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Updated: Apr 15, 2026

Assessment of the Cytotoxic and Immunomodulatory Effects of Substances in Human Precision-cut Lung Slices
Published on: May 9, 2018
Unveiling the structural determinants of PFASs acute inhalation toxicity: an integrated approach using QSAR, q-RASAR,
Manyi Qiu1,2, Jieyi Yang1,2, Ying'ai Pang1,2
1Guangzhou Medical University, Guangzhou, 511436, China.
Abstract:
Per- and polyfluoroalkyl substances (PFASs) are pervasive in airborne particles and aerosols, making inhalation a critical exposure pathway; however, the lack of inhalation toxicity data hinders accurate risk assessment and public health protection. In this study, we developed quantitative structure-activity relationship (QSAR) and quantitative read-across structure-activity relationship (q-RASAR) models to predict the acute inhalation toxicity of PFASs. The models were constructed using mechanistically interpretable two-dimensional molecular descriptors, and the integration of similarity-based descriptors enhanced predictive performance while maintaining model simplicity and interpretability. All validated models were applied to untested PFASs for toxicity prediction and priority ranking. In addition, interspecies toxicity (iST) models were established to explore toxicity relationships between rats and mice, enabling cross-species extrapolation. Collectively, these QSAR, q-RASAR, and iST models address the critical data gap in PFAS inhalation toxicology, providing a rapid and reliable tool for regulators and researchers to support science-driven risk assessment and public health protection against airborne PFAS exposure.
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