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Genetic characteristics: In 2012, the Animal Health Diagnostic Center at Cornell University published an animal health advisory that indicated an increase in the isolation of multidrug resistant strains of serovar Dublin in New York. Among ceftriaxone-resistant Salmonella isolates reported by the National Antimicrobial Resistance Monitoring System (NARMS), serovar Dublin serovar Dublin represents the 40.8% and 2.9% of isolates from cattle and humans, respectively. Salmonella Dublin was identified as a monophyletic serovar with its largest lineage (Dublin 2-3) containing clonal sub-clades enriched for human isolates. Wallis et al. suggested that the Salmonella virulence plasmid does not play a role in the enteric phase of infection or the systemic spread of S. dublin; however, it likely facilitates the bacterium's persistence at systemic sites. Meanwhile, Libby et al. found that calves infected with the wild type or the complemented spvR mutant rapidly developed severe diarrhea and became moribund, whereas those infected with the spvR mutant exhibited little to no clinical signs of systemic salmonellosis and only mild diarrhea, indicating the spv genes of S. dublin facilitate increased intracellular proliferation within intestinal tissues and at extraintestinal sites in cattle. Mohammed et al. claimed that several virulence factors such as Gifsy-2 prophage, SPI-6, SPI-19, ggt and PagN in the genome of S. Dublin may contribute to its ability to invade the human bloodstream; however, no specific genomic markers distinguish invasive from non-invasive isolates, indicating that the host immune response likely plays a critical role in determining the clinical outcome of S. Dublin infection.

Animal reservoir: Cattle is the reservoir of this serovar, but it can cause disease in other animals, such as dogs, as well.   

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