Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks

Soil contamination by arsenic (As), microplastics (MPs), and antibiotics poses significant risks to crop growth and food safety. However, the combined effects of MPs and antibiotics on As accumulation and microbial community structures in rice soils remain poorly understood. This study introduced po...

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Main Authors: Wenlong Song, Xiaoxiao Zhang, Bing Ma, Lei Zhang
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2025-01-01
Series:Environmental Chemistry and Ecotoxicology
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Online Access:http://www.sciencedirect.com/science/article/pii/S2590182625000475
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author Wenlong Song
Xiaoxiao Zhang
Bing Ma
Lei Zhang
author_facet Wenlong Song
Xiaoxiao Zhang
Bing Ma
Lei Zhang
author_sort Wenlong Song
collection DOAJ
description Soil contamination by arsenic (As), microplastics (MPs), and antibiotics poses significant risks to crop growth and food safety. However, the combined effects of MPs and antibiotics on As accumulation and microbial community structures in rice soils remain poorly understood. This study introduced polystyrene (PS), polyamide (PA), and ciprofloxacin (CIP) into soil microcosms to evaluate their individual and combined toxicological impacts on arsenate (As(V)), rice seedlings (Oryza sativa subsp. japonica Kato), and soil microbes. Both PS and CIP treatments inhibited chlorophyll production in rice while increasing plant biomass. Under combined contamination, chlorophyll content, biomass, root length, and shoot length were significantly lower than under individual treatments. Exposure to MPs and CIP also disrupted the antioxidant defense system in rice seedling leaves. Additionally, the presence of PS and PA improved soil physicochemical properties. However, the combined presence of MPs and CIP significantly reduced microbial diversity compared to individual contamination. At the phylum level, microbial composition remained consistent across treatments, whereas at the genus level, only Arthrobacter exhibited significant changes under individual treatments. In contrast, four genera were notably altered in soils co-treated with MPs and CIP. These findings highlight that the combined contamination of PS, PA, and CIP exacerbates the reduction of microbial diversity in As-contaminated soil.
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spelling doaj-art-e6274026940f4f418f409209404f2cfd2025-08-20T02:13:43ZengKeAi Communications Co., Ltd.Environmental Chemistry and Ecotoxicology2590-18262025-01-01783684710.1016/j.enceco.2025.04.011Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risksWenlong Song0Xiaoxiao Zhang1Bing Ma2Lei Zhang3College of Resources and Environment, Qingdao Agricultural University, Qingdao 266005, PR ChinaCollege of Resources and Environment, Qingdao Agricultural University, Qingdao 266005, PR ChinaCollege of Resources and Environment, Qingdao Agricultural University, Qingdao 266005, PR ChinaCorresponding author.; College of Resources and Environment, Qingdao Agricultural University, Qingdao 266005, PR ChinaSoil contamination by arsenic (As), microplastics (MPs), and antibiotics poses significant risks to crop growth and food safety. However, the combined effects of MPs and antibiotics on As accumulation and microbial community structures in rice soils remain poorly understood. This study introduced polystyrene (PS), polyamide (PA), and ciprofloxacin (CIP) into soil microcosms to evaluate their individual and combined toxicological impacts on arsenate (As(V)), rice seedlings (Oryza sativa subsp. japonica Kato), and soil microbes. Both PS and CIP treatments inhibited chlorophyll production in rice while increasing plant biomass. Under combined contamination, chlorophyll content, biomass, root length, and shoot length were significantly lower than under individual treatments. Exposure to MPs and CIP also disrupted the antioxidant defense system in rice seedling leaves. Additionally, the presence of PS and PA improved soil physicochemical properties. However, the combined presence of MPs and CIP significantly reduced microbial diversity compared to individual contamination. At the phylum level, microbial composition remained consistent across treatments, whereas at the genus level, only Arthrobacter exhibited significant changes under individual treatments. In contrast, four genera were notably altered in soils co-treated with MPs and CIP. These findings highlight that the combined contamination of PS, PA, and CIP exacerbates the reduction of microbial diversity in As-contaminated soil.http://www.sciencedirect.com/science/article/pii/S2590182625000475ArsenicPolystyrenePolyamideCiprofloxacinRice soilCo-contamination
spellingShingle Wenlong Song
Xiaoxiao Zhang
Bing Ma
Lei Zhang
Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks
Environmental Chemistry and Ecotoxicology
Arsenic
Polystyrene
Polyamide
Ciprofloxacin
Rice soil
Co-contamination
title Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks
title_full Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks
title_fullStr Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks
title_full_unstemmed Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks
title_short Synergistic effects of microplastics and ciprofloxacin co-contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils: Implications for multi-pollutant agroecosystem risks
title_sort synergistic effects of microplastics and ciprofloxacin co contamination on arsenic bioaccumulation and microbial dysbiosis in rice soils implications for multi pollutant agroecosystem risks
topic Arsenic
Polystyrene
Polyamide
Ciprofloxacin
Rice soil
Co-contamination
url http://www.sciencedirect.com/science/article/pii/S2590182625000475
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