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水生中观策略在工程纳米材料的环境归趋和风险评估中的应用。

Aquatic Mesocosm Strategies for the Environmental Fate and Risk Assessment of Engineered Nanomaterials.

机构信息

CNRS, Aix-Marseille Univ., IRD, INRAE, CEREGE, 13545 Aix-en-Provence, France.

Laboratory of Microbial Ecology of the Rhizosphere, Aix Marseille Univ, CEA, CNRS, BIAM, LEMiRE, ECCOREV FR 3098, F-13108 Saint Paul-Lez-Durance, France.

出版信息

Environ Sci Technol. 2021 Dec 21;55(24):16270-16282. doi: 10.1021/acs.est.1c02221. Epub 2021 Dec 2.

Abstract

In the past decade, mesocosms have emerged as a useful tool for the environmental study of engineered nanomaterials (ENMs) as they can mimic the relevant exposure scenario of contamination. Herein, we analyzed the scientific outcomes of aquatic mesocosm experiments, with regard to their designs, the ENMs tested, and the end points investigated. Several mesocosm designs were consistently applied in the past decade to virtually mimic various contamination scenarios with regard to ecosystem setting as well as ENMs class, dose, and dosing. Statistical analyses were carried out with the literature data to identify the main parameters driving ENM distribution in the mesocosms and the potential risk posed to benthic and planktonic communities as well as global ecosystem responses. These analyses showed that at the end of the exposure, mesocosm size (water volume), experiment duration, and location indoor/outdoor had major roles in defining the ENMs/metal partitioning. Moreover, a higher exposure of the benthic communities is often observed but did not necessarily translate to a higher risk due to the lower hazard posed by transformed ENMs in the sediments (e.g., aggregated, sulfidized). However, planktonic organisms were generally exposed to lower concentrations of potentially more reactive and toxic ENM species. Hence, mesocosms can be complementary tools to existing standard operational procedures for regulatory purposes and environmental fate and risk assessment of ENMs. To date, the research was markedly unbalanced toward the investigation of metal-based ENMs compared to metalloid- and carbon-based ENMs but also nanoenabled products. Future studies are expected to fill this gap, with special regard to high production volume and potentially hazardous ENMs. Finally, to take full advantage of mesocosms, future studies must be carefully planned to incorporate interdisciplinary approaches and ensure that the large data sets produced are fully exploited.

摘要

在过去的十年中,中观系统已成为研究工程纳米材料(ENMs)的环境影响的有用工具,因为它们可以模拟相关的污染暴露情景。在此,我们分析了水生中观系统实验的科学结果,涉及它们的设计、测试的 ENMs 以及研究的终点。过去十年中,几种中观系统设计被一致应用于虚拟模拟各种生态系统设置以及 ENMs 类别、剂量和投加方式的污染情景。通过文献数据进行了统计分析,以确定驱动 ENM 在中观系统中分布的主要参数以及对底栖和浮游生物群落以及全球生态系统响应的潜在风险。这些分析表明,在暴露结束时,中观系统的大小(水体体积)、实验持续时间和室内/室外位置对定义 ENMs/金属分配起主要作用。此外,通常观察到底栖群落的暴露程度更高,但由于沉积物中转化的 ENMs(例如,聚集、硫化)带来的危害较低,并不一定会导致更高的风险。然而,浮游生物通常暴露于潜在更具反应性和毒性的 ENM 物种的浓度较低。因此,中观系统可以作为补充工具,用于监管目的以及 ENMs 的环境归宿和风险评估的现有标准操作程序。迄今为止,与金属基 ENMs 相比,研究明显偏向于研究类金属和碳基 ENMs 以及纳米增强产品。预计未来的研究将填补这一空白,特别关注高产量和潜在危险的 ENMs。最后,为了充分利用中观系统,未来的研究必须精心规划,纳入跨学科方法,并确保充分利用产生的大量数据集。

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