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An adaptable mesocosm platform for performing integrated assessments of nanomaterial risk in complex environmental systems

机译:适用于复杂环境系统中纳米材料风险的综合评估的适应性中观平台

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Physical-chemists, (micro)biologists, and ecologists need to conduct meaningful experiments to study the environmental risk of engineered nanomaterials with access to relevant mechanistic data across several spatial and temporal scales. Indoor aquatic mesocosms (60L) that can be tailored to virtually mimic any ecosystem appear as a particularly well-suited device. Here, this concept is illustrated by a pilot study aimed at assessing the distribution of a CeO2-based nanomaterial within our system at low concentration (1.5?mg/L). Physico-chemical as well as microbiological parameters took two weeks to equilibrate. These parameters were found to be reproducible across the 9-mesocosm setup over a 45-day period of time. Recovery mass balances of 115 ± 18% and 60 ± 30% of the Ce were obtained for the pulse dosing and the chronic dosing, respectively. This demonstrated the relevance of our experimental approach that allows for adequately monitoring the fate and impact of a given nanomaterial.
机译:物理化学家,(微生物)生物学家和生态学家需要进行有意义的实验,以研究工程纳米材料的环境风险,并获得跨多个时空尺度的相关机械数据。可以量身定制以模仿任何生态系统的室内水生介体(60L)似乎是一种非常合适的设备。在这里,通过一项旨在评估低浓度(1.5?mg / L)的基于CeO 2 的纳米材料在我们系统中的分布的初步研究来说明这一概念。理化指标和微生物指标需要两周时间才能达到平衡。发现这些参数在45天的时间范围内的9个mesocosm设置中可重现。脉冲给药和慢性给药的回收质量平衡分别为Ce的115±18%和60±30%。这证明了我们实验方法的相关性,该方法可以充分监控给定纳米材料的命运和影响。

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