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核壳结构 Au@纳米塑料作为定量示踪剂研究纳米塑料在淡水生态系统中的生物累积。

Core-Shell Au@Nanoplastics as a Quantitative Tracer to Investigate the Bioaccumulation of Nanoplastics in Freshwater Ecosystems.

机构信息

Shandong Industrial Engineering Laboratory of Biogas Production & Utilization, Key Laboratory of Biofuels, Shandong Provincial Key Laboratory of Synthetic Biology, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, Shandong Province 266101, P. R. China.

Jiangsu Key Laboratory of Anaerobic Biotechnology, School of Environment and Civil Engineering, Jiangnan University, Wuxi, Jiangsu Province 214122, P. R. China.

出版信息

Anal Chem. 2023 Aug 29;95(34):12785-12793. doi: 10.1021/acs.analchem.3c01666. Epub 2023 Aug 11.

Abstract

Studies on the adverse effects of nanoplastics (NPs, particle diameter <1000 nm) including physical damage, oxidative stress, impaired cell signaling, altered metabolism, developmental defects, and possible genetic damage have intensified in recent years. However, the analytical detection of NPs is still a bottleneck. To overcome this bottleneck and obtain a reliable and quantitative distribution analysis in complex freshwater ecosystems, an easily applicable NP tracer to simulate their fate and behavior is needed. Here, size- and surface charge-tunable core-shell Au@Nanoplastics (Au@NPs) were synthesized to study the environmental fate of NPs in an artificial freshwater system. The Au core enables the quantitative detection of NPs, while the polystyrene shell exhibits NP properties. The Au@NPs showed excellent resistance to environmental factors (e.g., 1% hydrogen peroxide solution, simulating gastric fluid, acids, and alkalis) and high recovery rates (>80%) from seawater, lake water, sewage, waste sludge, soil, and sediment. Both positively and negatively charged NPs significantly inhibited the growth of duckweed ( L.) but had little effect on the growth of cyanobacteria (). In addition, the accumulation of positively and negatively charged NPs in cyanobacteria occurred in a concentration-dependent manner, with positively charged NPs more easily taken up by cyanobacteria. In contrast, negatively charged NPs were more readily internalized in duckweed. This study developed a model using a core-shell Au@NP tracer to study the environmental fate and behavior of NPs in various complex environmental systems.

摘要

近年来,纳米塑料(NPs,粒径<1000nm)的不良影响研究,包括物理损伤、氧化应激、细胞信号受损、代谢改变、发育缺陷和可能的遗传损伤,已经得到了加强。然而,纳米颗粒的分析检测仍然是一个瓶颈。为了克服这一瓶颈,在复杂淡水生态系统中获得可靠和定量的分布分析,需要一种易于应用的纳米颗粒示踪剂来模拟它们的命运和行为。在这里,合成了尺寸和表面电荷可调的核壳 Au@Nanoplastics(Au@NPs)来研究纳米颗粒在人工淡水系统中的环境命运。Au 核能够定量检测纳米颗粒,而聚苯乙烯壳则表现出纳米颗粒的性质。Au@NPs 表现出优异的环境因素抗性(例如,1%过氧化氢溶液,模拟胃液、酸和碱)和从海水、湖水、污水、污泥、土壤和沉积物中的高回收率(>80%)。带正电荷和带负电荷的纳米颗粒都显著抑制了浮萍(L.)的生长,但对蓝藻()的生长几乎没有影响。此外,带正电荷和带负电荷的纳米颗粒在蓝藻中的积累呈浓度依赖性,带正电荷的纳米颗粒更容易被蓝藻吸收。相比之下,带负电荷的纳米颗粒更容易在浮萍中内化。本研究开发了一种使用核壳 Au@NP 示踪剂的模型,用于研究各种复杂环境系统中纳米颗粒的环境命运和行为。

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