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首页> 外文期刊>Science of the total environment >Particle size, surface charge and concentration dependent ecotoxicity of three organo-coated silver nanoparticles: Comparison between general linear model-predicted and observed toxicitv
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Particle size, surface charge and concentration dependent ecotoxicity of three organo-coated silver nanoparticles: Comparison between general linear model-predicted and observed toxicitv

机译:三种有机涂层银纳米颗粒的粒径,表面电荷和浓度依赖性的生态毒性:一般线性模型预测的毒性和观察到的毒性的比较

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摘要

Mechanism underlying nanotoxicity has remained elusive. Hence, efforts to understand whether nanoparticle properties might explain its toxicity are ongoing. Considering three different types of organo-coated silver nanoparticles (AgNPs): citrate-coated AgNP, polyvinylpyrrolidone-coated AgNP, and branched polyethyleneimine-coated AgNP, with different surface charge scenarios and core particle sizes, herein we systematically evaluate the potential role of particle size and surface charge on the toxicity of the three types of AgNPs against two model organisms, Escherichia coli and Daphnia magna. We find particle size, surface charge, and concentration dependent toxicity of all the three types of AgNPs against both the test organisms. Notably, Ag~+ (as added AgNO_3) toxicity is greater than each type of AgNPs tested and the toxicity follows the trend: AgNO_3 > BPEI-AgNP > Citrate-AgNP > PVP-AgNP. Modeling particle properties using the general linear model (GLM), a significant interaction effect of primary particle size and surface charge emerges that can explain empirically-derived acute toxicity with great precision. The model explains 99.9% variation of toxicity in E. coli and 99.8% variation of toxicity in D. magna, revealing satisfactory predictability of the regression models developed to predict the toxicity of the three organo-coated AgNPs. We anticipate that the use of GLM to satisfactorily predict the toxicity based on nanoparticle physico-chemical characteristics could contribute to our understanding of nanotoxicoiogy and underscores the need to consider potential interactions among nanoparticle properties when explaining nanotoxicity.
机译:潜在的纳米毒性机制仍然难以捉摸。因此,正在努力了解纳米颗粒的性质是否可以解释其毒性。考虑到三种不同类型的有机涂层银纳米颗粒(AgNP):柠檬酸盐涂层的AgNP,聚乙烯吡咯烷酮涂层的AgNP和支链聚乙烯亚胺涂层的AgNP,具有不同的表面电荷情况和核心粒径,在此我们系统地评估颗粒的潜在作用大小和表面电荷对三种类型的AgNP对两种模式生物大肠杆菌和水蚤的毒性的影响。我们发现三种类型的AgNP对两种测试生物的粒径,表面电荷和浓度依赖性毒性。值得注意的是,Ag〜+(添加了AgNO_3)的毒性大于所测试的每种类型的AgNPs,且毒性遵循以下趋势:AgNO_3> BPEI-AgNP>柠檬酸盐-AgNP> PVP-AgNP。使用通用线性模型(GLM)对颗粒性质进行建模,就会出现初级粒径和表面电荷的显着相互作用,从而可以高精度地解释基于经验的急性毒性。该模型解释了在大肠杆菌中99.9%的毒性变化和在大果蝇中99.9%的毒性变化,揭示了开发用来预测三种有机涂层AgNPs毒性的回归模型的令人满意的可预测性。我们预期,使用GLM来基于纳米粒子的理化特性令人满意地预测毒性可能有助于我们对纳米毒理学的理解,并强调在解释纳米毒性时需要考虑纳米粒子特性之间的潜在相互作用。

著录项

  • 来源
    《Science of the total environment 》 |2014年第15期| 968-976| 共9页
  • 作者单位

    Department of Environmental Health, College of Public Health, East Tennessee State University, Johnson City, TN 37614, United States;

    Department of Environmental Health, College of Public Health, East Tennessee State University, Johnson City, TN 37614, United States,US Environmental Protection Agency, National Health and Environmental Effects Research Laboratory, 200 SW 35th St., Corvallis, OR 97333, United States;

    Environmental Engineering Program, School of Engineering, University of Guelph, 50 Stone Road East, Guelph, Ontario, Canada;

    USEPA, Office of Research and Development, National Risk Management Laboratory, 26 West Martin Luther King Drive, Cincinnati, OH 45224, United States;

    Department of Environmental Health, College of Public Health, East Tennessee State University, Johnson City, TN 37614, United States;

    Department of Biostatistics and Epidemiology, College of Public Health, East Tennessee State University, Johnson City, TN 37614, United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Organo-coated silver nanoparticles; General linear model; Nanotoxicology; Nanoparticle characteristics; Escherichia coli; Daphnia magna;

    机译:有机涂层的银纳米颗粒;一般线性模型;纳米毒理学;纳米粒子特性;大肠杆菌;水蚤;

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