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Potential Toxicity Risk Assessment and Priority Control Strategy for PAHs Metabolism and Transformation Behaviors in the Environment

International Journal of Environmental Research and Public Health 2022 25 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Qikun Pu, Yuanyuan Zhao Yuanyuan Zhao Yu Li, Qikun Pu, Lei Zhao, Yuanyuan Zhao Qikun Pu, Qikun Pu, Qikun Pu, Qikun Pu, Qikun Pu, Yu Li, Hao Yang, Yuanyuan Zhao Qikun Pu, Qikun Pu, Qikun Pu, Mengying Zhou, Qikun Pu, Qikun Pu, Yuanyuan Zhao Qikun Pu, Qikun Pu, Hao Yang, Hao Yang, Jiawen Yang, Qikun Pu, Yu Li, Yu Li, Qikun Pu, Qikun Pu, Qikun Pu, Yuanyuan Zhao Qikun Pu, Yu Li, Jiawen Yang, Hao Yang, Hao Yang, Yu Li, Yuanyuan Zhao Yu Li, Hao Yang, Yu Li, Yuanyuan Zhao Qikun Pu, Wu Yang, Qikun Pu, Qikun Pu, Qikun Pu, Qikun Pu, Qikun Pu, Qikun Pu, Qikun Pu, Yuanyuan Zhao Yu Li, Hao Yang, Yuanyuan Zhao Yu Li, Yuanyuan Zhao Yuanyuan Zhao Yu Li, Yuanyuan Zhao Yu Li, Qikun Pu, Wu Yang, Yu Li, Cong Lyu, Yu Li, Yu Li, Yuanyuan Zhao

Summary

Researchers evaluated the toxicity risks of 473 PAH transformation by-products generated during environmental degradation processes, establishing a comprehensive assessment system and identifying priority control strategies for managing PAH pollution in different environmental media.

In this study, 16 PAHs were selected as the priority control pollutants to summarize their environmental metabolism and transformation processes, including photolysis, plant degradation, bacterial degradation, fungal degradation, microalgae degradation, and human metabolic transformation. Meanwhile, a total of 473 PAHs by-products generated during their transformation and degradation in different environmental media were considered. Then, a comprehensive system was established for evaluating the PAHs by-products' neurotoxicity, immunotoxicity, phytotoxicity, developmental toxicity, genotoxicity, carcinogenicity, and endocrine-disrupting effect through molecular docking, molecular dynamics simulation, 3D-QSAR model, TOPKAT method, and VEGA platform. Finally, the potential environmental risk (phytotoxicity) and human health risks (neurotoxicity, immunotoxicity, genotoxicity, carcinogenicity, developmental toxicity, and endocrine-disrupting toxicity) during PAHs metabolism and transformation were comprehensively evaluated. Among the 473 PAH's metabolized and transformed products, all PAHs by-products excluding ACY, CHR, and DahA had higher neurotoxicity, 152 PAHs by-products had higher immunotoxicity, and 222 PAHs by-products had higher phytotoxicity than their precursors during biological metabolism and environmental transformation. Based on the TOPKAT model, 152 PAH by-products possessed potential developmental toxicity, and 138 PAH by-products had higher genotoxicity than their precursors. VEGA predicted that 247 kinds of PAH derivatives had carcinogenic activity, and only the natural transformation products of ACY did not have carcinogenicity. In addition to ACY, 15 PAHs produced 123 endocrine-disrupting substances during metabolism and transformation. Finally, the potential environmental and human health risks of PAHs metabolism and transformation products were evaluated using metabolic and transformation pathway probability and degree of toxic risk as indicators. Accordingly, the priority control strategy for PAHs was constructed based on the risk entropy method by screening the priority control pathways. This paper assesses the potential human health and environmental risks of PAHs in different environmental media with the help of models and toxicological modules for the toxicity prediction of PAHs by-products, and thus designs a risk priority control evaluation system for PAHs.

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