Characterization of the lytic phage MSP1 for the inhibition of multidrug-resistant Salmonella enterica serovars Thompson and its biofilm

The increasing prevalence of multidrug-resistant (MDR) Salmonella is a serious public health threat. Intervention strategies available to control Salmonella mostly target Salmonella enterica serovars Typhimurium and Enteritidis, and little has been investigated to control serovars in serogroup C, su...

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Published inInternational journal of food microbiology Vol. 385; p. 110010
Main Authors Park, Haejoon, Kim, Jinshil, Kim, Hyeongsoon, Cho, Eunshin, Park, Hyeeun, Jeon, Byeonghwa, Ryu, Sangryeol
Format Journal Article
LanguageEnglish
Published Elsevier B.V 16.01.2023
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Summary:The increasing prevalence of multidrug-resistant (MDR) Salmonella is a serious public health threat. Intervention strategies available to control Salmonella mostly target Salmonella enterica serovars Typhimurium and Enteritidis, and little has been investigated to control serovars in serogroup C, such as S. enterica serovar Thompson, despite their increasing prevalence. Here, we isolated phages targeting MDR S. Thompson and characterized the antimicrobial activities of MSP1 phage, a virulent phage with a broad host range. MSP1 phage strongly infected S. Thompson and S. Mbandaka isolates from retail chicken and also other serovars, including Dublin, Enteritidis, Heidelberg, Paratyphi, and Typhimurium. MSP1 phage was able to inhibit the biofilm formation on stainless steel and glass formation by around 42.7–47.9 %. MSP1 phage was robust to withstand wide ranges of pH (4–12) and temperature (30–60 °C), and no genes associated with antibiotic resistance and virulence were found in the phage genome, suggesting that this phage is suitable for food application. When MSP1 phage was tested on foods (chicken meat and milk), MSP1 phage significantly reduced the level of MDR S. Thompson below the detection limit. Our findings suggest that MSP1 phage is a promising antimicrobial agent for the control of food contamination by MDR S. Thompson. [Display omitted] •A broad host range phage MSP1 can effectively control S. Thompson.•MSP1 phage was able to inhibit the biofilm formation.•MSP1 phage decreased MDR S. Thompson contamination on chicken meat and milk.•MSP1 phage showed the potential to control food contamination by MDR S. Thompson.
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ISSN:0168-1605
1879-3460
DOI:10.1016/j.ijfoodmicro.2022.110010