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Co-selection of antibiotic resistance via copper shock loading on bacteria from a drinking water bio-filter

机译:通过饮用水生物滤池中细菌对铜的冲击负荷共同选择抗生素抗性

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摘要

AbstractHeavy metal contamination of source water frequently occurred in developing countries as a result of accidents. To address the problems, most of the previous studies have focused on engineering countermeasures. In this study, we investigated the effects of heavy metals, particularly copper, on the development of antibiotic resistance by establishing a copper shock loading test. Results revealed that co-selection occurred rapidly within 6 h. Copper, at the levels of 10 and 100 mg/L, significantly increased bacterial resistance to the antibiotics tested, including rifampin, erythromycin, kanamycin, and a few others. A total of 117 antimicrobial-resistance genes were detected from 12 types of genes, and the relative abundance of most genes (particularly mobile genetic elementsintⅠand transposons) was markedly enriched by at least one fold. Furthermore, the copper shock loading altered the bacterial community. Numerous heavy metal and antibiotic resistant strains were screened out and enriched. These strains are expected to enhance the overall level of resistance. More noticeably, the majority of the co-selected antibiotic resistance could sustain for at least 20 h in the absence of copper and antimicrobial drugs. Resistance to vancomycin, erythromycin and lincomycin even could remain for 7 days. The prominent selection pressure by the copper shock loading implies that a real accident most likely poses similar impacts on the water environment. An accidental release of heavy metals would not only cause harm to the ecological environment, but also contribute to the development of bacterial antibiotic resistance. Broader concerns should be raised about the biological risks caused by sudden releases of pollutants by accidents.Graphical abstractDisplay OmittedHighlightsThe bacterial antibiotic resistance was co-selected by copper shock loading.This co-selection could occur in hours.The abundance of mobile genetic elements was increased even significantly.The co-selected resistance could maintain for at least 20 h without Cu.Cross/co-resistance were the main mechanisms involved in this co-selection.This study revealed the significant contribution of the accidental heavy metal pollution in source water to the development of bacterial antibiotic resistance.
机译: 摘要 由于事故,发展中国家的水源经常受到重金属污染。为了解决这些问题,以前的大多数研究都集中在工程对策上。在这项研究中,我们通过建立铜冲击负荷试验研究了重金属,特别是铜对抗生素耐药性发展的影响。结果显示,共选择在6小时内迅速发生。铜的浓度为10和100 mg / L,可显着提高细菌对所测试抗生素的耐药性,包括利福平,红霉素,卡那霉素和其他一些抗生素。从12种基因中共检测到117个抗药性基因,大多数基因(尤其是流动遗传元素 int Ⅰ和转座子)的相对丰度至少显着富集了一个折。此外,铜冲击负荷改变了细菌群落。筛选并富集了许多重金属和抗生素抗性菌株。预计这些菌株将增强总体抗性水平。更值得注意的是,在没有铜和抗菌药物的情况下,大多数共同选择的抗生素抗性可以维持至少20小时。对万古霉素,红霉素和林可霉素的耐药性甚至可以维持7天。铜冲击载荷的显着选择压力意味着真正的事故极有可能对水环境造成类似的影响。重金属的意外释放不仅会损害生态环境,而且还会促进细菌对抗生素的耐药性。对于因事故突然释放污染物而引起的生物风险,应该引起广泛的关注。 图形摘要 省略显示 突出显示 细菌对抗生素的耐药性与通过铜击选择 此选择可能会在数小时内发生。 流动遗传元素的丰度甚至显着增加。 在没有Cu的情况下,共同选择的电阻可以维持至少20小时。 交叉/ co-resistance是参与此共选的主要机制。 锡这项研究揭示了源水中意外重金属污染对细菌耐药性发展的重大贡献。

著录项

  • 来源
    《Environmental Pollution》 |2018年第2期|132-141|共10页
  • 作者单位

    Key Lab of Urban Environment and Health, Institute of Urban Environment, Chinese Academy of Sciences,University of Chinese Academy of Science;

    Key Lab of Urban Environment and Health, Institute of Urban Environment, Chinese Academy of Sciences,University of Chinese Academy of Science;

    Key Lab of Urban Environment and Health, Institute of Urban Environment, Chinese Academy of Sciences;

    Key Lab of Urban Environment and Health, Institute of Urban Environment, Chinese Academy of Sciences;

  • 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

    Copper shock loading; Co-selection; Antibiotic resistance genes; Antibiotic resistance maintenance;

    机译:铜冲击负荷;共选;抗生素抗性基因;抗生素抗性维持;

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