微塑料
营养水平
生物放大
污染物
水平基因转移
环境化学
食物链
生物
生化工程
生态学
环境毒理学
抗性(生态学)
微生物种群生物学
抗生素耐药性
环境科学
生态毒理学
基因
化学
基因组
水蚤
环境风险评价
微生物遗传学
异型生物质的
生物利用度
污染
流动遗传元素
水生环境
大型水蚤
作者
Junyi Du,Junyi Du,Jia Du,Jia Du,Linlin Qiu,Qingwei Zhou,Meiqing Jin,Jianjun Chen,Weihong Wu
标识
DOI:10.1080/01480545.2026.2717208
摘要
Microplastics (MPs) and nanoplastics (NPs) act as dynamic environmental vectors across the soil-water continuum, allowing them to enter organisms through direct ingestion, leading to potential tissue accumulation. Under specific exposure conditions, these vectors can undergo trophic transfer through food chains, contributing to combined toxicological risks. This paper reviews how the adsorption and co-transport behaviors of chemical pollutants by MPs and NPs are collectively regulated by the intrinsic physicochemical properties of the material and environmental weathering processes. The formation of the "plastisphere" on the surface of these particles provides a physical substrate that selectively enriches microbial communities and mobile genetic elements (MGEs). Under specific combined chemical stresses, this localized enrichment can act as a precursor to facilitate the horizontal gene transfer (HGT) of antibiotic resistance genes (ARGs), although the actual occurrence of HGT remains highly context-dependent. Additionally, MPs and NPs exacerbate their ecotoxicological impacts by operating via an "adsorption-ingestion-release" pathway within host gastrointestinal tracts, significantly influencing the dynamic bioavailability and combined toxicity (e.g., synergistic, antagonistic, or additive) of co-existing pollutants across multiple trophic levels. Given the numerous unresolved scientific challenges-such as the lack of standardized quantification methodologies for complex soil matrices and the poorly understood biomagnification of composite pollutant mixtures-there is a pressing need to promote further research through AI-driven coupled kinetic models and a comprehensive "One Health" risk assessment paradigm.
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