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Emergence of plasmid-mediated RND-type efflux pump gene cluster tmexCD-toprJ in Shewanella xiamenensis in a water environment

Dao, T. D.; Takemura, T.; Kasuga, I.; Hirabayashi, A.; Nga, N. T.; Anh, P. H. Q.; Tu, N. D.; Trang, L. T.; Tran, H. H.; Shibayama, K.; Hasebe, F.; Suzuki, M.

2022-09-15 microbiology
10.1101/2022.09.15.508154 bioRxiv
Show abstract

The emergence of the mobile resistance-nodulation-division (RND)-type efflux pump tmexCD-toprJ gene cluster that confers multidrug resistance (MDR), including tigecycline resistance, in gram-negative bacteria poses a global public health threat. However, the spread of such clinically important antimicrobial resistance genes (ARGs) in the natural environment has not yet been well investigated. In this study, we investigated MDR aquatic bacteria in Vietnam. A carbapenem- and tigecycline-resistant Shewanella xiamenensis isolate NUITM-VS2 was obtained from urban drainage in Hanoi, Vietnam, in October 2021. S. xiamenensis NUITM-VS2 showed resistance to most antimicrobials tested, including tigecycline, tetracyclines, carbapenems, cephalosporins, fluoroquinolone, and aminoglycosides. Whole-genome analysis was performed by long- and short-read sequencing, resulting in the complete genome sequence consisting of one chromosome and five plasmid sequences. ARGs and plasmid replicons in the genome were detected using ResFinder with the custom ARG database, including all known tigecycline resistance genes, and PlasmidFinder, respectively. A 152.2-kb IncC plasmid, pNUITM-VS2_2, co-carried two mobile tigecycline resistance genes, tet(X4) and tmexC3.2D3.2-toprJ1. In addition, a 24.8-kb untypeable plasmid, pNUITM-VS2_4, carried the carbapenemase gene blaNDM-1. pNUITM-VS2_2 was transferred to Escherichia coli by conjugation, which simultaneously conferred high-level resistance against many antimicrobials, including tigecycline. To the best of our knowledge, this is the first report of the detection of the mobile RND-type efflux pump gene cluster tmexCD-toprJ in Shewanella species. Our results provide genetic evidence of the complexity of the dynamics of clinically important ARGs among aquatic bacteria, which could be important reservoirs for ARGs in the natural environment.

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