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Toxicity of Different Zinc Oxide Nanomaterials at 3 Trophic Levels: Implications for Development of Low-Toxicity Antifouling Agents

机译:不同锌氧化物纳米材料在3个营养水平的毒性:对低毒性防污剂的发展的影响

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摘要

Because zinc oxide (ZnO) nanomaterials are used in antifouling and antibacterial solutions, understanding their toxic effects on different aquatic organisms is essential. In the present study, we evaluated the toxicity of ZnO nanoparticles of 10 to 30 nm (ZnONPI) and 80 to 200 nm (ZnONPII), ZnO nanorods (width 80 nm, height 1.7 mu m) attached to the support substrate (glass, ZnONRG) and not attached (ZnONRS), as well as Zn2+ ions at concentrations ranging from 0.5 to 100 mg/L. Toxicity was evaluated using the microalga Dunaliella salina, the brine shrimp Artemia salina, and the marine bacterium Bacillus cereus. The highest toxicity was observed for ZnONPs (median lethal concentration [LC50] similar to 15 mg/L) and Zn2+ ions (LC50 similar to 13 mg/L), whereas the lowest toxicity found for ZnO nanorods (ZnONRG LC50 similar to 60 mg/L; ZnONRS LC50 similar to 42 mg/L). The presence of the support substrate in case of ZnO nanorods reduced the associated toxicity to aquatic organisms. Smaller ZnONPs resulted in the highest Zn2+ ion dissolution among tested nanostructures. Different aquatic organisms responded differently to ZnO nanomaterials, with D. salina and B. cereus being more sensitive than A. salina. Toxicity of nanostructures increased with an increase of the dose and the time of exposure. Supported ZnO nanorods can be used as a low-toxicity alternative for future antimicrobial and antifouling applications. Environ Toxicol Chem 2020;00:1-12. (c) 2020 SETAC
机译:因为氧化锌(ZnO)纳米材料用于防污和抗菌溶液中,所以了解它们对不同水生生物的毒性作用至关重要。在本研究中,我们评估了ZnO纳米颗粒的毒性10至30nm(ZnOnpi)和80至200nm(ZnOnpii),ZnO纳米棒(宽度80nm,高度1.7μm)附着在支撑基板上(玻璃,ZnOnrg )并且未附着(ZnONR),以及浓度为0.5至100mg / L的Zn2 +离子。使用Microalga Dunaliella Salina,盐水虾Artemia Salina和海洋细菌芽孢杆菌进行评估毒性。对于ZnONPS(类似于15mg / L)和Zn2 +离子(LC50类似于13mg / L)的ZnOnps(类似于13mg / L)的最高毒性,而ZnO纳米棒的最低毒性(ZnOnrg LC50类似于60mg / l; Znonrs LC50类似于42 mg / L)。在ZnO纳米棒的情况下,支撑衬底的存在将相关的毒性降低到水生生物。较小的ZnOnps导致测试纳米结构中的最高Zn2 +离子溶解。不同的水生生物对ZnO纳米材料的反应不同,D. Salina和B.患者比A. Salina更敏感。纳米结构的毒性随着剂量和暴露的时间而增加。支持的ZnO纳米棒可用作未来抗微生物和防污应用的低毒性替代品。环境毒素化学2020; 00:1-12。 (c)2020 Setac

著录项

  • 来源
    《Environmental toxicology and chemistry》 |2020年第7期|1343-1354|共12页
  • 作者单位

    Sultan Qaboos Univ Coll Agr & Marine Sci Dept Marine Sci & Fisheries Muscat Oman|Sultan Qaboos Univ Ctr Excellence Marine Biotechnol Muscat Oman;

    Sultan Qaboos Univ Coll Agr & Marine Sci Dept Marine Sci & Fisheries Muscat Oman|Sultan Qaboos Univ Ctr Nanotechnol Muscat Oman;

    Asian Inst Technol Sch Engn & Technol Nanotechnol Ind Syst Engn Klongluang Pathumthani Thailand;

    Sultan Qaboos Univ Coll Sci Dept Biol Muscat Oman;

    Sultan Qaboos Univ Coll Sci Dept Phys Muscat Oman;

    Sultan Qaboos Univ Ctr Nanotechnol Muscat Oman|Sultan Qaboos Univ Coll Engn Petr & Chem Engn Dept Muscat Oman;

  • 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
  • 中图分类
  • 关键词

    Nanotoxicology; Zinc oxide; Nanoparticles; Nanorods; Aquatic organisms;

    机译:纳米毒理学;氧化锌;纳米粒子;纳米棒;水生生物;
  • 入库时间 2022-08-18 21:49:20

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