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Aquatic animals promote antibiotic resistance gene dissemination in water via conjugation: Role of different regions within the zebra fish intestinal tract,and impact on fish intestinal microbiota 下载免费PDF全文
Jialun Fu Dong Yang Min Jin Weili Liu Xin Zhao Chenyu Li Tianyu Zhao Jingfeng Wang Zhixian Gao Zhiqiang Shen Zhigang Qiu Jun‐Wen Li 《Molecular ecology》2017,26(19):5318-5333
The aqueous environment is one of many reservoirs of antibiotic resistance genes (ARGs). Fish, as important aquatic animals which possess ideal intestinal niches for bacteria to grow and multiply, may ingest antibiotic resistance bacteria from aqueous environment. The fish gut would be a suitable environment for conjugal gene transfer including those encoding antibiotic resistance. However, little is known in relation to the impact of ingested ARGs or antibiotic resistance bacteria (ARB) on gut microbiota. Here, we applied the cultivation method, qPCR, nuclear molecular genetic marker and 16S rDNA amplicon sequencing technologies to develop a plasmid‐mediated ARG transfer model of zebrafish. Furthermore, we aimed to investigate the dissemination of ARGs in microbial communities of zebrafish guts after donors carrying self‐transferring plasmids that encode ARGs were introduced in aquaria. On average, 15% of faecal bacteria obtained ARGs through RP4‐mediated conjugal transfer. The hindgut was the most important intestinal region supporting ARG dissemination, with concentrations of donor and transconjugant cells almost 25 times higher than those of other intestinal segments. Furthermore, in the hindgut where conjugal transfer occurred most actively, there was remarkable upregulation of the mRNA expression of the RP4 plasmid regulatory genes, trbBp and trfAp. Exogenous bacteria seem to alter bacterial communities by increasing Escherichia and Bacteroides species, while decreasing Aeromonas compared with control groups. We identified the composition of transconjugants and abundance of both cultivable and uncultivable bacteria (the latter accounted for 90.4%–97.2% of total transconjugants). Our study suggests that aquatic animal guts contribute to the spread of ARGs in water environments. 相似文献
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【目的】分析有机、化肥和野生折耳根表面的附生细菌群落结构和抗生素抗性基因(ARGs),揭示细菌群落结构与ARGs相互关系。【方法】高通量测定16SrRNAV3-V4可变区序列分析样品表面附生细菌群落结构;PCR和qPCR扩增29种ARGs基因分析样品表面ARGs污染情况;冗余分析(RDA)探讨细菌群落结构与ARGs的相互关系。【结果】折耳根表面检测到35个属的细菌,其中有机折耳根表面附生细菌多样性低于化肥和野生折耳根(P0.05);29种被检的ARGs中,有14种在折耳根中被检出,其中有机折耳根含有全部被检出的ARGs,化肥和野生折耳根则含有部分被检出的ARGs。折耳根表面ARGs污染的多样性和丰度显著受到样品表面的菌群结构影响,其中Lactococcus、 Escherichia、Fluviicola、Enterococcus、Sanguibacter和Acidovorax是影响ARGs最主要的菌群。【结论】有机种植极大地改变了折耳根表面附生细菌的群落结构,增加了ARGs的多样性和丰度,对有机折耳根的食品安全带来了潜在威胁。因此,有必要将ARGs污染监测纳入到有机折耳根的食品安全考核范围内。 相似文献