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Utility of Whole-Genome Sequencing of Escherichia Coli O157 for Outbreak Detection and Epidemiological Surveillance

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Specialty Microbiology
Date 2015 Sep 11
PMID 26354815
Citations 42
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Abstract

Detailed laboratory characterization of Escherichia coli O157 is essential to inform epidemiological investigations. This study assessed the utility of whole-genome sequencing (WGS) for outbreak detection and epidemiological surveillance of E. coli O157, and the data were used to identify discernible associations between genotypes and clinical outcomes. One hundred five E. coli O157 strains isolated over a 5-year period from human fecal samples in Lothian, Scotland, were sequenced with the Ion Torrent Personal Genome Machine. A total of 8,721 variable sites in the core genome were identified among the 105 isolates; 47% of the single nucleotide polymorphisms (SNPs) were attributable to six "atypical" E. coli O157 strains and included recombinant regions. Phylogenetic analyses showed that WGS correlated well with the epidemiological data. Epidemiological links existed between cases whose isolates differed by three or fewer SNPs. WGS also correlated well with multilocus variable-number tandem repeat analysis (MLVA) typing data, with only three discordant results observed, all among isolates from cases not known to be epidemiologically related. WGS produced a better-supported, higher-resolution phylogeny than MLVA, confirming that the method is more suitable for epidemiological surveillance of E. coli O157. A combination of in silico analyses (VirulenceFinder, ResFinder, and local BLAST searches) were used to determine stx subtypes, multilocus sequence types (15 loci), and the presence of virulence and acquired antimicrobial resistance genes. There was a high level of correlation between the WGS data and our routine typing methods, although some discordant results were observed, mostly related to the limitation of short sequence read assembly. The data were used to identify sublineages and clades of E. coli O157, and when they were correlated with the clinical outcome data, they showed that one clade, Ic3, was significantly associated with severe disease. Together, the results show that WGS data can provide higher resolution of the relationships between E. coli O157 isolates than that provided by MLVA. The method has the potential to streamline the laboratory workflow and provide detailed information for the clinical management of patients and public health interventions.

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References
1.
Roberts J, Upton P, Azene G . Escherichia coli O157:H7; an economic assessment of an outbreak. J Public Health Med. 2000; 22(1):99-107. DOI: 10.1093/pubmed/22.1.99. View

2.
Cowden J, Ahmed S, Donaghy M, Riley A . Epidemiological investigation of the central Scotland outbreak of Escherichia coli O157 infection, November to December 1996. Epidemiol Infect. 2001; 126(3):335-41. PMC: 2869700. DOI: 10.1017/s0950268801005520. View

3.
Locking M, OBrien S, Reilly W, Wright E, Campbell D, Coia J . Risk factors for sporadic cases of Escherichia coli O157 infection: the importance of contact with animal excreta. Epidemiol Infect. 2001; 127(2):215-20. PMC: 2869740. DOI: 10.1017/s0950268801006045. View

4.
Schroeder C, Zhao C, DebRoy C, Torcolini J, Zhao S, White D . Antimicrobial resistance of Escherichia coli O157 isolated from humans, cattle, swine, and food. Appl Environ Microbiol. 2002; 68(2):576-81. PMC: 126736. DOI: 10.1128/AEM.68.2.576-581.2002. View

5.
HOWIE H, Mukerjee A, Cowden J, Leith J, Reid T . Investigation of an outbreak of Escherichia coli O157 infection caused by environmental exposure at a scout camp. Epidemiol Infect. 2004; 131(3):1063-9. PMC: 2870053. DOI: 10.1017/s0950268803001250. View