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Toxicity-based toxicokinetic/toxicodynamic assessment of bioaccumulation and nanotoxicity of zerovalent iron nanoparticles in Caenorhabditis elegans

机译:基于毒性的秀丽隐杆线虫的零价铁纳米颗粒的生物累积和纳米毒性的毒代动力学/毒理动力学评估

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摘要

Elucidating the relationships between the toxicity-based-toxicokinetic (TBTK)/toxicodynamic (TD) properties of engineered nanomaterials and their nanotoxicity is crucial for human health-risk analysis. Zerovalent iron (Fe0) nanoparticles (NPs) are one of the most prominent NPs applied in remediating contaminated soils and groundwater. However, there are concerns that Fe0NP application contributes to long-term environmental and human health impacts. The nematode Caenorhabditis elegans is a surrogate in vivo model that has been successfully applied to assess the potential nanotoxicity of these nanomaterials. Here we present a TBTK/TD approach to appraise bioaccumulation and nanotoxicity of Fe0NPs in C. elegans. Built on a present C. elegans bioassay with estimated TBTK/TD parameters, we found that average bioconcentration factors in C. elegans exposed to waterborne and food-borne Fe0NPs were ~50 and ~5×10−3, respectively, whereas 10% inhibition concentrations for fertility, locomotion, and development, were 1.26 (95% CI 0.19–5.2), 3.84 (0.38–42), and 6.78 (2.58–21) μg·g−1, respectively, implicating that fertility is the most sensitive endpoint in C. elegans. Our results also showed that biomagnification effects were not observed in waterborne or food-borne Fe0NP-exposed worms. We suggest that the TBTK/TD assessment for predicting NP-induced toxicity at different concentrations and conditions in C. elegans could enable rapid selection of nanomaterials that are more likely to be nontoxic in larger animals. We conclude that the use of the TBTK/TD scheme manipulating C. elegans could be used for rapid evaluation of in vivo toxicity of NPs or for drug screening in the field of nanomedicine.
机译:阐明工程纳米材料的基于毒性的毒代动力学(TBTK)/毒理动力学(TD)特性与其纳米毒性之间的关系对于人类健康风险分析至关重要。零价铁(Fe 0 )纳米颗粒(NPs)是用于修复受污染的土壤和地下水的最重要的NPs之一。但是,人们担心,Fe 0 NP的使用会对环境和人类健康产生长期影响。线虫秀丽隐杆线虫是一种体内替代模型,已成功应用于评估这些纳米材料的潜在纳米毒性。在这里,我们提出了一种TBTK / TD方法来评估秀丽隐杆线虫中Fe 0 NPs的生物积累和纳米毒性。基于目前估计的TBTK / TD参数的秀丽隐杆线虫生物测定法,我们发现暴露于水和食物源性Fe 0 NPs的秀丽隐杆线虫的平均生物富集因子分别为〜50和〜5×10 -3 分别对生育,运动和发育的抑制浓度为10%,分别为1.26(95%CI 0.19–5.2),3.84(0.38–42)和6.78(2.58–21) μg·g -1 分别表示生育力是线虫中最敏感的终点。我们的结果还表明,在水传播或食物传播的Fe 0 NP蠕虫中未观察到生物放大作用。我们建议通过TBTK / TD评估来预测秀丽隐杆线虫在不同浓度和条件下NP诱导的毒性,可以快速选择更可能对较大动物无毒的纳米材料。我们得出结论,操纵线虫的TBTK / TD方案的使用可用于快​​速评估NP的体内毒性或用于纳米医学领域的药物筛选。

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