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Silver Ion Release Accelerated in the Gastrovascular Cavity of Hydra vulgaris Increases the Toxicity of Silver Sulfide Nanoparticles

机译:Hydra Vularis的胃血管腔内加速的银离子释放增加了硫化银纳米粒子的毒性

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摘要

Silver nanoparticles (Ag-NPs) streamed into aquatic environments are chemically transformed into various forms, and one of the predominant forms is silver sulfide NPs (Ag2S-NPs). Because of the lower dissolution rate of silver ions (Ag+), the toxicity of Ag2S-NPs could be lower than that of Ag-NPs. However, the toxicity of Ag2S-NPs has been observed to be restored under oxidative or acidic conditions. In the present study, 4 aquatic organisms, Pseudokirchneriella subcapitata (algae), Daphnia magna (crustacean), Danio rerio (fish), and Hydra vulgaris (cnidarian), were exposed to Ag2S-NPs transformed from Ag-NPs using Na2S under anoxic conditions; and acute toxicity was evaluated. The acute toxicity of Ag2S-NPs was rarely observed in algae, crustaceans, and fish, whereas it was significantly restored in cnidarians. Although the dissolution rate was low in the medium exposed to Ag2S-NPs, high Ag+ was detected in H. vulgaris. To understand the mechanisms of Ag2S-NP toxicity in cnidarians, transcriptional profiles of H. vulgaris exposed to Ag-NPs, Ag2S-NPs, and AgNO3 were analyzed. As a result, most of the genes that were significantly changed in the Ag2S-NPs group were also found to be significantly changed in the AgNO3 group, indicating that the toxicity of Ag2S-NPs was caused by Ag+ dissolved by the acidic condition in the gastrovascular cavity of H. vulgaris. This finding is the first in an aquatic organism and suggests the need to reconsider the stability and safety of Ag2S-NPs in the aquatic environment. Environ Toxicol Chem 2021;00:1-11. (c) 2021 SETAC
机译:将银纳米颗粒(Ag-NPS)流入水生环境中化学转化为各种形式,并且主要形式之一是硫化银NPS(Ag2S-NPS)。由于银离子的溶解率较低(Ag +),Ag2S-NPS的毒性可能低于Ag-NPS的毒性。然而,已观察到Ag2S-NPS的毒性在氧化或酸性条件下恢复。在本研究中,4个水生生物,假核菌菌,藻类,Danio·米纳(甲壳类动物),Danio Rerio(Fish)和Hydra Venraris(Cnidarian),在缺氧条件下使用NA2S从Ag-NPS转化为Ag2S-NPS ;评估急性毒性。在藻类,甲壳类动物和鱼类中很少观察到Ag2S-NPS的急性毒性,而在CNIDAS中则显着恢复。虽然在暴露于Ag2S-NPS的介质中溶出速率低,但是在v语言中检测到高效+。为了了解Cnidarians中Ag2S-NP毒性的机制,分析了暴露于Ag-NPS,Ag2S-NPS和AgNO3的v..V的转录谱。结果,在Ag2S-NPS组中显着改变的大部分基因也被发现在AgNO3组中显着变化,表明Ag2S-NPS的毒性是由胃血管中的酸性条件溶解的Ag +溶解的毒性v v v v语。这一发现是水生生物中的第一个,并建议需要重新考虑AG2S-NPS在水生环境中的稳定性和安全性。环境毒素化学2021; 00:1-11。 (c)2021 Setac

著录项

  • 来源
    《Environmental toxicology and chemistry》 |2021年第6期|1662-1672|共11页
  • 作者

    Kang Jae Soon; Park June-Woo;

  • 作者单位

    Gyeongsang Natl Univ Bio Antiaging Med Res Ctr Inst Hlth Sci Dept Anat & Convergence Med Sci Med Sch Jinju Gyeongsangnam D South Korea;

    Korea Inst Toxicol Environm Risk Assessment Res Div Jinju Gyeongsangnam D South Korea|Korea Univ Sci & Technol Human & Environm Toxicol Program Daejeon South Korea;

  • 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

    Silver sulfide nanoparticles; Sulfidation; Silver ion; Hydra vulgaris; Transcriptional profiling;

    机译:硫化银纳米粒子;硫化;银离子;vertra寻常;转录分析;

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