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Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin

Abstract The emergence of plasmid-mediated tigecycline-resistant strains is posing a serious threat to food safety and human health, which has attracted worldwide attention. The tigecycline resistance gene tet(X4) has been found in diverse sources, but the distribution of tet(X4) and its genetic bac...

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Autores principales: Li, Yan, Wang, Qian, Peng, Kai, Liu, Yuan, Xiao, Xia, Mohsin, Mashkoor, Li, Ruichao, Wang, Zhiqiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Microbiology Society 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8627205/
https://www.ncbi.nlm.nih.gov/pubmed/34693904
http://dx.doi.org/10.1099/mgen.0.000667
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author Li, Yan
Wang, Qian
Peng, Kai
Liu, Yuan
Xiao, Xia
Mohsin, Mashkoor
Li, Ruichao
Wang, Zhiqiang
author_facet Li, Yan
Wang, Qian
Peng, Kai
Liu, Yuan
Xiao, Xia
Mohsin, Mashkoor
Li, Ruichao
Wang, Zhiqiang
author_sort Li, Yan
collection PubMed
description Abstract The emergence of plasmid-mediated tigecycline-resistant strains is posing a serious threat to food safety and human health, which has attracted worldwide attention. The tigecycline resistance gene tet(X4) has been found in diverse sources, but the distribution of tet(X4) and its genetic background in the animal farming environment is not fully understood. Thirty-two tet(X)-positive Escherichia coli strains isolated from 159 samples collected from swine farms showed resistance to tigecycline. The tet(X)-positive strains were characterized by antimicrobial susceptibility testing, conjugation assay, PCR, Illumina and long-read Nanopore sequencing, and bioinformatics analysis. A total of 11 different sequence types (STs) were identified and most of them belonged to phylogroup A, except ST641. In total, 196 possible prophage sequences were identified and some of the prophage regions were found to carry resistance genes, including tet(X4). Furthermore, our results showed possible correlations between CRISPR spacer sequences and serotypes or STs. The co-existence of tigecycline-resistant tet(A) variants and tet(X4) complicates the evolution of vital resistance genes in farming environments. Further, four reorganization plasmids carrying tet(X4) were observed, and the formation mechanism mainly involved homologous recombination. These findings contribute significantly to a better understanding of the diversity and complexity of tet(X4)-bearing plasmids, an emerging novel public health concern.
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spelling pubmed-86272052021-11-29 Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin Li, Yan Wang, Qian Peng, Kai Liu, Yuan Xiao, Xia Mohsin, Mashkoor Li, Ruichao Wang, Zhiqiang Microb Genom Short Communications Abstract The emergence of plasmid-mediated tigecycline-resistant strains is posing a serious threat to food safety and human health, which has attracted worldwide attention. The tigecycline resistance gene tet(X4) has been found in diverse sources, but the distribution of tet(X4) and its genetic background in the animal farming environment is not fully understood. Thirty-two tet(X)-positive Escherichia coli strains isolated from 159 samples collected from swine farms showed resistance to tigecycline. The tet(X)-positive strains were characterized by antimicrobial susceptibility testing, conjugation assay, PCR, Illumina and long-read Nanopore sequencing, and bioinformatics analysis. A total of 11 different sequence types (STs) were identified and most of them belonged to phylogroup A, except ST641. In total, 196 possible prophage sequences were identified and some of the prophage regions were found to carry resistance genes, including tet(X4). Furthermore, our results showed possible correlations between CRISPR spacer sequences and serotypes or STs. The co-existence of tigecycline-resistant tet(A) variants and tet(X4) complicates the evolution of vital resistance genes in farming environments. Further, four reorganization plasmids carrying tet(X4) were observed, and the formation mechanism mainly involved homologous recombination. These findings contribute significantly to a better understanding of the diversity and complexity of tet(X4)-bearing plasmids, an emerging novel public health concern. Microbiology Society 2021-10-25 /pmc/articles/PMC8627205/ /pubmed/34693904 http://dx.doi.org/10.1099/mgen.0.000667 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License.
spellingShingle Short Communications
Li, Yan
Wang, Qian
Peng, Kai
Liu, Yuan
Xiao, Xia
Mohsin, Mashkoor
Li, Ruichao
Wang, Zhiqiang
Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin
title Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin
title_full Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin
title_fullStr Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin
title_full_unstemmed Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin
title_short Distribution and genomic characterization of tigecycline-resistant tet(X4)-positive Escherichia coli of swine farm origin
title_sort distribution and genomic characterization of tigecycline-resistant tet(x4)-positive escherichia coli of swine farm origin
topic Short Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8627205/
https://www.ncbi.nlm.nih.gov/pubmed/34693904
http://dx.doi.org/10.1099/mgen.0.000667
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