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Minimised Bioconcentration Tests: A Useful Tool for Assessing Chemical Uptake into Terrestrial and Aquatic Invertebrates?

机译:最小化生物富集测试:评估陆生和水生无脊椎动物化学吸收的有用工具?

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摘要

Current guidelines for determining bioconcentration factors (BCF) and uptake and depuration rate constants require labor intensive studies with large numbers of organisms. A minimized approach has recently been proposed for fish BCF studies but its applicability to other taxonomic groups is unknown. In this study, we therefore evaluate the use of the minimized approach for estimating BCF and uptake and depuration rate constants for chemicals in aquatic and terrestrial invertebrates. Data from a range of previous BCF studies were resampled to calculate BCFs and rate constants using the minimized method. The resulting values were then compared to values obtained using full study designs. Results demonstrated a good correlation for uptake rate constants, a poor correlation for depuration rate constants and a very good correlation between the BCFs obtained using the traditional and minimized approach for a variety of organic compounds. The minimized approach therefore has merit in deriving bioconcentration factors and uptake rate constants but may not be appropriate for deriving depuration rate constants for use in, for example, toxico-kinetic toxico-dynamic modeling. The approach uses up to 70% fewer organisms, requires less labor and has lower analytical costs. The minimized design therefore could be a valuable approach for running large multifactorial studies to assess bioconcentration of the plethora of chemicals that occur in the environment into the many taxonomic groups that occur in the environment. The approach should therefore help in accelerating the development of our understanding of factors and processes affecting uptake of chemicals into organisms in the environment.
机译:当前用于确定生物浓缩因子(BCF)以及摄取和净化速率常数的准则要求对大量生物进行劳动密集型研究。最近提出了一种用于鱼类BCF研究的最小化方法,但其在其他生物分类群中的适用性尚不清楚。因此,在这项研究中,我们评估了使用最小化方法估算水生和陆生无脊椎动物中BCF以及化学物质的摄取和净化速率常数的方法。使用最小化方法对来自一系列先前BCF研究的数据进行重新采样,以计算BCF和速率常数。然后将所得值与使用完整研究设计获得的值进行比较。结果表明摄取速率常数具有良好的相关性,净化速率常数具有较弱的相关性,并且使用传统方法和最小化方法获得的多种有机化合物的BCF之间具有非常良好的相关性。因此,最小化方法在推导生物浓度因子和摄取速率常数方面具有优势,但可能不适用于推导用于例如毒物动力学毒物动力学模型的纯化速率常数。该方法使用多达70%的生物,所需的劳动更少,分析成本更低。因此,最小化的设计可能是进行大型多因素研究以评估环境中大量化学物质向环境中许多生物分类群的生物浓缩的有价值的方法。因此,该方法应有助于加快我们对影响环境中生物吸收化学物质的因素和过程的理解。

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  • 来源
    《Environmental Science & Technology》 |2014年第22期|13497-13503|共7页
  • 作者单位

    Environment Department, University of York, Heslington, York, U.K., YO10 5DD;

    Environment Department, University of York, Heslington, York, U.K., YO10 5DD;

    EHS Technical CoE, GlaxoSmithKline, Ware, U.K., SG12 0DP;

    Environment Department, University of York, Heslington, York, U.K., YO10 5DD;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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