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May 29, 2026Environment International0 citationsOpen Access

Atmospheric aging of tire rubber antioxidants forms complex mixtures that trigger inflammation in human macrophages

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CPChao PengJLJohn LiggioSMSamar G. Moussa

Key Points

  • This research investigates the inflammatory effects of transformation products formed from rubber antioxidants in the atmosphere.
  • Laboratory experiments analyzed oxidation reactions of 6PPD and DPPD with OH radicals and ozone.
  • Identified over 150 transformation products in oxidation experiments and over 88 in ambient particulate matter samples.
  • Evaluated the inflammatory response of human macrophages to these transformation product mixtures.
  • Transformation products induced more inflammation in macrophages than the parent antioxidants and the 6PPD-Q compound.
  • Documented potent inflammatory responses and rapid cell death at concentrations comparable to those found in human blood serum.
  • Emphasized that assessing tire-wear chemicals requires considering complex mixtures rather than individual compounds.

Abstract

Antioxidants added to tires to prevent degradation have recently been recognized as emerging environmental contaminants. While their acute aquatic toxicity has raised concern, these compounds are also emitted to the atmosphere and can be associated with particulate matter (PM). On PM they can react heterogeneously with oxidants, producing a range of transformation products (TPs) with unknown impacts to human health via inhalation. Here, we show through laboratory experiments that many previously unrecognized TPs are formed in complex mixtures from both OH radical and ozone heterogeneous reactions of N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine (6PPD) and N,N'-diphenyl-1,4-phenylenediamine (DPPD). In the presence of nitrogen oxides, 13 TPs incorporated additional nitrogen atoms in the form of potentially toxic nitrosamines and nitramines. Overall, >150 TPs were detected in oxidation experiments, with > 88 also identified in ambient near-road and urban PM samples. When tested in human macrophages, these TP mixtures induced potent inflammatory responses and rapid cell death. The effects consistently exceeded those caused by the parent antioxidants and by the single quinone compound (6PPD-Q), commonly assumed to trigger toxicity, even at total mixture concentrations comparable to those recently measured in human blood serum. These findings suggest that atmospheric processing of tire-wear chemicals produces PM-associated transformation products, which could potentially contribute to an elevated risk of inflammation-driven diseases near roads. The work highlights the importance of evaluating atmospherically derived tire-wear TPs as dynamic, interactive mixtures rather than isolated compounds, particularly as electric vehicles with higher tire wear emissions become more prevalent.

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Cite This Study

Peng et al. (2026) studied this question.

synapsesocial.com/papers/6a192cf8fab5b468c4415be2https://doi.org/10.1016/j.envint.2026.110307
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Occurrence, Transformation, and Toxicity of Tire-Derived Chemicals 6PPD and 6PPD-q in the Environment2026 · 16 citations
  2. 2Occurrence and Oxidation Kinetics of Antioxidant <i>p</i>-Phenylenediamines and Their Quinones in Recycled Rubber Particles from Artificial Turf2024 · 34 citations
  3. 3Nontargeted Screening Unveils Structural Diversity and Environmental Pervasiveness of <i>p</i>-Phenylenediamine Antioxidant-Derived Quinones: Evidence from End-of-Life Tires and Road Dust Contamination2025 · 8 citations
  4. 4Exposure Sequence of Photoaging and Natural Organic Matters Governs the Complex Release Dynamics of Additives from Tire Tread Particles2026
  5. 5Nontailpipe Particulate Matter from Brake Wear, Tire Tread, and Road Dust: Environmentally Persistent Free Radicals, Reactive Oxygen Species, and Oxidative Potential2026