Home LiteratureArticle Details
PMID: 12147503 Published · ppublish English Journal Article

Transfer of microorganisms, including Listeria monocytogenes, from various materials to beef.

Applied and environmental microbiology ·Vol. 68 ·No. 8 ·2002-08-00 ·Pages 4015-24

Midelet G, Carpentier B

Abstract

The quantity of microorganisms that may be transferred to a food that comes into contact with a contaminated surface depends on the density of microorganisms on the surface and on the attachment strengths of the microorganisms on the materials. We made repeated contacts between pieces of meat and various surfaces (stainless steel and conveyor belt materials [polyvinyl chloride and polyurethane]), which were conditioned with meat exudate and then were contaminated with Listeria monocytogenes, Staphylococcus sciuri, Pseudomonas putida, or Comamonas sp. Attachment strengths were assessed by the slopes of the two-phase curves obtained by plotting the logarithm of the number of microorganisms transferred against the order number of the contact. These curves were also used to estimate the microbial population on the surface by using the equation of A. Veulemans, E. Jacqmain, and D. Jacqmain (Rev. Ferment. Ind. Aliment. 25:58-65, 1970). The biofilms were characterized according to their physicochemical surface properties and structures. Their exopolysaccharide-producing capacities were assessed from biofilms grown on polystyrene. The L. monocytogenes biofilms attached more strongly to polymers than did the other strains, and attachment strength proved to be weaker on stainless steel than on the two polymers. However, in most cases, it was the population of the biofilms that had the strongest influence on the total number of CFU detached. Although attachment strengths were weaker on stainless steel, this material, carrying a smaller population of bacteria, had a weaker contaminating capacity. In most cases the equation of Veulemans et al. revealed more bacteria than did swabbing the biofilms, and it provided a better assessment of the contaminating potential of the polymeric materials studied here.

MeSH Terms
Animals Bacteria/growth & development Bacterial Adhesion Biofilms/growth & development Cattle Colony Count, Microbial Listeria monocytogenes/growth & development,physiology Meat/microbiology Polymers Polysaccharides/metabolism Stainless Steel Surface Properties
Chemicals
Polymers Polysaccharides Stainless Steel
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Midelet Graziella
Agence Française de Sécurité Sanitaire des Aliments, Laboratoire d'Etudes et de Recherches pour l'Alimentation Collective, Maisons-Alfort, France.
Carpentier Brigitte
References (31)
31 references, click to expand
  1. Effect of dehairing operations on microbiological quality of swine carcasses.
    J Food Prot. 1999 Dec;62(12):1478-81 PMID: 10606156
  2. Adhesion of Aeromonas hydrophila to water distribution system pipes after different contact times.
    J Food Prot. 1998 Oct;61(10):1321-9 PMID: 9798149
  3. Microbiological sampling of carcasses by excision or swabbing.
    J Food Prot. 2000 Feb;63(2):167-73 PMID: 10678419
  4. Use of an enzyme-linked lectinsorbent assay to monitor the shift in polysaccharide composition in bacterial biofilms.
    Appl Environ Microbiol. 2000 May;66(5):1851-6 PMID: 10788349
  5. Exopolysaccharide production is required for development of Escherichia coli K-12 biofilm architecture.
    J Bacteriol. 2000 Jun;182(12):3593-6 PMID: 10852895
  6. Resistance of Pseudomonas aeruginosa to liquid disinfectants on contaminated surfaces before formation of biofilms.
    J AOAC Int. 2000 Nov-Dec;83(6):1415-22 PMID: 11128146
  7. Tracing of Salmonella spp. in two pork slaughter and cutting plants using serotyping and macrorestriction genotyping.
    J Appl Microbiol. 2001 Jan;90(1):131-47 PMID: 11155132
  8. Biofilm exopolysaccharides: a strong and sticky framework.
    Microbiology. 2001 Jan;147(Pt 1):3-9 PMID: 11160795
  9. Adsorption, attachment and biofilm formation among isolates of Listeria monocytogenes using model conditions.
    J Appl Microbiol. 2001 Oct;91(4):725-34 PMID: 11576310
  10. Distribution and sources of microbial contamination on beef carcasses.
    J Appl Microbiol. 1997 Mar;82(3):292-300 PMID: 12455892
  11. Semi-log model for interpreting the results of swabbing surfaces naturally contaminated.
    J Appl Bacteriol. 1986 Mar;60(3):243-9 PMID: 3519559
  12. Bacterial biofilms in nature and disease.
    Annu Rev Microbiol. 1987;41:435-64 PMID: 3318676
  13. Alternate gram staining technique using a fluorescent lectin.
    Appl Environ Microbiol. 1990 Jul;56(7):2245-7 PMID: 1697149
  14. Assessment of cleaning and disinfection in the food industry with the rapid ATP-bioluminescence technique combined with the tissue fluid contamination test and a conventional microbiological method.
    Int J Food Microbiol. 1993 Nov;20(2):109-16 PMID: 8268054
  15. Biofilms and their consequences, with particular reference to hygiene in the food industry.
    J Appl Bacteriol. 1993 Dec;75(6):499-511 PMID: 8294303
  16. Characterization of Listeria monocytogenes isolated from poultry products and from the poultry-processing environment by random amplification of polymorphic DNA and multilocus enzyme electrophoresis.
    Appl Environ Microbiol. 1995 Jun;61(6):2139-44 PMID: 7793936
  17. Influence of culture conditions on biofilm formation by Escherichia coli O157:H7.
    Int J Food Microbiol. 1995 Jul;26(2):147-64 PMID: 7577354
  18. The intercellular adhesin involved in biofilm accumulation of Staphylococcus epidermidis is a linear beta-1,6-linked glucosaminoglycan: purification and structural analysis.
    J Bacteriol. 1996 Jan;178(1):175-83 PMID: 8550413
  19. Quantification of the ease of removal of bacteria from surfaces.
    J Ind Microbiol. 1995 Oct;15(4):305-10 PMID: 8605069
  20. Bacterial tracking in a dairy production system using phenotypic and ribotyping methods.
    J Food Prot. 1998 Oct;61(10):1336-40 PMID: 9798151
  21. Characterization of Listeria monocytogenes from an ice cream plant by serotyping and pulsed-field gel electrophoresis.
    Int J Food Microbiol. 1999 Feb 18;46(3):187-92 PMID: 10100898
  22. Physico-chemistry of initial microbial adhesive interactions--its mechanisms and methods for study.
    FEMS Microbiol Rev. 1999 Apr;23(2):179-230 PMID: 10234844
  23. Biofilms associated with poultry processing equipment.
    Microbios. 1996;86(347):105-16 PMID: 8858863
  24. Bacterial spoilage of meat and cured meat products.
    Int J Food Microbiol. 1996 Nov;33(1):103-20 PMID: 8913812
  25. Microbiological contamination of carcasses related to hygiene practice and facilities on slaughtering lines.
    Acta Vet Scand. 1996;37(3):219-28 PMID: 8996868
  26. Adherence to stainless steel by foodborne microorganisms during growth in model food systems.
    Int J Food Microbiol. 1997 Jul 22;37(2-3):145-53 PMID: 9310849
  27. Adhesion of coagulase-negative staphylococci grouped according to physico-chemical surface properties.
    Microbiology. 1997 Dec;143 ( Pt 12):3861-70 PMID: 9421910
  28. Variations over time of microbial load and physicochemical properties of floor materials after cleaning in food industry premises.
    J Food Prot. 1998 Jan;61(1):57-65 PMID: 9708254
  29. Changes in the strength of attachment of micro-organisms to surfaces following treatment with disinfectants and cleansing agents.
    Lett Appl Microbiol. 1998 Aug;27(2):101-5 PMID: 9750331
  30. Biofilm formation by Porphyromonas gingivalis and Streptococcus gordonii.
    J Periodontal Res. 1998 Aug;33(6):323-7 PMID: 9777582
  31. Listeria monocytogenes in pork slaughtering and cutting plants. Use of RAPD, PFGE and PCR-REA for tracing and molecular epidemiology.
    Int J Food Microbiol. 1999 Dec 15;53(2-3):127-40 PMID: 10634704
Article Info
Journal
Applied and environmental microbiology
Abbr.
Appl Environ Microbiol
ISSN
0099-2240
Published
2002-08-00
Pages
4015-24
Language
English
Region
United States
NLM ID
7605801
PMCID
PMC124046
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com