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Biofouling
The Journal of Bioadhesion and Biofilm Research
Volume 37, 2021 - Issue 3
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Research Article

Isolation, characterization, and application of Salmonella paratyphi phage KM16 against Salmonella paratyphi biofilm

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Pages 276-288 | Received 15 Jul 2020, Accepted 01 Mar 2021, Published online: 05 May 2021

References

  • Abubakar S, Suleiman BH, Abbagana BA, Mustafa IA, Musa IA. 2016. Novel uses of bacteriophages in the treatment of human infections and antibiotic resistance. AJBIO. 4:34–40. doi:10.11648/j.ajbio.20160403.13
  • Ahn J, Kim S, Jung LS, Biswas D. 2013. In vitro assessment of the susceptibility of planktonic and attached cells of foodborne pathogens to bacteriophage P22-mediated Salmonella lysates. J Food Prot. 76:2057–2062. doi:10.4315/0362-028X.JFP-13-183
  • Ai-Shabib NA, Husain FM, Ahmad I, Khan MS, Khan RA, Khan JM. 2017. Rutin inhibits mono and multi-species biofilm formation by foodborne drug resistant Escherichia coli and Staphylococcus aureus. Food Control. 79:325–332. doi:10.1016/j.foodcont.2017.03.004
  • Benešík M, Nováček J, Janda L, Dopitová R, Pernisová M, Melková K, Tišáková L, Doškař J, Žídek L, Hejátko J, et al. 2018. Role of SH3b binding domain in a natural deletion mutant of Kayvirus endolysin LysF1 with a broad range of lytic activity. Virus Genes. 54:130–139. doi:10.1007/s11262-017-1507-2
  • Branda SS, Vik A, Friedman L, Kolter R. 2005. Biofilms: the matrix revisited. Trends Microbiol. 13:20–26. doi:10.1016/j.tim.2004.11.006
  • Brezden A, Mohamed MF, Nepal M, Harwood JS, Kuriakose J, Seleem MN, Chmielewski J. 2016. Dual targeting of intracellular pathogenic bacteria with a cleavable conjugate of kanamycin and an antibacterial cell-penetrating peptide. J Am Chem Soc. 138:10945–10949. doi:10.1021/jacs.6b04831
  • Cappitelli F, Polo A, Villa F. 2014. Biofilm formation in food processing environments is still poorly understood and controlled. Food Eng Rev. 6:29–42. doi:10.1007/s12393-014-9077-8
  • Carneiro de Melo AM, Cassar CA, Miles RJ. 1998. Trisodium phosphate increases sensitivity of gram-negative bacteria to lysozyme and nisin. J Food Prot. 61:839–844. doi:10.4315/0362-028X-61.7.839
  • Centers for Disease Control and Prevention (CDC). 2018. Salmonella - information for healthcare professionals and laboratories. [accessed 2018 Mar 9]. http://www.cdc.gov/Salmonella/general/technical.html.
  • Chandra K, Garai P, Chatterjee J, Chakravortty D. 2017. Peptide transporter YjiY influences the expression of the virulence gene mgtC to regulate biofilm formation in Salmonella. FEMS Microbiol Lett. 364(24). doi:10.1093/femsle/fnx236
  • Chang Y, Shin H, Lee JH, Park CJ, Paik SY, Ryu S. 2015. Isolation and genome characterization of the virulent Staphylococcus aureus bacteriophage SA97. Viruses. 7:5225–5242. doi:10.3390/v7102870
  • Chopin MC, Chopin A, Roux C. 1976. Definition of bacteriophage groups according to their lytic action on mesophilic lactic streptococci. Appl Environ Microbiol. 32:741–746. doi:10.1128/AEM.32.6.741-746.1976
  • Davies, D. 2003. Understanding biofilm resistance to antibacterial agents. Nat Rev Drug Discov. 2(2):114–122. doi:10.1038/nrd1008
  • Deng X, Ran L, Wu S, Ke B, He D, Yang X, Zhang Y, Ke C, Klena JD, Yan M, et al. 2012. Laboratory-based surveillance of non-typhoidal Salmonella infections in Guangdong Province, China. Foodborne Pathog Dis. 9:305–312. doi:10.1089/fpd.2011.1008
  • Donlan RM, Costerton JW. 2002. Biofilms: survival mechanisms of clinically relevant microorganisms. Clin Microbiol Rev. 15(2):167–193. doi:10.1128/cmr.15.2.167-193.2002
  • Dunne M, Denyes JM, Arndt H, Loessner MJ, Leiman PG, Klumpp J. 2018. Salmonella phage S16 tail fiber adhesin features a rare polyglycine rich domain for host recognition. Structure. 26:1573–1582. doi:10.1016/j.str.2018.07.017
  • Endersen L, O'Mahony J, Hill C, Ross RP, McAuliffe O, Coffey A. 2014. Phage therapy in the food industry. Annu Rev Food Sci Technol. 5:327–349. doi:10.1146/annurev-food-030713-092415
  • Flemming HC, Wingender J. 2010. The biofilm matrix. Nat Rev Microbiol. 8(9):623–633. doi:10.1038/nrmicro2415
  • Garcia KCOD, Corrêa IMO, Pereira LQ, Silva TM, Mioni MSR, Izidoro ACM, Bastos IHV, Goncalves GAM, Okamoto AS, Andreatti Filho RL. 2017. Bacteriophage use to control Salmonella biofilm on surfaces present in chicken slaughterhouses. Poult Sci. 96:3392–3398. doi:10.3382/ps/pex124
  • Gong C, Jiang X. 2017. Application of bacteriophages to reduce Salmonella attachment and biofilms on hard surfaces. Poult Sci. 96(6):1838–1848. doi:10.3382/ps/pew463
  • Grant A, Hashem F, Parveen S. 2016. Salmonella and Campylobacter: antimicrobial resistance and bacteriophage control in poultry. Food Microbiol. 53:104–109. doi:10.1016/j.fm.2015.09.008
  • Gutierrez D, Rodrguez-Rubio L, Martnez B, Rodrguez A, Garca P. 2016. Bacteriophages as weapons against bacterial biofilms in the food industry. Front Microbiol. 7:825. doi:10.3389/fmicb.2016.00825
  • Hall-Stoodley L, Costerton JW, Stoodley P. 2004. Bacterial biofilms: from the natural environment to infectious diseases. Nat Rev Microbiol. 2:95–108. doi:10.1038/nrmicro821
  • Hoai TD, Nishiki I, Yoshida T, Nakai T. 2018. Host range and influence of a cell capsule on the phage efficacy of three Lactococcus garvieae lytic phages. Dis Aquat Org. 128:81–86. doi:10.3354/dao03212
  • Hoffmann S, Schmidt C, Walter S, Bender JK, Gerlach RG. 2017. Scarless deletion of up to seven methyl-accepting chemotaxis genes with an optimized method highlights key function of CheM in Salmonella Typhimurium. PLoS One. 12(2):e0172630. doi:10.1371/journal.pone.0172630
  • Jay JM. 2003. A review of recent taxonomic changes in seven genera of bacteria commonly found in foods. J Food Prot. 66(7):1304–1309. doi:10.4315/0362-028x-66.7.1304
  • Jones FT. 2011. A review of practical Salmonella control measures in animal feed. J Appl Poultry Res. 20:102–113. doi:10.3382/japr.2010-00281
  • Knezevic P, Petrovic O. 2008. A colorimetric microtiter plate method for assessment of phage effect on Pseudomonas aeruginosa biofilm. J Microbiol Methods. 74:114–118. doi:10.1016/j.mimet.2008.03.005
  • Kumar M, Curtis A, Hoskins C. 2018. Application of nanoparticle technologies in the combat against anti-microbial resistance. Pharmaceutics. 10:11. doi:10.3390/pharmaceutics10010011
  • Kumari S, Sarkar PK. 2016. Bacillus cereus hazard and control in industrial dairy processing environment. Food Control. 69:20–29. doi:10.1016/j.foodcont.2016.04.012
  • Kutter E, De Vos D, Gvasalia G, Alavidze Z, Gogokhia L, Kuhl S, Abedon ST. 2010. Phage therapy in clinical practice: treatment of human infections. Curr Pharm Biotechnol. 11(1):69–86. doi:10.2174/138920110790725401
  • Laghari GS, Hussain Z, Hussain SZM. 2019. Antimicrobial susceptibility patterns of Salmonella species in Southern Pakistan. Cureus. 3:11. doi:10.7759/cureus.4379
  • Lu Y, Wen Y, Hu G. 2019. Genomic sequence analysis of the multidrug-resistance region of avian Salmonella enterica serovar Indiana strain MHYL. Microorganisms. 9:7. doi:10.3390/microorganisms7080248
  • Luís DRM, Graça P, Fernando O, Diana V, Carina A, Sanna S, Nuno C, Joana A. 2020. The protective effect of Staphylococcus epidermidis biofilm matrix against phage predation. Viruses. 12:1076. doi:10.3390/v12101076
  • Luppens SB, Reij MW, van der Heijden RW, Rombouts FM, Abee T. 2002. Development of a standard test to assess the resistance of Staphylococcus aureus biofilm cells to disinfectants. Appl Environ Microbiol. 68:4194–4200. doi:10.1128/aem.68.9.4194-4200.2002
  • Majowicz SE, Musto J, Scallan E, Angulo FJ, Kirk M, O'Brien SJ, Jones TF, Fazil A, Hoekstra RM. 2010. The global burden of nontyphoidal Salmonella gastroenteritis. Clin Infect Dis. 50:882–889. doi:10.1086/650733
  • Marchand S, De Block J, De Jonghe V, Coorevits A, Heyndrickx M, Herman L. 2012. Biofilm formation in milk production and processing environments; influence on milk quality and safety. Compr Rev Food Sci F. 11:133–147. doi:10.1111/j.1541-4337.2011.00183.x
  • McCallin S, Alam Sarker S, Barretto C, Sultana S, Berger B, Huq S, Krause L, Bibiloni R, Schmitt B, Reuteler G, et al. 2013. Safety analysis of a Russian phage cocktail: from metagenomic analysis to oral application in healthy human subjects. Virology. 443:187–196. doi:10.1016/j.virol.2013.05.022
  • Mead PS, Slutsker L, Dietz V, McCaig LF, Bresee JS, Shapiro C, Griffin PM, Tauxe RV. 1999. Food-related illness and death in the United States. Emerg Infect Dis. 5:607–625. doi:10.3201/eid0505.990502
  • Merabishvili M, Pirnay J-P, Verbeken G, Chanishvili N, Tediashvili M, Lashkhi N, Glonti T, Krylov V, Mast J, Van Parys L, et al. 2009. Quality-controlled small-scale production of a well defined bacteriophage cocktail for use in human clinical trials. PLoS One. 4:e4944. doi:10.1371/journal.pone.0004944
  • Nana L, Yanmei S, Qingqin W, Yi Q, Zhi C, Ying W, Shiwei W, Yuan S. 2020. Cloning and characterization of endolysin and holin from Streptomyces avermitilis bacteriophage phiSASD1 as potential novel antibiotic candidates. Int J Biol Macromol. 147:980–989. doi:10.1016/j.ijbiomac.2019.10.065.
  • Park M, Lee J-H, Shin H, Kim M, Choi J, Kang D-H, Heu S, Ryu S. 2012. Characterization and comparative genomic analysis of a novel bacteriophage, SFP10, simultaneously inhibiting both Salmonella enterica and Escherichia coli O157:H7. Appl Environ Microbiol. 78:58–69. doi:10.1128/AEM.06231-11
  • Penesyan A, Gillings M, Paulsen IT. 2015. Antibiotic discovery: combatting bacterial resistance in cells and in biofilm communities. Molecules. 20:5286–5298. doi:10.3390/molecules20045286
  • Pham-Khanh NH, Sunahara H, Yamadeya H, Sakai M, Nakayama T, Yamamoto H, Truong Thi Bich V, Miyanaga K, Kamei K. 2019. Isolation, characterisation and complete genome sequence of a tequatrovirus phage, Escherichia phage KIT03, which simultaneously infects Escherichia coli O157:H7 and Salmonella enterica. Curr Microbiol. 76:1130–1137. doi:10.1007/s00284-019-01738-0
  • Sergueev KV, Filippov AA, Farlow J, Su W, Kvachadze L, Balarjishvili N, Kutateladze M, Nikolich MP. 2019. Correlation of host range expansion of therapeutic bacteriophage Sb-1 with allele state at a hypervariable repeat locus. Appl Environ Microbiol. 85:1209–1219. doi:10.1128/AEM.01209-19
  • Shahverdi A, Fakhimi A, Shahverdi H, Minaian S. 2007. Synthesis and effect of silver nanoparticles on the anti-bacterial activity of different antibiotics against Staphylococcus aureus and Escherichia coli. Nanomed Nanotechnol Biol Med. 3:168–171. doi:10.1016/j.nano.2007.02.001
  • Shi X, Zhu X. 2009. Biofilm formation and food safety in food industries. Trends Food Sci Technol. 20(9):407–413. doi:10.1016/j.tifs.2009.01.054
  • Simoes M, Simoes LC, Vieira MJ. 2010. A review of current and emergent biofilm control strategies. LWT-Food Sci Technol. 43:573–583. doi:10.1016/j.lwt.2009.12.008
  • Sritha KS, Bhat SG. 2018. Genomics of Salmonella phage ΦStp1: candidate bacteriophage for biocontrol. Virus Genes. 54(2):311–318. doi:10.1007/s11262-018-1538-3
  • Thanki AM, Brown N, Millard AD, Clokie MRJ. 2019. Genomic characterization of jumbo Salmonella phages that effectively target United Kingdom pig-associated Salmonella serotypes. Front Microbiol. 10:1491. doi:10.3389/fmicb.2019.01491
  • Tomasz O, Katarzyna DW, Michal A, Grzegorz G, Barbara M, Slawomir W. 2019. Pseudomonas aeruginosa PA5oct jumbo phage impacts planktonic and biofilm population and reduces its host virulence. Viruses. 11:1089. doi:10.3390/v11121089
  • Wu M, Hu K, Xie Y, Liu Y, Mu D, Guo H, Zhang Z, Zhang Y, Chang D, Shi Y. 2019. A novel phage PD-6A3, and its endolysin Ply6A3, with extended lytic activity against acinetobacter baumannii. Front Microbiol. 9:3302. doi:10.3389/fmicb.2018.03302
  • Zhdanov V M, S Ia Gaĭdamovich. 1971. Classification and nomenclature of viruses. Vopr Virusol. 6(3):119.

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