Lize Deferme, Neslihan Aygun Kocabas, Colin North, Francois van Otterdijk, George W Hinkal, Florian Caiment
Petroleum substances (PS) are complex hydrocarbon substances that present major challenges for toxicity assessment under REACH regulations. In vivo prenatal developmental toxicity (PNDT) testing is often mandated but remains resource-intensive, underscoring the need for New Approach Methodologies (NAMs) such as mechanistic read-across and in vitro models. The toxicity of PS is largely attributed to their polycyclic aromatic hydrocarbon (PAH) content, known to act through activation of the aryl hydrocarbon receptor (AhR). AhR activation induces cytochrome P450 enzymes that metabolize PAHs into reactive intermediates capable of eliciting developmental toxicity. To investigate the role of AhR in this adverse outcome pathway, we orally exposed wild-type and AhR-knockout (AhR-KO) Sprague-Dawley rats to Benzo[a]Pyrene (BaP), a prototypical PAH. BaP exposure caused marked embryonic resorptions and delayed ossification in wild-type rats, effects absent in AhR-KO animals, demonstrating that BaP-induced developmental toxicity is predominantly AhR-dependent. Transcriptomic profiling of blood, kidney, liver, and thymus revealed distinct AhR-mediated expression of Cyp1a1/1a2 in wild-type rats, whereas AhR-KO rats upregulated alternative detoxification pathways (Cyp2b2, Cyp3a23-3a1). These findings confirm AhR as the molecular initiating event in PAH-driven developmental toxicity and support the application of mechanistic data to enable efficient, less animal-intensive hazard assessment of petroleum substances.