Suppr超能文献

沿整条河流的淡水生物膜中的抗生素耐药基因。

Antibiotic resistance genes in freshwater biofilms along a whole river.

机构信息

Department of Zoology, University of Otago, Dunedin, New Zealand.

出版信息

J Water Health. 2013 Jun;11(2):186-98. doi: 10.2166/wh.2013.223.

Abstract

A key problem challenging public health officials' efforts to stem the spread of antibiotic resistance is the potential increase of resistance in the environment. Yet, despite recent and significant changes to agricultural land in New Zealand, as well as the sector's high antibiotic use, the influence on antibiotic resistance in the environment remained uncharacterised. Spatial and temporal dynamics of antibiotic resistance genes in freshwater biofilms from NZ's fourth longest river as it transitioned between low and high intensity farming were examined for 1 year. Polymerase chain reaction was employed to gauge the level of resistance present. Biofilms were screened for 10 genes conferring resistance to antibiotics used in humans only and both humans and agricultural animals. Three genes were detected, one which conferred resistance to the important human-only use antibiotic vancomycin. Detected at the two downstream sites only, and those subject to the highest combined land-use stressors, the three genes indicated an elevated presence of antibiotic resistance in relation to surrounding land use; 7.7% versus 2% across the whole river system. The detection of a gene conferring resistance to an important human-only use antibiotic was particularly concerning and highlighted human-based contamination sources along the river, in addition to those of agricultural origin.

摘要

一个挑战公共卫生官员努力遏制抗生素耐药性传播的关键问题是环境中耐药性的潜在增加。然而,尽管新西兰农业用地最近发生了重大变化,以及该行业抗生素的大量使用,但对环境中抗生素耐药性的影响仍未得到描述。在新西兰第四长的河流中,从低强度农业到高强度农业的过渡期间,对淡水生物膜中抗生素耐药基因的时空动态进行了为期 1 年的研究。聚合酶链反应用于衡量存在的耐药水平。对仅用于人类和人类和农业动物的抗生素的 10 种耐药基因进行了筛选。检测到三个基因,一个基因对重要的人类专用抗生素万古霉素具有耐药性。仅在两个下游地点检测到,并且受到最高综合土地利用胁迫的影响,这三个基因表明与周围土地利用有关的抗生素耐药性增加;整个河流系统的 7.7%对 2%。检测到一个赋予对一种重要的人类专用抗生素的耐药性的基因尤其令人担忧,并突出了沿河流存在人类来源的污染源,除了农业来源的污染源。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验