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Generation of More Potent Components at Higher Temperatures Offsets Toxicity Reduction despite Reduced Mass Emissions during Biomass Burning

  • Yong Han (Co-first Author)
  • , Jinyan Yu (Co-first Author)
  • , Xintong Liu
  • , Fan Zhang
  • , Xinyan Huang
  • , Yao Lu
  • , Weixiong Zhang
  • , Ralf Zimmerman
  • , Yinon Rudich
  • , Qing Li
  • , Jianmin Chen
  • , Yingjun Chen*
  • , Ling N. Jin*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Biomass burning organic aerosols (BBOAs) represent a major global health hazard. Their toxicity varies significantly due to the diversity of combustion conditions, which shape mixtures of components with differing toxic potency. We quantified component-specific contributions to intracellular reactive oxygen species generation in human bronchial epithelial cells exposed to BBOAs produced under controlled combustion conditions. Elevated combustion temperatures substantially reduced organic carbon (OC) mass emissions (by 20-fold) but resulted in a more modest reduction in OC toxicity emissions (by 5-fold). The toxicity emission reduction was primarily attributed to water-extractable OC (WOC), while methanol-extractable OC (MOC) limited this effect. The reduced emission of WOC toxicity was driven by the decreased mass emission of polar compounds such as methoxylates, as the toxicity per unit mass of WOC showed negligible changes across temperatures. In contrast, the toxicity per unit mass of MOC increased 10-fold from low to high temperatures, partially due to the formation of more potent aromatic derivatives, despite their smaller mass contribution. These findings underscore the importance of identifying key toxicity drivers to guide targeted source apportionment and refine strategies for reducing toxic emissions. © 2025 American Chemical Society
Original languageEnglish
Pages (from-to)19244-19256
JournalEnvironmental Science & Technology
Volume59
Issue number36
Online published1 Sept 2025
DOIs
Publication statusPublished - 16 Sept 2025

Funding

This work was funded by the Research Grants Council of Hong Kong (T24-508/22-N, 15213922, 25210420, C2002-22Y, and JLFS/E-502/24), the National Natural Science Foundation of China (42007393, 42177086, 42207131, and 92043302), the Research Institute for Sustainable Urban Development Joint Research Scheme (P0042843), Research Centre for Nature-based Urban Infrastructure Solutions (P0053045), and Presidential Young Scholar Scheme (P0040336) of The Hong Kong Polytechnic University. the donation from HuaJun Metal Products (Hong Kong) Co. Limited (P0056278), and the Israel Science Foundation (grant #928/21). We would like to thank the University Research Facility in Life Science and the University Research Facility in Chemical and Environmental Analysis of The Hong Kong Polytechnic University for the mass spectrometric analysis.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Research Keywords

  • biomass combustion
  • effect-directed analysis
  • emission reduction
  • mixture toxicity
  • nontargeted screening
  • reactive oxygen species

RGC Funding Information

  • RGC-funded

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