纳米氧化物对耐四环素屎肠球菌的毒性研究及机制初探

高艺凡, 毛步云, 王艺, 程远, 袁青彬. 纳米氧化物对耐四环素屎肠球菌的毒性研究及机制初探[J]. 生态毒理学报, 2022, 17(4): 545-553. doi: 10.7524/AJE.1673-5897.20211115001
引用本文: 高艺凡, 毛步云, 王艺, 程远, 袁青彬. 纳米氧化物对耐四环素屎肠球菌的毒性研究及机制初探[J]. 生态毒理学报, 2022, 17(4): 545-553. doi: 10.7524/AJE.1673-5897.20211115001
Gao Yifan, Mao Buyun, Wang Yi, Cheng Yuan, Yuan Qingbin. A Preliminary Exploration for Toxicity and Mechanism of Nano Metal Oxides to Tetracycline Resistant Enterococcus faecium[J]. Asian Journal of Ecotoxicology, 2022, 17(4): 545-553. doi: 10.7524/AJE.1673-5897.20211115001
Citation: Gao Yifan, Mao Buyun, Wang Yi, Cheng Yuan, Yuan Qingbin. A Preliminary Exploration for Toxicity and Mechanism of Nano Metal Oxides to Tetracycline Resistant Enterococcus faecium[J]. Asian Journal of Ecotoxicology, 2022, 17(4): 545-553. doi: 10.7524/AJE.1673-5897.20211115001

纳米氧化物对耐四环素屎肠球菌的毒性研究及机制初探

    作者简介: 高艺凡(2002—),女,本科生,研究方向为环境中抗性基因的行为与控制技术,E-mail:2924733761@qq.com
    通讯作者: 袁青彬, E-mail: yuanqb@njtech.edu.cn
  • 基金项目:

    国家自然科学基金资助项目(42177348);江苏省自然科学基金资助项目(BK20201367)

  • 中图分类号: X171.5

A Preliminary Exploration for Toxicity and Mechanism of Nano Metal Oxides to Tetracycline Resistant Enterococcus faecium

    Corresponding author: Yuan Qingbin, yuanqb@njtech.edu.cn
  • Fund Project:
  • 摘要: 城镇污水处理厂是废弃纳米材料在环境中重要的收纳场所,在水处理过程中存在与另一类新污染物耐药细菌及其抗性基因充分接触并相互作用的机会。尽管纳米材料对包括细菌在内的各种生物的毒性效应被普遍报道,然而对耐药细菌的毒性及风险的影响鲜有研究。本研究考察了3种污水中广泛存在的纳米氧化物对耐四环素屎肠球菌的毒性,并探索了纳米氧化物种类、粒径、浓度和在水中的赋存时间等因素的影响。结果表明,3种纳米氧化物的毒性大小为nCuO>nZnO>nTiO2;纳米氧化物对耐四环素屎肠球菌的毒性随浓度和粒径的提高均呈现先升高后降低的趋势,如在50 mg·L-1和40 nm处nTiO2毒性达到最高;赋存时间越长,纳米氧化物对耐四环素屎肠球菌的毒性越强。从影响机理看,纳米氧化物刺激显著提升了细胞膜的通透性,破坏细胞膜,导致细胞破裂死亡。本文可为阐明污水中广泛共存的纳米材料对耐药细菌的影响提供支撑。
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  • 收稿日期:  2021-11-15

纳米氧化物对耐四环素屎肠球菌的毒性研究及机制初探

    通讯作者: 袁青彬, E-mail: yuanqb@njtech.edu.cn
    作者简介: 高艺凡(2002—),女,本科生,研究方向为环境中抗性基因的行为与控制技术,E-mail:2924733761@qq.com
  • 1. 南京工业大学环境科学与工程学院, 南京 211816;
  • 2. 南京水务集团有限公司, 南京 210000
基金项目:

国家自然科学基金资助项目(42177348);江苏省自然科学基金资助项目(BK20201367)

摘要: 城镇污水处理厂是废弃纳米材料在环境中重要的收纳场所,在水处理过程中存在与另一类新污染物耐药细菌及其抗性基因充分接触并相互作用的机会。尽管纳米材料对包括细菌在内的各种生物的毒性效应被普遍报道,然而对耐药细菌的毒性及风险的影响鲜有研究。本研究考察了3种污水中广泛存在的纳米氧化物对耐四环素屎肠球菌的毒性,并探索了纳米氧化物种类、粒径、浓度和在水中的赋存时间等因素的影响。结果表明,3种纳米氧化物的毒性大小为nCuO>nZnO>nTiO2;纳米氧化物对耐四环素屎肠球菌的毒性随浓度和粒径的提高均呈现先升高后降低的趋势,如在50 mg·L-1和40 nm处nTiO2毒性达到最高;赋存时间越长,纳米氧化物对耐四环素屎肠球菌的毒性越强。从影响机理看,纳米氧化物刺激显著提升了细胞膜的通透性,破坏细胞膜,导致细胞破裂死亡。本文可为阐明污水中广泛共存的纳米材料对耐药细菌的影响提供支撑。

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