Archives of Toxicology· 2026Q1
Linking acute exposure to future risk: an omics-to-AOP new approach method for next-generation risk assessment in a human in vitro lung air–liquid interface model
- 0citations
- Q1SCImago
- 2026year
Short summary
A new human in vitro lung model (Arlo cells) coupled with omics-to-adverse outcome pathway (AOP) analysis accurately predicts long-term fibrosis risk from acute, sublethal bleomycin exposure, comparable to mouse models.
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Key points
- A human in vitro lung ALI model (Arlo cells) was developed for chemical safety assessment.
- Transcriptomic signatures from acute bleomycin exposure mirrored known fibrotic mechanisms and predicted downstream adverse outcomes.
- Epigenomic profiling revealed methylation changes linked to epithelial-mesenchymal transition (EMT).
- The in vitro model's performance was comparable to a mouse lung model, particularly for extracellular matrix effects.
AI-generated from the title and abstract; the full text is not read.
Abstract
New approach methodologies (NAMs) are transforming chemical safety assessment by shifting focus from apical toxicity endpoints toward mechanistic, human-relevant prediction of adverse outcomes. Here, we present a human lung air-liquid interface (ALI) alveolar epithelial model coupled to an omics-to-adverse outcome pathway (AOP) analysis, linking acute sublethal exposure to potential long-term toxicity outcomes. A non-tumorigenic, monoclonal lung alveolar epithelial cell line (Arlo), capable of forming a tight monolayer barrier, was basolaterally exposed to sublethal concentrations (0, 20, 60, 100 µg/mL) of the profibrotic compound bleomycin. Dose-dependent modelling of transcriptomic signatures recapitulated known mechanisms of bleomycin-induced epithelial injury, consistent with early key events in fibrotic AOPs, enabling prediction of downstream adverse outcomes. The transcriptomic signature was overlayed on a network-based representation of human pulmonary fibrosis patient biopsies. When compared to a bleomycin exposed mouse lung model, the in vitro Arlo NAM performed comparably, especially for observing effects on extracellular matrix (ECM) restructuring in an acute exposure setting. Epigenomic profiling identified methylation changes associated with epithelial-mesenchymal transition (EMT), suggesting potential long-term gene expression regulation through epigenetic control. By linking functional endpoints with dose-response transcriptomic and epigenetic signatures, this work provides a reproducible schema for omics-to-AOP next-generation safety assessment and demonstrates that acute exposures can be modelled with a resource and time efficient NAM centred on toxicogenomics, informing on longer-term consequences.
The authors' abstract, as published at the source. Archives of Toxicology, 2026 · DOI ↗
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Field: Pulmonary and Respiratory Medicine
Pulmonary and Respiratory MedicineMedicine