Reduced organic nitrogen compounds dominate the toxicity of PM 2.5 organics following internal exposure

Atmospheric fine particulate matter (PM 2.5 ) remains a major global health risk, with its associated health burden continuing to rise despite decades of pollution control efforts. Air pollution studies often focus on particle levels and known toxins, missing hidden organics that may drive serious health risks. Here, we conducted a comprehensive molecular and toxicological investigation of urban atmospheric particles, integrating nontargeted analysis of high-resolution mass spectrometry, protein adductomics–based internal exposure assessment, and multi-endpoint toxicity prediction. We find reduced organic nitrogen (RON) compounds as the predominant drivers of the toxicity of the internal exposed particle-bound organic fraction. RON account for 39% of total multi-organ toxicity, exceeding the 23% contribution from traditionally emphasized oxygenated organics. RON compounds exhibit strong binding affinity to human serum albumin, facilitating systemic distribution and toxic effects across respiratory, neurological, hepatic, renal, and hematological endpoints. Our findings identify RON as a key driver of organic PM 2.5 toxicity via internal exposure pathways and highlight the urgent need to regulate reactive nitrogen species.

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Publication Details

Journal
Science Advances
Published
2026-10-09
DOI
https://doi.org/10.1126/sciadv.aea8654
Primary Topic
Air Quality and Health Impacts
Type
article
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article

Reduced organic nitrogen compounds dominate the toxicity of PM 2.5 organics following internal exposure

Yaling Zeng, Baohua Cai, Shu Min Tao, Antai Zhang et al.
Science Advances
Air Quality and Health Impacts
article

Reduced organic nitrogen compounds dominate the toxicity of PM 2.5 organics following internal exposure

Yaling Zeng, Baohua Cai, Shu Min Tao, Antai Zhang, Xin Yuan, Tzung‐May Fu, Ziting Hou, Zhenxing Shen, Huizhong Shen, Jinghao Zhai, Lei Zhu, Rongrong Xu, Chen Wang, Yin Zhang, Xinming Wang, Jianhuai Ye, Shao Shi, Ke Yang, Baixin Zhang, Yujie Zhang
article en

Abstract

Atmospheric fine particulate matter (PM 2.5 ) remains a major global health risk, with its associated health burden continuing to rise despite decades of pollution control efforts. Air pollution studies often focus on particle levels and known toxins, missing hidden organics that may drive serious health risks. Here, we conducted a comprehensive molecular and toxicological investigation of urban atmospheric particles, integrating nontargeted analysis of high-resolution mass spectrometry, protein adductomics–based internal exposure assessment, and multi-endpoint toxicity prediction. We find reduced organic nitrogen (RON) compounds as the predominant drivers of the toxicity of the internal exposed particle-bound organic fraction. RON account for 39% of total multi-organ toxicity, exceeding the 23% contribution from traditionally emphasized oxygenated organics. RON compounds exhibit strong binding affinity to human serum albumin, facilitating systemic distribution and toxic effects across respiratory, neurological, hepatic, renal, and hematological endpoints. Our findings identify RON as a key driver of organic PM 2.5 toxicity via internal exposure pathways and highlight the urgent need to regulate reactive nitrogen species.

Science AdvancesVol. 12(41)
Southern University of Science and Technology (CN), Xi'an Jiaotong University (CN)
Openalex Percentile: Top 17%
Air Quality and Health Impacts
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