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曹毓平, 林晴晴, 何婉韵, 王晶, 易梦颖, 吕鲁超, 杨军, 刘健华, 郭剑英. 2020: 共选择可能导致了中国某鸡场质粒介导的黏菌素耐药基因mcr-1的高流行率. 动物学研究, 41(5): 569-575. DOI: 10.24272/j.issn.2095-8137.2020.131
引用本文: 曹毓平, 林晴晴, 何婉韵, 王晶, 易梦颖, 吕鲁超, 杨军, 刘健华, 郭剑英. 2020: 共选择可能导致了中国某鸡场质粒介导的黏菌素耐药基因mcr-1的高流行率. 动物学研究, 41(5): 569-575. DOI: 10.24272/j.issn.2095-8137.2020.131
Yu-Ping Cao, Qing-Qing Lin, Wan-Yun He, Jing Wang, Meng-Ying Yi, Lu-Chao Lv, Jun Yang, Jian-Hua Liu, Jian-Ying Guo. 2020. Co-selection may explain the unexpectedly high prevalence of plasmid-mediated colistin resistance gene mcr-1 in a Chinese broiler farm. Zoological Research, 41(5): 569-575. DOI: 10.24272/j.issn.2095-8137.2020.131
Citation: Yu-Ping Cao, Qing-Qing Lin, Wan-Yun He, Jing Wang, Meng-Ying Yi, Lu-Chao Lv, Jun Yang, Jian-Hua Liu, Jian-Ying Guo. 2020. Co-selection may explain the unexpectedly high prevalence of plasmid-mediated colistin resistance gene mcr-1 in a Chinese broiler farm. Zoological Research, 41(5): 569-575. DOI: 10.24272/j.issn.2095-8137.2020.131

共选择可能导致了中国某鸡场质粒介导的黏菌素耐药基因mcr-1的高流行率

Co-selection may explain the unexpectedly high prevalence of plasmid-mediated colistin resistance gene mcr-1 in a Chinese broiler farm

  • 摘要: 质粒介导的黏菌素耐药基因mcr-1在全球日渐肆虐,引起了全世界的广泛关注。在对中国某养鸡场进行常规监测时,发现在该鸡场分离到的大肠杆菌普遍对黏菌素耐药(69.9%),其中有53株菌(63.9%)携带mcr-1基因。所有携带mcr-1的大肠杆菌均呈现多重耐药表型,并携带其它在人医临床上备受关注的耐药基因。此外,这些mcr-1基因主要位于IncI2型和IncHI2型质粒上。通过接合转移试验,我们发现mcr-1能与其它耐药基因共转移,如通过IncI2型质粒(n=3)和 IncHI2 型质粒(n=4)与blaCTX-M-55blaCTX-M-14floRfosA3耐药基因共同转移。此外,稳定的mcr-1基因环境(mcr-1-pap2)普遍存在于IncI2型质粒上,而另一种mcr-1的基因环境(ISApl1-mcr-1-pap2-ISApl1)则主要存在于IncHI2型质粒上。我们推测携带mcr-1的IncI2和IncHI2型质粒在该养殖场的流行,以及mcr-1与质粒上其它耐药基因的共选择,可能导致了mcr-1在该养殖场的盛行。我们呼吁在动物生产过程中,应该合理使用抗菌药物。

     

    Abstract: The rise of the plasmid-encoded colistin resistance gene mcr-1 is a major concern globally. Here, during a routine surveillance, an unexpectedly high prevalence of Escherichia coli with reduced susceptibility to colistin (69.9%) was observed in a Chinese broiler farm. Fifty-three (63.9%) E. coli isolates were positive for mcr-1. All identified mcr-1-positive E. coli (MCREC) were multidrug resistant and carried other clinically significant resistance genes. Furthermore, the mcr-1 genes were mainly located on the IncI2 and IncHI2 plasmids. Conjugation experiments unraveled the co-transfer of mcr-1 with other antibiotic resistance genes (blaCTX-M-55, blaCTX-M-14, floR, and fosA3) via the IncI2 (n=3) and IncHI2 (n=4) plasmids. The stable genetic context mcr-1-pap2 was common in the IncI2 plasmids, whereas ISApl1-mcr-1-pap2-ISApl1 was mainly found in the IncHI2 plasmids. The dominance of mcr-1-bearing IncI2 and IncHI2 plasmids and co-selection of mcr-1 with other antimicrobial resistance genes might contribute to the exceptionally high prevalence of mcr-1 in this broiler farm. Our results emphasized the importance of appropriate antibiotic use in animal production.

     

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