Aug 2026· Toxics· Vol 14, pp. 691· 0 citations· 51 references
Medicine
TL;DR
It is suggested that EHDPP may enhance protein expression of hepatic Cyp1a1, Cyp2e1, AhR and PXR and induce liver damage and DNA/chromosome damage in mice; Cyp1a1 might be a major activating enzyme.
Abstract
As a commonly present organophosphorus flame retardant and persistent organic pollutant, 2-ethylhexyl diphenyl phosphate (EHDPP) has been observed to be genotoxic in cultured human hepatoma (HepG2) cells which depends on CYP activities. Yet, its impacts on hepatic Cyp expression, hepatotoxicity and genotoxicity in intact mammalians remain unidentified. In this study, adult male C57BL/6J mice received EHDPP by gastric gavage at doses of 50, 100, and 150 mg/kg (b.w.)/d for 7 d, then the hepatic expression of several Cyp proteins, aryl hydrocarbon receptor (AhR) and pregnane X receptor (PXR) was analyzed by Western blotting; hepatoxicity was determined by serum ALT/AST activities and hepatic histological examination, while genotoxicity by comet assay, phosphorylated histone (γ-H2AX) protein, micronucleus test, and Pig-a assay. A micronucleus test in mouse hepatoma (Hepa1-6) cells in vitro was employed to observe the modulating effect of PCB 126 (100 nM)/BAY-218 (700 nM) (Ahr-Cyp1a1 activator/inhibitor). The results indicated that EHDPP induced hepatic Cyp1a1, 2e1, AhR, Cyp1a2, Cyp3a4 and PXR proteins and histologic liver damage at 50 mg/kg/d and/or higher doses, while at the highest dose (150 mg/kg/d) with hepatic DNA damage and micronucleus formation in bone marrow polychromatic erythrocytes. The result of Pig-a assay (at 14 and 28 d) was negative. In Hepa1-6 cells EHDPP induced micronucleus marginally; however, this effect was enhanced by PCB 126, while abolished by BAY-218. This study suggests that EHDPP may enhance protein expression of hepatic Cyp1a1, Cyp2e1, AhR and PXR and induce liver damage and DNA/chromosome damage in mice; Cyp1a1 might be a major activating enzyme.
BDE-47 exposure induces hepatocellular DNA damage, and its mechanism of action is closely associated with AHR-mediated oxidative stress and CYP1A1/2 upregulation, which offers new experimental evidence to clarify the hepatotoxic and genotoxic mechanisms of BDE-47.
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Overall, chrysin demonstrates potent protective potential against PFOA-induced liver injury and may serve as a promising therapeutic candidate for environmental toxin-associated hepatotoxicity.
A. B. Awolesi, Moses C. Antiya, S. A. Praise· Innovative Medicines & O...· 0 citations
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Hager E Hassan, Sara H. Hazem, M. Zaghloul· Naunyn-Schmiedeberg's Archiv...· 0 citations
Tris (2-chloroethyl) phosphate (TCEP) is a widespread chlorinated organophosphate flame retardant, yet its biological impacts on saline aquatic biota remain largely undefined. Using the brine shrimp Artemia parthenogenetica, we examined TCEP toxicity across a concentration spectrum from environmentally relevant (2 µg/L) to acutely lethal levels (48-h LC₅₀ = 641.3 mg/L, 95% CI: 603.5-686.1 mg/L), revealing exceptional native tolerance. At 2 µg/L, no teratogenicity or oxidative damage occurred, though glutathione S-transferase (GST) detoxification genes GstS1 and GstO1 were transcriptionally induced, representing an early molecular perturbation. Across higher exposures (5-200 mg/L), TCEP dose-dependently impaired cyst hatching, provoked severe developmental malformations (up to 44%), and disrupted naupliar swimming. Biochemical assays showed catalase induction at 100-200 mg/L and lipid peroxidation with redox disturbance at 200 mg/L, abnormalities that extended into nauplii as widespread apoptosis. Transcriptomics at 200 mg/L identified 1464 differentially expressed genes enriched in cytochrome P450, RNA polymerase, and glutathione metabolism pathways. qPCR confirmed broad suppression of GST-associated genes (Gst5, Ugt2b14, Gpx3, GstO1) from 5 mg/L, whereas GstD7 exhibited a biphasic response and was ultimately downregulated at 200 mg/L. We propose that TCEP-driven suppression of glutathione-dependent detoxification undermines antioxidant capacity, and despite compensatory catalase upregulation, culminates in oxidative injury, apoptosis, and developmental defect. This work bridges environmental realism and mechanistic depth, providing a foundation for TCEP risk assessment in hypersaline ecosystems.
Unknown authors· Ecotoxicology and Environmen...· 0 citations