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February 19, 2026Toxics1 citationsOpen Access

Integrated Composition–Toxicity Assessment Reveals Seasonal Drivers of PM2.5 Health Risks in Hefei, China

ZDZhaoyin DingLCLei ChengTWTong Wang

Key Points

  • This research aims to analyze seasonal variations in PM2.5 composition and associated health risks in Hefei, China.
  • Collected PM2.5 samples across four seasons in Hefei.
  • Chemically characterized samples for various components including ions, metals, and PAHs.
  • Assessed toxicity using oxidative potential, cytotoxicity tests, and reactive oxygen species generation.
  • Performed statistical analyses to identify key toxicity drivers.
  • Winter showed the highest PM2.5 levels (68.31 μg/m3) and toxicity measures.
  • Winter PM2.5 had the highest oxidative potential (0.1423 nmol DTT/min/μg) and strongest cytotoxicity (51.85% cell viability).
  • Spring PM2.5 was enriched in crustal elements, while summer had the lowest pollutant concentrations.
  • Key toxicity drivers included secondary inorganic aerosols and toxic metals with significant seasonal composition variations.

Abstract

Amidst rapid urbanization, fine particulate matter (PM2.5) has emerged as a critical environmental challenge in China, posing substantial health risks due to its complex composition and diverse sources. This study provides a seasonally resolved analysis of PM2.5 composition and multi-faceted toxicity in Hefei, a major Chinese manufacturing center. PM2.5 samples collected across four seasons were chemically characterized for water-soluble ions, carbonaceous components, metals, and polycyclic aromatic hydrocarbons (PAHs) and derivatives. Their toxicological effects were evaluated through oxidative potential (OP), cytotoxicity, and reactive oxygen species (ROS) generation in the human bronchial epithelial cell line BEAS-2B. The results reveal significant seasonal variations in PM2.5 concentration and composition. Winter exhibited the highest PM2.5 levels (68.31 ± 17.12 μg/m3), with enrichment of secondary inorganic aerosols (SIAs), toxic metals (Pb, Cd, As), and high-molecular-weight PAHs. Spring showed elevated crustal elements (Al, Fe, Mn), while summer had the lowest pollutant concentrations. Toxicity assays reflected the following patterns: winter PM2.5 demonstrated the highest OP (0.1423 ± 0.0368 nmol DTT/min/μg), strongest cytotoxicity (51.85% cell viability), and greatest ROS induction (2.28-fold increase). Statistical analyses identified distinct toxicity drivers: OP was associated with SIA (NO3−, NH4+) and redox-active metals (Cu, Zn); cytotoxicity correlated with toxic metals and PAHs; whereas ROS showed weaker compositional correlations. This integrated “composition–toxicity” assessment reveals that the elevated health risk in winter stems from a synergistic mix of secondary aerosols and combustion-derived toxicants, urging a shift toward component-specific, risk-based air quality management strategies.

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Cite This Study

Ding et al. (2026) studied this question.

synapsesocial.com/papers/6996a818ecb39a600b3ee82bhttps://doi.org/10.3390/toxics14020172
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