments with the potent CYP3A/Cyp3a inhibitor ketoconazole and supersomes containing individual human and rat CYPs revealed that enzymes of the CYP3A/Cyp3a family of both species are of major relevance for lasiocarpine metabolism. To assess if metabolism by human CYP3A4 results in a toxification of lasiocarpine we performed experiments with V79 cells. γH2AX and micronucleus formation were analyzed as endpoints for genotoxicity. No effects were observed in the wildtype cells, which lack CYP activity. By contrast, a V79 clone engineered for expression of human CYP3A4 showed concentration-dependent γH2AX and micronucleus formation. Concluding, our results showed the CYP3A4-dependent formation of genotoxic metabolites of lasiocarpine. The results confirm previous data indicating the need to include metabolism of PA for human risk assessment.
Copyright © 2019 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  In vitro metabolism; Micronucleus test; Microsomes; S9; Supersomes; γH2AX

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Year:  2019        PMID: 31103741     DOI: 10.1016/j.fct.2019.05.019

Source DB:  PubMed          Journal:  Food Chem Toxicol        ISSN: 0278-6915            Impact factor:   6.023


  8 in total

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4.  Active Transport of Hepatotoxic Pyrrolizidine Alkaloids in HepaRG Cells.

Authors:  Anne-Margarethe Enge; Florian Kaltner; Christoph Gottschalk; Albert Braeuning; Stefanie Hessel-Pras
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7.  Structure-Dependent Toxicokinetics of Selected Pyrrolizidine Alkaloids In Vitro.

Authors:  Julia Buchmueller; Florian Kaltner; Christoph Gottschalk; Maria Maares; Albert Braeuning; Stefanie Hessel-Pras
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8.  Pyrrolizidine alkaloids cause cell cycle and DNA damage repair defects as analyzed by transcriptomics in cytochrome P450 3A4-overexpressing HepG2 clone 9 cells.

Authors:  Sara Abdelfatah; Janine Naß; Caroline Knorz; Sabine M Klauck; Jan-Heiner Küpper; Thomas Efferth
Journal:  Cell Biol Toxicol       Date:  2021-04-21       Impact factor: 6.691

  8 in total

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