Literature DB >> 25471715

BFCOD activity in fish cell lines and zebrafish embryos and its modulation by chemical ligands of human aryl hydrocarbon and nuclear receptors.

N Creusot1, F Brion2, B Piccini2, H Budzinski3, J M Porcher2, S Aït-Aïssa4.   

Abstract

Assessment of exposure and effect of fish to pharmaceuticals that contaminate aquatic environment is a current major issue in ecotoxicology and there is a need to develop specific biological marker to achieve this goal. Benzyloxy-4-trifluoromethylcoumarin-O-debenzyloxylase (BFCOD) enzymatic activity has been commonly used to monitor CYP3A activity in fish. In this study, we assessed the capacity of a panel of toxicologically relevant chemicals to modulate BFCOD activity in fish, by using in vitro and in vivo bioassays based on fish liver cell lines (PLHC-1, ZFL, RTL-W1) and zebrafish embryos, respectively. Basal BFCOD activity was detectable in all biological models and was differently modulated by chemicals. Ligands of human androgens, glucocorticoids, or pregnanes X receptors (i.e., dexamethasone, RU486, rifampicin, SR12813, T0901317, clotrimazole, ketoconazole, testosterone, and dihydrotestosterone) moderately increased or inhibited BFCOD activity, with some variations between the models. No common feature could be drawn by regards to their capacity to bind to these receptors, which contrasts with their known effect on mammalian CYP3A. In contrast, dioxins and polycyclic aromatic hydrocarbons (PAHs) strongly induced BFCOD activity (up to 30-fold) in a time- and concentration-dependent manner, both in vitro in all cell lines and in vivo in zebrafish embryos. These effects were AhR dependent as indicated by suppression of induced BFCOD by the AhR pathway inhibitors 8-methoxypsoralen and α-naphthoflavone. Altogether our result further question the relevance of using liver BFCOD activity as a biomarker of fish exposure to CYP3A-active compounds such as pharmaceuticals.

Entities:  

Keywords:  AhR; BFCOD; CYP1A; CYP3A; Dioxin-like chemicals; Fish; PXR; Pharmaceuticals; Xenobiotic

Mesh:

Substances:

Year:  2014        PMID: 25471715     DOI: 10.1007/s11356-014-3882-8

Source DB:  PubMed          Journal:  Environ Sci Pollut Res Int        ISSN: 0944-1344            Impact factor:   4.223


  55 in total

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Authors:  Nicolas Creusot; Saïd Kinani; Patrick Balaguer; Nathalie Tapie; Karyn LeMenach; Emmanuelle Maillot-Maréchal; Jean-Marc Porcher; Hélène Budzinski; Sélim Aït-Aïssa
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Review 6.  Receptor-dependent transcriptional activation of cytochrome P4503A genes: induction mechanisms, species differences and interindividual variation in man.

Authors:  G G Gibson; N J Plant; K E Swales; A Ayrton; W El-Sankary
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2.  A non-destructive BFCOD assay for in vivo measurement of cytochrome P450 3A (CYP3A) enzyme activity in fish embryos and larvae.

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3.  In Vitro Biotransformation of Two Human CYP3A Probe Substrates and Their Inhibition during Early Zebrafish Development.

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4.  Toxification of polycyclic aromatic hydrocarbons by commensal bacteria from human skin.

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  4 in total

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