首页> 外文期刊>Ecotoxicology and Environmental Safety >Biological effects of four iron-containing nanoremediation materials on the green alga Chlamydomonas sp.
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Biological effects of four iron-containing nanoremediation materials on the green alga Chlamydomonas sp.

机译:四种含铁纳米修复材料对绿藻衣藻的生物学效应。

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摘要

As nanoremediation strategies for in-situ groundwater treatment extend beyond nanoiron-based applications to adsorption and oxidation, ecotoxicological evaluations of newly developed materials are required. The biological effects of four new materials with different iron (Fe) speciations ([i] FerMEG12 - pristine Flake-like milled Fe(0) nanoparticles (nZVI), [ii] Carbo-Iron(center dot) - Fe(0)-nanoclusters containing activated carbon (AC) composite, [iii] Trap-Ox(center dot) Fe-BEA35 (Fe-zeolite) - Fe-doped zeolite, and [iv] Nano-Goethite - 'pure' FeOOH) were studied using the unicellular green alga Chlamydomonas sp. as a model test system. Algal growth rate, chlorophyll fluorescence, efficiency of photosystem II, membrane integrity and reactive oxygen species (ROS) generation were assessed following exposure to 10, 50 and 500 mg L-1 of the particles for 2 h and 24 h. The particles had a concentration-, material- and time-dependent effect on Chlamydomonas sp., with increased algal growth rate after 24 h. Conversely, significant intracellular ROS levels were detected after 2 h, with much lower levels after 24 h. All Fe-nanomaterials displayed similar Z-average sizes and zeta-potentials at 2 h and 24 h. Effects on Chlamydomonas sp. decreased in the order FerMEG12 Carbo-Iron(center dot) Fe-zeolite Nano-Goethite. Ecotoxicological studies were challenged due to some particle properties, i.e. dark colour, effect of constituents and a tendency to agglomerate, especially at high concentrations. All particles exhibited potential to induce significant toxicity at high concentrations (500 mg L-1), though such concentrations would rapidly decrease to mg or mu g L-1 in aquatic environments, levels harmless to Chlamydomonas sp. The presented findings contribute to the practical usage of particle-based nanoremediation in environmental restoration.
机译:由于用于原位地下水处理的纳米修复策略已从基于纳米铁的应用扩展到吸附和氧化,因此需要对新开发的材料进行生态毒理学评估。四种具有不同铁(Fe)形态的新材料的生物效应([i] FerMEG12-原始鳞片状研磨的Fe(0)纳米颗粒(nZVI),[ii]碳铁(中心点)-Fe(0)-研究了含有活性炭(AC)复合物,[iii]陷阱-Ox(中心点)Fe-BEA35(铁沸石)-掺铁沸石和[iv]纳米针铁矿-“纯” FeOOH)的纳米团簇。单细胞绿藻衣藻作为模型测试系统。在暴露于10、50和500 mg L-1的颗粒2小时和24小时后,评估了藻类的生长速率,叶绿素荧光,光系统II的效率,膜完整性和活性氧(ROS)的产生。颗粒对衣藻具有浓度,物质和时间依赖性,在24小时后藻类生长速率增加。相反,在2小时后检测到明显的细胞内ROS水平,而在24小时后降低了很多。所有的铁纳米材料在2 h和24 h时都显示出相似的Z平均尺寸和Zeta电位。对衣藻的影响。依次降低:FerMEG12>碳铁(中心点)>铁沸石>纳米针铁矿。由于某些颗粒性质,即深色,成分的作用以及易于团聚的趋势,尤其是在高浓度下,生态毒理学研究受到了挑战。所有颗粒均显示出在高浓度(500 mg L-1)下会引起明显毒性的潜力,尽管这种浓度在水生环境中会迅速降低至mg或μg L-1,对衣原体无害。提出的发现有助于环境修复中基于颗粒的纳米修复的实际应用。

著录项

  • 来源
    《Ecotoxicology and Environmental Safety》 |2018年第6期|36-44|共9页
  • 作者单位

    Tech Univ Liberec, Inst Nanomat Adv Technol & Innovat, Fac Mechatron Informat & Multidisciplinary Studie, Studentska 2, Liberec 46117, Czech Republic;

    Univ Geneva, Dept Environm & Aquat Sci, Fac Sci Earth & Environm Sci, Uni Carl Vogt, 66 Bvd Carl Vogt, CH-1211 Geneva, Switzerland;

    Univ Geneva, Dept Environm & Aquat Sci, Fac Sci Earth & Environm Sci, Uni Carl Vogt, 66 Bvd Carl Vogt, CH-1211 Geneva, Switzerland;

    Helmholtz Ctr Environm Res GmbH UFZ, Permoserstr 15, D-04318 Leipzig, Germany;

    Univ Duisburg Essen, Biofilm Ctr, Univ Str 5, D-45141 Essen, Germany;

    TU Bergakad Freiberg, Inst Mech Proc Engn & Mineral Proc, Agricolastr 1, D-09599 Freiberg, Germany;

    Helmholtz Zentrum Munchen, Ingolstadter Landstr 1, D-85764 Neuherberg, Germany;

    Tech Univ Liberec, Inst Nanomat Adv Technol & Innovat, Fac Mechatron Informat & Multidisciplinary Studie, Studentska 2, Liberec 46117, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);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
  • 中图分类
  • 关键词

    Biological effect; FerMEG12; Carbo-Iron; Trap-Ox Fe-zeolite; Nano-Goethite; Chlamydomonas sp.;

    机译:生物学作用;FerMEG12;碳铁;Trap-Ox Fe沸石;纳米针铁矿;衣藻;
  • 入库时间 2022-08-17 13:22:39

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