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生物膜是否会影响 DGT 技术对汞的测量?防止生物膜生长的微宇宙和现场测试。

Do biofilms affect the measurement of mercury by the DGT technique? Microcosm and field tests to prevent biofilm growth.

机构信息

Department of Environmental Chemistry, Institute of Environmental Assessment and Water Research (IDAEA-CSIC), C/Jordi Girona, 18-26, E-08034, Barcelona, Spain.

Department of Environmental Chemistry, Institute of Environmental Assessment and Water Research (IDAEA-CSIC), C/Jordi Girona, 18-26, E-08034, Barcelona, Spain.

出版信息

Chemosphere. 2018 Nov;210:692-698. doi: 10.1016/j.chemosphere.2018.07.047. Epub 2018 Jul 11.

DOI:10.1016/j.chemosphere.2018.07.047
PMID:30031999
Abstract

The diffusive gradients in thin films (DGT) technique has been used routinely for monitoring the dissolved, bioavailable fraction of trace metals in freshwater during field campaigns. Nevertheless, for long deployment times, the biofilm formed on the filter of the DGT devices restricts trace metal uptake and hence interferes with the DGT measurements. In this work, we design different experiments to evaluate the potential of silver nanoparticles (AgNPs) in preventing the formation of biofilms on in-house manufactured mercury-specific DGTs. Laboratory tests were carried out by a microcosm system in independent glass containers, where biofilms obtained from field inocula were grown for weeks. Afterward, several experiments were performed with Hg-spiked river water, biofilms and DGTs treated and untreated with AgNPs to better understand biofilm colonization, inhibition and Hg uptake. The results showed that the treatment is very useful, since the mass of the biofilm accumulated at the surface of the treated DGT is significantly (p < 0.05) lower than in control (untreated) devices. Tests in colonized environments and Hg-spiked river water showed that the Hg uptake by the treated DGT matched the theoretical values and prevented biofilm formation up to 24 days post-deployment. Conversely, in deployments longer than two weeks using the untreated DGT, measurements could be underestimated by 35%. The results in the field reveal that in sampling stations with high levels of suspended matter, the filter becomes clogged despite there being no biofilm, thereby explaining its low efficiency for the uptake of Hg. In summary, the use of AgNPs inhibits biofilm formation and their use is especially recommended in eutrophic freshwaters with low amounts of suspended particulate matter.

摘要

扩散梯度薄膜(DGT)技术已被常规用于监测野外实地考察中淡水痕量金属的溶解、生物可利用部分。然而,对于长时间的部署,DGT 设备过滤器上形成的生物膜会限制痕量金属的吸收,从而干扰 DGT 的测量。在这项工作中,我们设计了不同的实验来评估银纳米颗粒(AgNPs)在防止室内制造的汞特异性 DGT 上形成生物膜的潜力。实验室测试是在独立的玻璃容器中的微宇宙系统中进行的,在那里,从野外接种物获得的生物膜生长了数周。之后,进行了几项用含 Hg 的河水、生物膜和用和未用 AgNPs 处理的 DGT 的实验,以更好地理解生物膜的定殖、抑制和 Hg 的吸收。结果表明,这种处理非常有效,因为用 AgNPs 处理的 DGT 表面上积累的生物膜的质量明显(p<0.05)低于对照(未处理)设备。在已被生物膜定殖的环境和含 Hg 的河水中进行的测试表明,用处理后的 DGT 吸收的 Hg 与理论值相匹配,并可防止生物膜形成,最长可达 24 天。相反,在使用未处理的 DGT 进行超过两周的部署中,测量值可能会低估 35%。野外的结果表明,在悬浮物含量高的采样点,尽管没有生物膜,但过滤器仍然会堵塞,这解释了其对 Hg 吸收效率低的原因。总之,AgNPs 的使用可以抑制生物膜的形成,特别是在富营养化且悬浮物含量低的淡水中,建议使用 AgNPs。

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引用本文的文献

1
Utility of Diffusive Gradient in Thin-Film Passive Samplers for Predicting Mercury Methylation Potential and Bioaccumulation in Freshwater Wetlands.薄膜型被动采样器中扩散梯度技术用于预测淡水湿地中汞的甲基化潜力和生物累积的效用。
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