Nitrogen-containing organic compounds (NOCs) are key characteristic components in particulate matter (PM) from household solid fuel combustion, yet their personal exposure and class-dependent toxicity remain poorly characterized. We compared size-resolved personal exposure to particulate nitrated phenols (NPs) and nitro-PAHs (n-PAHs) among rural users of clean coal (CC), raw coal chunk (RCC), and biomass (BB), and evaluated representative compounds in A549 cells. Biomass users had the highest PM2.5-bound n-PAH exposure (up to 11.5-fold above clean coal), while NPs varied little across fuel groups (≤1.3-fold); CC and RCC users showed comparable PM2.5-bound NPs concentrations (64.0 ± 12.1 vs 57.4 ± 25.8 ng m–3, P = 0.545). n-PAHs exhibited greater cytotoxicity with lower IC50 values, whereas NPs produced stronger NF-κB activation by larger increases in p-IκB-α and COX-2 expression. Physicochemical descriptor analysis and molecular docking suggested that divergent biological responses may be partly attributable to differing hydrophobicity and protein interaction modes: hydrophobic contacts for n-PAHs, polar and hydrogen-bonding interactions for NPs. These results demonstrate clean heating transitions better mitigate n-PAH than NP exposure. NPs and n-PAHs differ substantially in cytotoxicity and NF-κB-mediated inflammation, providing a case study linking real-world personal exposure monitoring to molecular toxicology for health-risk-based prioritization of combustion-derived PM constituents.
Rong Feng, Hong-Mei Xu, Zhen-Xing Shen et al.· Environmental Science &...· 0 citations
Alkylphenol ethoxylates is an important fine chemical that has been used in industrial cleaning, textile manufacture, and emulsion polymerization. However, their petrochemical origin and adverse health effects, particularly xeno-oestrogenic activity, pose a challenge for sustainability and have been almost banned globally. Herein, we report a novel bio-based cyclohexyl fatty alcohol ethoxylates (CyCCnE9) by applying molecular segments reorganization strategy and retrosynthetic analysis method. By constructing acid-base bifunctional Zn-based single-atom catalyst, we achieved efficient synthesis of CyCCnE9. These bio-based CyCCnE9 displayed outstanding defoaming ability, super-wettability, and better emulsification ability. More excitingly, the primary degradation products of CyCCnE9 demonstrated markedly reduced toxicity toward zebrafish embryos and larvae, suggesting superior biocompatibility. The CyCCnE9 showed excellent low-temperature cleaning performance toward stains of various metallic surfaces. This work paves new ways to create sustainable alternative of alkylphenol ethoxylates using renewable biomass resources, as well as provide inspiring insights for the transformative revolution of other petroleum-based restricted products.