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◆ Environmental pollution (Barking, Essex : 1987)2026-09-04

Incomplete reduction of particle-bound PAH toxicity under lower PM2.5 conditions: Evidence from Kunming, China.

Chenyang Zhao, Xinyu Han, Senlin Tian, Yaoqian Zhong, Wei Du, Qun Zhao, Jianwu Shi, Ping Ning

原始摘要(英文原文)· Original abstract
Declining PM2.5 mass concentrations do not necessarily ensure proportional mitigation of hazardous particle-bound components. We investigated 16 priority PM2.5-bound PAHs in Kunming, China, and compared their concentrations, BaPeq burden, particle-normalized toxicity-equivalent intensity, source-related patterns, and inhalation cancer risks between lower- and higher-PM2.5 stages. From the higher- to lower-PM2.5 stage, PM2.5, ΣPAHs, and BaPeq decreased by 32.7%, 27.4%, and 31.4%, respectively. Covariate-adjusted models confirmed significant reductions in ΣPAHs and BaPeq of 28.8% and 33.5%, whereas BaPeq/PM2.5, which represents the BaP-equivalent burden of the measured particle-bound PAHs per unit mass of PM2.5, showed no significant decrease (-7.6%, p = 0.274), and BaPeq/ΣPAHs decreased only modestly (-6.5%, p = 0.026). The contribution of 4-6-ring PAHs remained above 81%, while BaP and dibenzo[a,h]anthracene together accounted for more than 82% of BaPeq in both stages. PAH-PMF results, interpreted conservatively as source-related chemical patterns, indicated persistent combustion-related PAH signatures, while RF-SHAP analysis identified carbonaceous and selected metal-related components as the leading predictors of absolute BaPeq. Despite the lower particle loading, 40.3% of simulated adult ILCR values exceeded 10-6. These results demonstrate that reductions in particle mass and absolute hazardous-component burden may coexist with persistent toxicity-equivalent intensity per unit particle mass. Joint evaluation of PM2.5, BaPeq, and BaPeq/PM2.5 can therefore provide a practical framework for toxicity-oriented management of hazardous particulate components.
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Incomplete reduction of particle-bound PAH toxicity under lower PM2.5 conditions: Evidence from Kunming, China. — 科研速览 Science Skim