评估使用纳米膜技术和哺乳动物细胞系过滤的环境水样的生物活性

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引用次数: 0

摘要

该项目报告了使用新型纳米膜过滤技术从安大略湖水样中分离和分析含微塑料 (MP) 碎片的生物活性的情况。环境中的 MPs 是聚合物和吸附化学品的复杂混合物,具有持久性,可产生广泛的毒性影响。由于人类与 MPs 的接触不可避免,因此有必要确定其生物活性的特征,以评估潜在的健康风险。这项工作旨在量化安大略湖近岸水域中 MP 的存在,并开始确定含有 MP 的滤液的生物活性特征。我们利用氮化硅(SiN)纳米膜技术,从不同时间和地点采集的湖水样本中分离出 8 到 20 μm 大小的碎屑。用尼罗河红染色法鉴定 MPs。直接在过滤后的碎片上进行基于细胞的检测,以测试细胞活力、芳基烃受体(AhR)活性和白细胞介素 6(IL-6)水平(作为促炎反应的测量指标)。所有样本都含有 MPs。分离出的碎片都不会影响细胞的活力。不过,AhR 活性和 IL-6 水平随时间而变化。此外,没有观察到塑料量与生物活性之间存在关联。所观察到的活性差异很可能是由于不同样本中碎片的理化性质不同造成的。我们的研究结果突出表明,有必要增加取样次数,以全面鉴定 MPs 在人体细胞中的生物活性,并阐明样品的理化和时空特性在这种活性中所起的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Assessing bioactivity of environmental water samples filtered using nanomembrane technology and mammalian cell lines

Assessing bioactivity of environmental water samples filtered using nanomembrane technology and mammalian cell lines

This project reports on the use of a novel nanomembrane filtering technology to isolate and analyze the bioactivity of microplastic (MP)-containing debris from Lake Ontario water samples. Environmental MPs are a complex mixture of polymers and sorbed chemicals that are persistent and can exhibit a wide range of toxic effects. Since human exposure to MPs is unavoidable, it is necessary to characterize their bioactivity to assess potential health risks. This work seeks to quantify MP presence in the nearshore waters of Lake Ontario and begin to characterize the bioactivity of the filtrate containing MPs. We utilized silicon nitride (SiN) nanomembrane technology to isolate debris sized between 8 and 20 μm from lake water samples collected at various times and locations. MPs were identified with Nile red staining. Cell-based assays were conducted directly on the filtered debris to test for cell viability, aryl hydrocarbon receptor (AhR) activity, and interleukin 6 (IL-6) levels as a measure of proinflammatory response. All samples contained MPs. None of the isolated debris impacted cell viability. However, AhR activity and IL-6 levels varied over time. Additionally, no associations were observed between the amount of plastic and bioactivity. Observed differences in activity are likely due to variations in the physiochemical properties of debris between samples. Our results highlight the need for increased sampling to fully characterize the bioactivity of MPs in human cells and to elucidate the role that sample physiochemical and spatiotemporal properties play in this activity.

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来源期刊
Eco-Environment & Health
Eco-Environment & Health 环境科学与生态学-生态、环境与健康
CiteScore
11.00
自引率
0.00%
发文量
18
审稿时长
22 days
期刊介绍: Eco-Environment & Health (EEH) is an international and multidisciplinary peer-reviewed journal designed for publications on the frontiers of the ecology, environment and health as well as their related disciplines. EEH focuses on the concept of “One Health” to promote green and sustainable development, dealing with the interactions among ecology, environment and health, and the underlying mechanisms and interventions. Our mission is to be one of the most important flagship journals in the field of environmental health. Scopes EEH covers a variety of research areas, including but not limited to ecology and biodiversity conservation, environmental behaviors and bioprocesses of emerging contaminants, human exposure and health effects, and evaluation, management and regulation of environmental risks. The key topics of EEH include: 1) Ecology and Biodiversity Conservation Biodiversity Ecological restoration Ecological safety Protected area 2) Environmental and Biological Fate of Emerging Contaminants Environmental behaviors Environmental processes Environmental microbiology 3) Human Exposure and Health Effects Environmental toxicology Environmental epidemiology Environmental health risk Food safety 4) Evaluation, Management and Regulation of Environmental Risks Chemical safety Environmental policy Health policy Health economics Environmental remediation
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