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Prevalence and antimicrobial resistance of Enterobacterales bacteria isolated from retail food in Poland Cover

Prevalence and antimicrobial resistance of Enterobacterales bacteria isolated from retail food in Poland

Open Access
|Sep 2025

References

  1. Adeolu M., Alnajar S., Naushad S., Gupta R.S.: Genome based phylogeny and taxonomy of the “Enterobacteriales”: proposal for Enterobacterales ord. nov. divided into the families Enterobacteriaceae, Erwiniaceae fam. nov., Pectobacteriaceae fam. nov., Yersiniaceae fam. nov., Hafniaceae fam. nov., Morganellaceae fam. nov., and Budviciaceae fam. nov. Int J Syst Evol Microbiol 2016, 66, 5575–5599, doi: 10.1099/ijsem.0.001485.
  2. Amador P., Fernandes R., Brito L., Prudêncio C.: Antibiotic resistance in Enterobacteriaceae isolated from Portuguese deli meat. J Food Saf 2011, 31, 1–20, doi: 10.1111/j.1745-4565.2010.00258.x.
  3. Amador P., Fernandes R., Prudêncio C., Brito L.: Resistance to β-lactams in bacteria isolated from different types of Portuguese cheese. Int J Mol Sci 2009, 10, 1538–1551, doi: 10.3390/ijms10041538.
  4. Chauhan S., Farooq U., Singh V., Kumar A.: Determination of prevalence and antibacterial activity of ESBL (Extended Spectrum Beta-lactamases) producing Klebsiella species isolated from raw milk of Doon Valley in India. Int J Pharm Biol Sci 2013, 4, 417–423.
  5. Conceição S., Queiroga M.C., Laranjo M.: Antimicrobial resistance in bacteria from meat and meat products: a one health perspective. Microorganisms 2023, 11, 2581, doi: 10.3390/microorganisms11102581.
  6. European Committee on Antimicrobial Susceptibility Testing. Date from the EUCAST MIC distribution website, accessed on 9 September 2024. https://www.eucast.org.
  7. European Union Reference Laboratory for Antimicrobial Resistance, accessed on 9 September 2024. https://www.eurl-ar.eu.
  8. Fakruddin Md., Rahaman M., Ahmed M.M., Hoque M.: Antimicrobial resistance and virulence factors of Enterobacteriaceae isolated from food samples of Bangladesh. Int J Microbiol Immunol Res 2014, 3, 12–18.
  9. Hosain M.Z., Kabir S.M.L., Kamal M.M.: Antimicrobial uses for livestock production in developing countries. Vet World 2021, 14, 210–221, doi: 10.14202/vetworld.2021.210-221.
  10. International Organization for Standardization: ISO 215281:2017. Microbiology of the food chain – Horizontal method for the detection and enumeration of Enterobacteriaceae – Part 1: Detection of Enterobacteriaceae. ISO, Geneva, Switzerland, 2017.
  11. International Organization for Standardization: ISO 6887-1:2017. Microbiology of the food chain – Preparation of test samples, initial suspension and decimal dilutions for microbiological examination – Part 1: General rules for the preparation of the initial suspension and decimal dilutions. ISO, Geneva, Switzerland, 2017.
  12. International Organization for Standardization: ISO 6887-2:2017. Microbiology of the food chain – Preparation of test samples, initial suspension and decimal dilutions for microbiological examination – Part 2: Specific rules for the preparation of meat and meat products. ISO, Geneva, Switzerland, 2017.
  13. International Organization for Standardization: ISO 6887-3:2017. Microbiology of the food chain – Preparation of test samples, initial suspension and decimal dilutions for microbiological examination – Part 3: Specific rules for the preparation of fish and fishery products. ISO, Geneva, Switzerland, 2017.
  14. International Organization for Standardization: ISO 6887-5:2020. Microbiology of the food chain – Preparation of test samples, initial suspension and decimal dilutions for microbiological examination – Part 5: Specific rules for the preparation of milk and milk products. ISO, Geneva, Switzerland, 2020.
  15. Jackson P., Meah A.: Re-assessing vulnerability to foodborne illness: pathways and practices. Crit Public Health 2017, 28, 81– 93, doi: 10.1080/09581596.2017.1285008.
  16. Janda J.M., Abbott S.L.: The changing face of the family Enterobacteriaceae (order: “Enterobacterales”): new members, taxonomic issues, geographic expansion, and new diseases and disease syndromes. Clin Microbiol Rev 2021, 34, e00174–20, doi: 10.1128/cmr.00174-20.
  17. Jansen W., Woudstra S., Muller A., Grabowski N., Schoo G., Gerulat B., Klein G., Kehrenberg C.: The safety and quality of pork and poultry meat imports for the common European market received at border inspection post Hamburg Harbour between 2014 and 2015. PLoS One 2018, 13, e0192550, doi: 10.1371/journal.pone.0192550.
  18. Magiorakos A.P., Srinivasan A., Carey R.B., Carmeli Y., Falagas M.E., Giske C.G., Harbarth S., Hindler J.F., Kahlmeter G., Olsson-Liljequist B., Paterson D.L., Rice L.B., Stelling J., Struelens M.J., Vatopoulos A., Weber J.T., Monnet D.L.: Multidrug-resistant, extensively drug-resistant and pandrugresistant bacteria: An international expert proposal for interim standard definitions for acquired resistance. Clin Microbiol Infect 2012, 18, 268–281, doi: 10.1111/j.1469-0691.2011.03570.x.
  19. Mladenović K.G., Grujović M.Ž., Kiš M., Furmeg S., Tkalec V.J., Stefanović O.D., KocićTanackov S.D.: Enterobacteriaceae in food safety with an emphasis on raw milk and meat. Appl Microbiol Biotechnol 2021, 105, 8615–8627, doi: 10.1007/s00253-021-11655-7.
  20. Mladenović K.G., Muruzović M.Ž., Čomić Lj.: Escherichia coli identification and isolation from traditional cheese produced in Southeastern Serbia. J Food Safety 2018, 38, 1–6, doi: 10.1111/jfs.12477.
  21. Mladenović K.G., Muruzović M.Ž., Čomić Lj.: The effects of environmental factors on planktonic growth and biofilm formation of Serratia odorifera and Serratia marcescens isolated from traditionally made cheese. Acta Aliment 2018, 47, 370–378, doi: 10.1556/066.2018.47.3.13.
  22. Nawrotek P., Grygorcewicz B., Augustyniak A.: Changes in the taxonomy of γ-Proteobacteria, modification of the order Enterobacteriales and novel families within Enterobacterales ord. nov. Adv Microbiol 2017, 56, 465–469, doi: 10.21307/PM-2017.56.4.465.
  23. Nikonorow E., Baraniak A., Gniadkowski M.: β-Lactamase-mediated resistance in Enterobacteriaceae. Adv Microbiol 2013, 52, 261–271, http://am-online.org/web/archiwum/vol5232013261.pdf.
  24. Odey T.O.J., Tamimowo W.O., Afolabi K.O., Jahid J.K., Reuben R.C.: Antimicrobial use and resistance in food animal production: food safety and associated concerns in Sub-Saharan Africa. Int Microbiol 2024, 27, 1–23, doi: 10.1007/s10123-023-00462-x.
  25. Riley L.W.: Extraintestinal foodborne pathogens. Annu Rev Food Sci Technol 2020, 11, 275–294, doi: 10.1146/annurev-food-032519-051618.
  26. Rood I.G.H., Li Q.: Review: Molecular detection of extended spectrum-β-lactamase- and carbapenemase-producing Enterobacteriaceae in a clinical setting. Diagn Microbiol Infect Dis 2017, 89, 245–250, doi: 10.1016/j.diagmicrobio.2017.07.013.
  27. Ryu S-H., Park S-M., Choi S-M., Hwang Y-O., Ham H-J., Kim S-U., Lee Y-K., Kim M-S., Park G-Y., Kim K-S., Chae Y-Z.: Antimicrobial resistance and resistance genes in Escherichia coli strains isolated from commercial fish and seafood. Int J Food Microbiol 2012, 152, 14–18, doi: 10.1016/j.ijfoodmicro.2011.10.003.
  28. Saad M.S., Hassan M.A., Hassnien F.S., Abdel-Aal M.M., Zakar A.H., Elshfey S.A.: Enterobacteriaceae in some fresh and marine fish. Benha Vet Med J 2018, 34, 261–268, doi: 10.21608/bvmj.2018.54250.
  29. Sabuj A.A.M., Haque Z.F., Younus M.I., Pondit A., Barua N., Hossain M.G., Islam M.A., Saha S.: Microbial risk assessment of ready-to-eat fast foods from different street-vended restaurants. Int J One Health 2020, 6, 41–48, doi: 10.14202/IJOH.2020.41-48.
  30. Schwaiger K., Huther S., Holzel C., Kampf P., Bauer J.: Prevalence of antibiotic-resistant Enterobacteriaceae isolated from chicken and pork meat purchased at the slaughterhouse and at retail in Bavaria, Germany. Int J Food Microbiol 2012, 154, 206–211, doi: 10.1016/j.ijfoodmicro.2011.12.014.
  31. Sobeih A.M.K., Al-Hawary I.I., Khalifa E.M., Ebied N.A.: Prevalence of Enterobacteriaceae in raw milk and some dairy products. Kafrelsheikh Vet Med J 2020, 18, 9–13, doi: 10.21608/KVMJ.2020.39992.1009.
  32. Szewczyk M., Czuba Z., Wiczkowski A., Hajdrowska B.: Antybiotykooporność izolowanych z żywności bakterii z rodziny Enterobacteriaceae (Antibiotic resistance of Enterobacteriaceae isolated from food). Med Weter 2019, 75, 553–557, doi: 10.21521/mw.6243.
  33. Tian M., He X., Feng Y., Wang W., Chen H., Gong M., Liu D., Clarke J.L., van Eerde A.: Pollution by antibiotics and antimicrobial resistance in livestock and poultry manure in China, and countermeasures. Antibiotics 2021, 10, 539, doi: 10.3390/antibiotics10050539.
  34. Tornadijo M.E., García M.C., Fresno J.M., Carballo J.: Study of Enterobacteriaceae during the manufacture and ripening of San Simón cheese. Food Microbiol 2001, 18, 499–509, doi: 10.1006/fmic.2001.0423.
  35. Trmčić A., Chauhan K., Kent D.J., Ralyea R.D., Martin N.H., Boor K.J., Wiedmann M.: Coliform detection in cheese is associated with specific cheese characteristics, but no association was found with pathogen detection. J Dairy Sci 2016, 99, 6105– 6120, doi: 10.3168/jds.2016-11112.
  36. Uzeh R.E., Adewumi F., Odumosu B.T.: Antibiotic resistance and plasmid analysis of Enterobacteriaceae isolated from retail meat in Lagos, Nigeria. One Health Outlook 2021, 3, 10, doi: 10.1186/s42522-021-00042-x.
  37. Van Boeckel T.P., Brower C., Gilbert M., Grenfell B.T., Levin S.A., Robinson T.P., Teillant A., Laxminarayan R.: Global trends in antimicrobial use in food animals. Proc Natl Acad Sci USA 2015, 112, 5649–5654, doi: 10.1073/pnas.1503141112.
  38. Wang S-K., Fu L-M., Chen G-W., Xiao H-M., Pan D., Shi R-F., Yang L-G., Sun G-J.: Multisite survey of bacterial contamination in ready-to-eat meat products throughout the cooking and selling processes in urban supermarket, Nanjing, China. Food Sci Nutr 2020, 8, 2427–2435, doi: 10.1002/fsn3.1532.
  39. Yaikhan T., Suwannasin S., Singkhamanan K., Chusri S., Pomwised R., Wonglapsuwan M., Surachat K.: Genomic characterization of multidrug-resistant Enterobacteriaceae clinical isolates from southern Thailand hospitals: unravelling antimicrobial resistance and virulence mechanisms. Antibiotics 2024, 13, 531, doi: 10.3390/antibiotics1306053.
Language: English
Page range: 371 - 379
Submitted on: Mar 31, 2025
Accepted on: Sep 26, 2025
Published on: Sep 30, 2025
Published by: National Veterinary Research Institute in Pulawy
In partnership with: Paradigm Publishing Services
Publication frequency: 4 times per year

© 2025 Magdalena Łopatek, Edyta Denis, published by National Veterinary Research Institute in Pulawy
This work is licensed under the Creative Commons Attribution 4.0 License.