Soil heterogeneity influences the biotoxicity of photoaged tire wear particles in Eisenia fetida: A comparative assessment.

Fuente: PubMed
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Autores principales: Zhou, Hanghai, Wang, Xin, Sun, Hong, Li, Hua, Wu, Zhou, Li, Yongfu, Yao, Xiaohong, Zhou, Jianjiang, Jiang, Lijia, Wang, Yuan, Jin, Junwei, Zhang, Chunfang, Tang, Jiangwu
Formato: Artículo científico
Lenguaje:en
Publicado: Journal of hazardous materials 2025
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author Zhou, Hanghai
Wang, Xin
Sun, Hong
Li, Hua
Wu, Zhou
Li, Yongfu
Yao, Xiaohong
Zhou, Jianjiang
Jiang, Lijia
Wang, Yuan
Jin, Junwei
Zhang, Chunfang
Tang, Jiangwu
author_facet Zhou, Hanghai
Wang, Xin
Sun, Hong
Li, Hua
Wu, Zhou
Li, Yongfu
Yao, Xiaohong
Zhou, Jianjiang
Jiang, Lijia
Wang, Yuan
Jin, Junwei
Zhang, Chunfang
Tang, Jiangwu
Zhou, Hanghai
Wang, Xin
Sun, Hong
Li, Hua
Wu, Zhou
Li, Yongfu
Yao, Xiaohong
Zhou, Jianjiang
Jiang, Lijia
Wang, Yuan
Jin, Junwei
Zhang, Chunfang
Tang, Jiangwu
collection PubMed - marine biology
contents Soil heterogeneity influences the biotoxicity of photoaged tire wear particles in Eisenia fetida: A comparative assessment. Zhou, Hanghai Wang, Xin Sun, Hong Li, Hua Wu, Zhou Li, Yongfu Yao, Xiaohong Zhou, Jianjiang Jiang, Lijia Wang, Yuan Jin, Junwei Zhang, Chunfang Tang, Jiangwu Oligochaeta Animals Soil Gastrointestinal Microbiome Soil Pollutants Oxidative Stress Reactive Oxygen Species Tire wear particles (TWPs) pose escalating environmental concerns owing to their aging-enhanced toxicity. However, the combined effects of photoaging and soil heterogeneity remain poorly understood. This study investigated the impact of virgin and photoaged TWPs on Eisenia fetida in three soil types (red, black, and loess), focusing on earthworm survival, weight loss, antioxidant responses, histopathological changes, and gut microbiota shifts. Results showed that photoaging significantly increased TWP toxicity, as evidenced by elevated surface environmentally persistent free radicals. High-dose exposure to photoaged TWPs caused the greatest reduction in earthworm survival (52.2 % vs. control, P
format Artículo científico
id pubmed_40784116
institution PubMed
language en
publishDate 2025
publisher Journal of hazardous materials
record_format pubmed
spellingShingle Soil heterogeneity influences the biotoxicity of photoaged tire wear particles in Eisenia fetida: A comparative assessment.
Zhou, Hanghai
Wang, Xin
Sun, Hong
Li, Hua
Wu, Zhou
Li, Yongfu
Yao, Xiaohong
Zhou, Jianjiang
Jiang, Lijia
Wang, Yuan
Jin, Junwei
Zhang, Chunfang
Tang, Jiangwu
Oligochaeta
Animals
Soil
Gastrointestinal Microbiome
Soil Pollutants
Oxidative Stress
Reactive Oxygen Species
Soil heterogeneity influences the biotoxicity of photoaged tire wear particles in Eisenia fetida: A comparative assessment. Zhou, Hanghai Wang, Xin Sun, Hong Li, Hua Wu, Zhou Li, Yongfu Yao, Xiaohong Zhou, Jianjiang Jiang, Lijia Wang, Yuan Jin, Junwei Zhang, Chunfang Tang, Jiangwu Oligochaeta Animals Soil Gastrointestinal Microbiome Soil Pollutants Oxidative Stress Reactive Oxygen Species Tire wear particles (TWPs) pose escalating environmental concerns owing to their aging-enhanced toxicity. However, the combined effects of photoaging and soil heterogeneity remain poorly understood. This study investigated the impact of virgin and photoaged TWPs on Eisenia fetida in three soil types (red, black, and loess), focusing on earthworm survival, weight loss, antioxidant responses, histopathological changes, and gut microbiota shifts. Results showed that photoaging significantly increased TWP toxicity, as evidenced by elevated surface environmentally persistent free radicals. High-dose exposure to photoaged TWPs caused the greatest reduction in earthworm survival (52.2 % vs. control, P
title Soil heterogeneity influences the biotoxicity of photoaged tire wear particles in Eisenia fetida: A comparative assessment.
topic Oligochaeta
Animals
Soil
Gastrointestinal Microbiome
Soil Pollutants
Oxidative Stress
Reactive Oxygen Species
url https://pubmed.ncbi.nlm.nih.gov/40784116/