生物浓缩
水生植物
质外体
凤眼莲
陆生植物
环境化学
水生环境
水生生态系统
环境科学
化学
植物
生物
水生植物
生态学
生物累积
细胞壁
作者
Wenke Yuan,Elvis Genbo Xu,Lianzhen Li,Amei Zhou,Willie J.G.M. Peijnenburg,Hans‐Peter Grossart,Wenzhi Liu,Yuyi Yang
出处
期刊:Water Research
[Elsevier BV]
日期:2023-06-18
卷期号:242: 120249-120249
被引量:62
标识
DOI:10.1016/j.watres.2023.120249
摘要
Micro- and nanoplastics are emerging concerns due to their environmental ubiquity and currently largely unknown ecological impacts. Leveraging on a recently developed method using europium-doped polystyrene particles (PS-Eu), our present work aimed to accurately trace the uptake and transport of micro- and nanoplastics in aquatic plants and shed insights into the potential of different aquatic plants for trapping and removal of plastics from water environment. Seedlings of Vallisneria denseserrulata Makino (submerged plant), Iris tectorum Maxim (emergent plant), and Eichhornia crassipes Solms (floating plant) were exposed to 100 nm and 2 μm PS-Eu in freshwater (5 μg/mL) or sediments (5 μg/g) for 8 weeks. Fluorescence imaging clearly evidenced that PS-Eu mainly accumulated in the intercellular space and were transported from roots to leaves via the apoplastic path and vascular bundle. Mass spectrum analysis demonstrated that up to 6250 μg/g nanoplastics were trapped in aquatic plants (mainly in roots) with a bioconcentration factor of 306.5, depending on exposure routes and plant species. Owing to their excellent capture capability and high tolerance to plastic exposures, floating plants like E. crassipes are promising for immobilizing and removing fine plastics from the water environment.
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