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Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene

Avian pathogenic Escherichia coli (APEC) cause widespread economic losses in poultry production and are potential zoonotic pathogens. Genome sequences of 95 APEC from commercial poultry operations in four Australian states that carried the class 1 integrase gene intI1, a proxy for multiple drug resi...

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Autores principales: Cummins, Max L., Reid, Cameron J., Roy Chowdhury, Piklu, Bushell, Rhys N., Esbert, Nicolas, Tivendale, Kelly A., Noormohammadi, Amir H., Islam, Shaiful, Marenda, Marc S., Browning, Glenn F., Markham, Philip F., Djordjevic, Steven P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Microbiology Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6421350/
https://www.ncbi.nlm.nih.gov/pubmed/30672731
http://dx.doi.org/10.1099/mgen.0.000250
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author Cummins, Max L.
Reid, Cameron J.
Roy Chowdhury, Piklu
Bushell, Rhys N.
Esbert, Nicolas
Tivendale, Kelly A.
Noormohammadi, Amir H.
Islam, Shaiful
Marenda, Marc S.
Browning, Glenn F.
Markham, Philip F.
Djordjevic, Steven P.
author_facet Cummins, Max L.
Reid, Cameron J.
Roy Chowdhury, Piklu
Bushell, Rhys N.
Esbert, Nicolas
Tivendale, Kelly A.
Noormohammadi, Amir H.
Islam, Shaiful
Marenda, Marc S.
Browning, Glenn F.
Markham, Philip F.
Djordjevic, Steven P.
author_sort Cummins, Max L.
collection PubMed
description Avian pathogenic Escherichia coli (APEC) cause widespread economic losses in poultry production and are potential zoonotic pathogens. Genome sequences of 95 APEC from commercial poultry operations in four Australian states that carried the class 1 integrase gene intI1, a proxy for multiple drug resistance (MDR), were characterized. Sequence types ST117 (22/95), ST350 (10/95), ST429 and ST57 (each 9/95), ST95 (8/95) and ST973 (7/95) dominated, while 24 STs were represented by one or two strains. FII and FIB repA genes were the predominant (each 93/95, 98 %) plasmid incompatibility groups identified, but those of B/O/K/Z (25/95, 26 %) and I1 (24/95, 25 %) were also identified frequently. Virulence-associated genes (VAGs) carried by ColV and ColBM virulence plasmids, including those encoding protectins [iss (91/95, 96 %), ompT (91/95, 96 %) and traT (90/95, 95 %)], iron-acquisition systems [sitA (88/95, 93 %), etsA (87/95, 92 %), iroN (84/95, 89 %) and iucD/iutA (84/95, 89 %)] and the putative avian haemolysin hylF (91/95, 96 %), featured prominently. Notably, mobile resistance genes conferring resistance to fluoroquinolones, colistin, extended-spectrum β-lactams and carbapenems were not detected in the genomes of these 95 APEC but carriage of the sulphonamide resistance gene, sul1 (59/95, 63 %), the trimethoprim resistance gene cassettes dfrA5 (48/95, 50 %) and dfrA1 (25/95, 27 %), the tetracycline resistance determinant tet(A) (51/95, 55 %) and the ampicillin resistance genes bla(TEM-1A/B/C) (48/95, 52 %) was common. IS26 (77/95, 81 %), an insertion element known to capture and mobilize a wide spectrum of antimicrobial resistance genes, was also frequently identified. These studies provide a baseline snapshot of drug-resistant APEC in Australia and their role in the carriage of ColV-like virulence plasmids.
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spelling pubmed-64213502019-03-18 Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene Cummins, Max L. Reid, Cameron J. Roy Chowdhury, Piklu Bushell, Rhys N. Esbert, Nicolas Tivendale, Kelly A. Noormohammadi, Amir H. Islam, Shaiful Marenda, Marc S. Browning, Glenn F. Markham, Philip F. Djordjevic, Steven P. Microb Genom Research Article Avian pathogenic Escherichia coli (APEC) cause widespread economic losses in poultry production and are potential zoonotic pathogens. Genome sequences of 95 APEC from commercial poultry operations in four Australian states that carried the class 1 integrase gene intI1, a proxy for multiple drug resistance (MDR), were characterized. Sequence types ST117 (22/95), ST350 (10/95), ST429 and ST57 (each 9/95), ST95 (8/95) and ST973 (7/95) dominated, while 24 STs were represented by one or two strains. FII and FIB repA genes were the predominant (each 93/95, 98 %) plasmid incompatibility groups identified, but those of B/O/K/Z (25/95, 26 %) and I1 (24/95, 25 %) were also identified frequently. Virulence-associated genes (VAGs) carried by ColV and ColBM virulence plasmids, including those encoding protectins [iss (91/95, 96 %), ompT (91/95, 96 %) and traT (90/95, 95 %)], iron-acquisition systems [sitA (88/95, 93 %), etsA (87/95, 92 %), iroN (84/95, 89 %) and iucD/iutA (84/95, 89 %)] and the putative avian haemolysin hylF (91/95, 96 %), featured prominently. Notably, mobile resistance genes conferring resistance to fluoroquinolones, colistin, extended-spectrum β-lactams and carbapenems were not detected in the genomes of these 95 APEC but carriage of the sulphonamide resistance gene, sul1 (59/95, 63 %), the trimethoprim resistance gene cassettes dfrA5 (48/95, 50 %) and dfrA1 (25/95, 27 %), the tetracycline resistance determinant tet(A) (51/95, 55 %) and the ampicillin resistance genes bla(TEM-1A/B/C) (48/95, 52 %) was common. IS26 (77/95, 81 %), an insertion element known to capture and mobilize a wide spectrum of antimicrobial resistance genes, was also frequently identified. These studies provide a baseline snapshot of drug-resistant APEC in Australia and their role in the carriage of ColV-like virulence plasmids. Microbiology Society 2019-01-23 /pmc/articles/PMC6421350/ /pubmed/30672731 http://dx.doi.org/10.1099/mgen.0.000250 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Cummins, Max L.
Reid, Cameron J.
Roy Chowdhury, Piklu
Bushell, Rhys N.
Esbert, Nicolas
Tivendale, Kelly A.
Noormohammadi, Amir H.
Islam, Shaiful
Marenda, Marc S.
Browning, Glenn F.
Markham, Philip F.
Djordjevic, Steven P.
Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene
title Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene
title_full Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene
title_fullStr Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene
title_full_unstemmed Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene
title_short Whole genome sequence analysis of Australian avian pathogenic Escherichia coli that carry the class 1 integrase gene
title_sort whole genome sequence analysis of australian avian pathogenic escherichia coli that carry the class 1 integrase gene
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6421350/
https://www.ncbi.nlm.nih.gov/pubmed/30672731
http://dx.doi.org/10.1099/mgen.0.000250
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