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Transcriptomics reveals the action mechanisms and cellular targets of citrate-coated silver nanoparticles in a ubiquitous aquatic fungus

机译:转录组织揭示了普遍存在的水生真菌中柠檬酸涂层银纳米粒子的作用机制和细胞靶标

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摘要

Silver nanoparticles (AgNPs) are among the major groups of contaminants of emerging concern for aquatic ecosystems. The massive application of AgNPs relies on the antimicrobial properties of Ag, raising concerns about their potential risk to ecologically important freshwater microbes and the processes they drive. Moreover, it is still uncertain whether the effects of AgNPs are driven by the same mechanisms underlying those of Ag ions (Ag+). We employed transcriptomics to better understand AgNP toxicity and disentangle the role of Ag+ in the overall toxicity towards aquatic fungi. To that end, the worldwide-distributed aquatic fungus Articulospora tetracladia, that plays a central role in organic matter turnover in freshwaters, was selected and exposed for 3 days to citrate-coated AgNPs (similar to 20 nm) and Ag+ at concentrations inhibiting 20% of growth (EC20). Responses revealed 258 up- and 162 down-regulated genes upon exposure to AgNPs and 448 up- and 84 down-regulated genes under exposure to Ag+. Different gene expression patterns were found after exposure to each silver form, suggesting distinct mechanisms of action. Gene ontology (GO) analyses showed that the major cellular targets likely affected by both silver forms were the biological membranes. GO-based biological processes indicated that AgNPs upregulated the genes involved in transport, nucleobase metabolism and energy production, but downregulated those associated with redox and carbohydrate metabolism. Ag+ up-regulated the genes involved in carbohydrate and steroid metabolism, whereas genes involved in localization and transport were down-regulated. Our results showed, for the first time, distinct profiles of gene expression in aquatic fungi exposed to AgNPs and Ag+, supporting different modes of toxicity of each silver form. Also, our results suggest that Ag+ had a negligible role in the toxicity induced by AgNPs. Finally, our study highlights the power of transcriptomics in portraying the stress induced by different silver forms in organisms. (C) 2020 Elsevier Ltd. All rights reserved.
机译:银纳米颗粒(AgNP)是水生生态系统的新出现关切的主要污染物之一。 AgNP的大规模应用依赖于AG的抗微生物性质,提高对生态重要淡水微管的潜在风险的担忧以及它们驱动的过程。此外,它仍然不确定AgNP的效果是否通过Ag离子的相同机制驱动(Ag +)。我们使用转录组织更好地了解AgNP毒性并解开Ag +在水生真菌的整体毒性中的作用。为此,全球分布的水生真菌艺术孢子孢子孢子孢子孢子孢菌在新鲜水域中发挥着核心作用,并在浓度抑制20%的浓度下暴露3天至柠檬酸涂层的酰胺(类似于20nm)和Ag +。生长(EC20)。在暴露于Ag +的情况下,反应在暴露于AgNP和448个下调基因时揭示了258升和162个下调基因。在暴露于每种银形式后发现不同的基因表达模式,表明不同的作用机制。基因本体(GO)分析表明,可能受银形式的主要细胞靶点是生物膜。基于去的生物过程表明AgNP上调了涉及运输,核碱基代谢和能量产生的基因,但下调与氧化还原和碳水化合物代谢相关的基因。 AG +上调涉及碳水化合物和类固醇代谢的基因,而参与本地化和运输的基因被下调。我们的结果表明,在暴露于AgNP和Ag +的水生真菌中的基因表达中的一个明显曲线,支持各银形式的不同毒性模式。此外,我们的结果表明AG +在agnps诱导的毒性方面具有可忽略不计的作用。最后,我们的研究强调了转录组织在描绘不同银形式在生物中的应力进行描绘。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Environmental Pollution》 |2021年第2期|115913.1-115913.9|共9页
  • 作者单位

    Univ Minho Ctr Mol & Environm Biol CBMA Dept Biol Campus Gualtar P-4710057 Braga Portugal|Univ Minho Inst Sci & Innovat Biosustainabil IB S Campus Gualtar P-4710057 Braga Portugal;

    Univ Minho Ctr Mol & Environm Biol CBMA Dept Biol Campus Gualtar P-4710057 Braga Portugal|Univ Minho Inst Sci & Innovat Biosustainabil IB S Campus Gualtar P-4710057 Braga Portugal;

    Univ Minho Ctr Mol & Environm Biol CBMA Dept Biol Campus Gualtar P-4710057 Braga Portugal|Univ Minho Inst Sci & Innovat Biosustainabil IB S Campus Gualtar P-4710057 Braga Portugal;

    Univ Minho Ctr Mol & Environm Biol CBMA Dept Biol Campus Gualtar P-4710057 Braga Portugal|Univ Minho Inst Sci & Innovat Biosustainabil IB S Campus Gualtar P-4710057 Braga Portugal;

  • 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 nanoparticles and ions; High-throughput RNA sequencing; Aquatic fungi; Cellular targets; Effective concentrations;

    机译:银纳米粒子和离子;高通量RNA测序;水生真菌;细胞靶标;有效浓度;

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