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Spatiotemporal distribution and environmental risk assessment of 6PPDQ in the Schuylkill River
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Researchers tracked a toxic chemical called 6PPDQ, which forms when a common tire additive reacts with ozone, in the Schuylkill River in Pennsylvania. The chemical, carried by tire wear particles and microplastics, was found at levels that could harm aquatic life, particularly species like coho salmon. This study highlights how tire-derived microplastic pollution introduces dangerous chemicals into freshwater systems that communities rely on.
Tire wear particles (TWPs) and associated contaminants, including microplastics, benzothiazoles, polycyclic aromatic hydrocarbons (PAHs), N-(1,3-dimethylbutyl)-N′-phenyl-p-phenylenediamine (6PPD), its byproduct 6PPD-Quinone (6PPDQ), and heavy metals, are emerging pollutants in aquatic ecosystems. 6PPD, a commonly used tire antioxidant, reacts with ozone to form 6PPDQ, a toxic compound linked to acute mortality in aquatic species, such as Coho salmon. Despite its known impact, data on 6PPDQ in northeastern U.S. freshwater systems, including the Schuylkill River, remain limited. This study examined the spatiotemporal distribution of 6PPDQ in the Schuylkill River and assessed its environmental risks. It also identified key contamination sources and seasonal trends. We analyzed 6PPDQ concentrations at 16 locations across different seasons using the EPA 1634 Draft Method. Their relationship with traffic volume, population density, and tire-related industrial proximity was evaluated. Concentrations ranged from non-detectable to 17.95ng/L, with urban regions exhibiting higher levels. A moderate positive correlation (r=0.416) between 6PPDQ concentrations and Average Annual Daily Traffic (AADT) suggests traffic as a significant source. Population density and industrial proximity also contributed to contamination. Based on the EPA freshwater screening value (11ng/L), two sites posed high risks, while 88% were at medium risk. Risk levels peaked in October, when increased precipitation and reduced flow exacerbated contamination. These findings highlight the seasonal intensification of 6PPDQ pollution, emphasizing the need for stormwater management and long-term monitoring to mitigate risks and assess seasonal dynamics in freshwater systems.
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Environmental and Human Health Risks of 6PPD and 6PPDQ: Assessment and Implications.
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This review synthesized current knowledge on 6PPD and its tire-derived quinone derivative 6PPDQ, focusing on their environmental distribution, transformation, human exposure pathways, and ecological toxicity. The authors found that 6PPDQ in particular poses significant risks to aquatic organisms, including coho salmon.
Reclaimed water in road cleaning: An unrecognized risk for toxic 6PPD-Q formation from tire wear waste
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Researchers found that washing roads with reclaimed water instead of rainwater accelerates the aging of tire wear particles and significantly increases conversion of the tire additive 6PPD into its more toxic transformation product 6PPD-quinone, suggesting that urban water reuse practices may inadvertently amplify the release of a compound acutely lethal to coho salmon.
Microplastics in the Danube River Basin: A First Comprehensive Screening with a Harmonized Analytical Approach
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Researchers tracked how tire-derived particles move through an urban stormwater system and accumulate in receiving waterways, finding significant retention in retention ponds and stream sediments. Zinc and 6PPD-quinone, a tire antioxidant transformation product, were detected at concentrations toxic to coho salmon.
The Tire Wear Compounds 6PPD-Quinone and 1,3-Diphenylguanidine in an Urban Watershed
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Researchers re-analyzed archived water samples from an urban Canadian river and detected the tire-wear chemical 6PPD-quinone at concentrations exceeding the lethal threshold for coho salmon during storm events, confirming that tire-derived contaminants enter urban waterways in kilogram-scale loads during rainfall.
Treading Water: Tire Wear Particle Leachate Recreates an Urban Runoff Mortality Syndrome in Coho but Not Chum Salmon.
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Leachate from tire tread wear particles was found to cause acute mortality in coho salmon following rain events, reproducing the 'urban runoff mortality syndrome' seen in wild fish — while chum salmon were unaffected. The responsible chemical was identified as 6PPD-quinone, a tire additive, demonstrating that microplastic-related chemical leachates can devastate specific wildlife populations.
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