Effect of biopreservative cultures on the shelf life of modified atmosphere packaged chicken cocktail sausage

Effect of biopreservative cultures on the shelf life of modified atmosphere packaged chicken cocktail sausage

The present study was undertaken to extend the shelf life of modified atmosphere packaged chicken cocktail sausages by using biopreservative cultures (Lactobacillus sakei (B-2) and Lactobacillus curvatus (B-LC-48)). According to the results, cocktail sausages in control group stored either at 4 °C or 10 °C were spoiled as of day 28 due to a decrease in average flavor score and general acceptance score and increases in mesophilic and psychrotrophic colony counts (p < 0.05). In bioprotective cultures treated groups, no spoilage was detected throughout the 60-day storage at 4 °C, whereas those products stored at 10 °C spoiled as of day 42. Results of this study indicated that the bioprotective cultures tested were able to control the spoilage bacteria by establishing bacterial predominance starting from the first day of the shelf life (p < 0.05). It was concluded that these cultures can be useful in chicken cocktail sausages production, especially when a proper cold chain cannot be guaranteed during transportation and at retail.

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  • 1. Rouger A, Tresse O, Zagorec M. Bacterial contaminants of poultry meat: sources, species, and dynamics. Microorganisms 2017; 5 (3): 50. doi: 10.3390/microorganisms5030050
  • 2. Peng Z, Zou M, Li M, Liu D, Guan W et al. Prevalence, antimicrobial resistance and phylogenetic characterization of Yersinia enterocolitica in retail poultry meat and swine feces in parts of China. Food Control 2018; 93: 121–128. doi: org/10.1016/j.foodcont.2018.05.04
  • 3. Pillay S, Amoako DG, Abia ALK, Somboro AM, Shobo CO et al. Characterisation of Campylobacter spp. isolated from poultry in KwaZulu-Natal, South Africa. Antibiotics 2020; 9 (2): 42. doi:10.3390/antibiotics9020042
  • 4. Li Q, Li Y, Tang Y, Meng C, Ingmer H, et al. Prevalence and characterization of Staphylococcus aureus and Staphylococcus argenteus in chicken from retail markets in China. Food Control 2019; 96: 158-164. doi:10.1016/j.foodcont.2018.08.03
  • 5. Tahmasebi H, Talebi R, Zarif BR. Isolated of Bacillus Cereus in chicken meat and investigation β-lactamase antibiotic-resistant in Bacillus Cereus from chicken meat. Advances in Life Sciences 2014; 4 (4): 200-206. doi: 10.5923/j.als.20140404.03
  • 6. Ferrari RG, Rosario DK, Cunha-Neto A, Mano SB, Figueiredo E et al. Worldwide epidemiology of Salmonella serovars in animal-based foods: A meta-analysis. Applied and Environmental Microbiology 2019; 85 (14): e00591-19. doi: 10.1128/AEM.00591-19
  • 7. Iannetti L, Schirone M, Neri D, Visciano P, Acciari V et al. Listeria monocytogenes in poultry: Detection and strain characterization along an integrated production chain in Italy. Food Microbiology 2020; 103533. doi:10.1016/j. fm.2020.103533
  • 8. Cyoia PS, Koga VL, Nishio EK, Houle S, Dozois CM et al. Distribution of ExPEC virulence factors, blaCTX-M, fosA3, and mcr-1 in Escherichia coli isolated from commercialized chicken carcasses. Frontiers in Microbiology 2019; 9: 1-9. doi:10.3389/fmicb.2018.03254
  • 9. Zhou GH, Xu XL, Liu Y. Preservation technologies for fresh meat–A review. Meat Science 2010; 86: 119–128. doi: 10.1016/j. meatsci.2010.04.033
  • 10. Rosario DKA, Rodrigues BL, Bernardes PC, Conte-Junior CA. Principles and applications of non-thermal technologies and alternative chemical compounds in meat and fish. Critical Reviews in Food Science and Nutrition 2020; 1-21. doi: 10.1080/10408398.2020.1754755
  • 11. Yin MC, Cheng WS. Antioxidant and antimicrobial effects of four garlic-derived organosulfur compounds in ground beef. Meat Science 2003; 63: 23–28. doi:10.1016/S0309-1740(02)00047-5
  • 12. Hugo CJ, Hugo A. Current trends in natural preservatives for fresh sausage products. Trends in Food Science & Technology 2015; 45: 12-23. doi: org/10.1016/j.tifs.2015.05.003
  • 13. Gálvez A, Abriouel H, López RL, Omar NB. Bacteriocin-based strategies for food biopreservation. International Journal of Food Microbiology 2007; 120 (1-2): 51–70. doi: 10.1016/j. ijfoodmicro.2007.06.001
  • 14. Trias R, Badosa E, Montesinos Bañeras EL. Bioprotective Leuconostoc strains against Listeria monocytogenes in fresh fruits and vegetables. International Journal of Food Microbiology 2008; 127 (1-2): 91-98. doi: 10.1016/j.ijfoodmicro.2008.06.011
  • 15. Ghanbari M, Jami M, Domig KJ, Kneifel W. Seafood biopreservation by lactic acid bacteria: A review. LWT-Food Science and Technology 2013; 54 (2): 315-324 doi: 10.1016/j. lwt.2013.05.039
  • 16. Favaro L, Penna ALB, Todorov SD. Bacteriocinogenic LAB from cheeses: Application in biopreservation?. Trends in Food Science & Technology 2015; 41 (1): 37-48. doi: 10.1016/j. tifs.2014.09.001
  • 17. Miettinen MK, Palmu L, Björkroth KJ, Korkeala H. Prevalence of Listeria monocytogenes in broilers at the abattoir, processing plant, and retail level. Journal of Food Protection 2001; 64 (7): 994–999. doi: 10.4315/0362-028x-64.7.99
  • 18. Alvarez-Sieiro P, Montalbán-López M, Mu D, Kuipers OP. Bacteriocins of lactic acid bacteria: Extending the family. Applied Microbiology and Biotechnology 2016; 100 (7): 2939– 2951. doi: 10.1007/s00253-016-7343-9
  • 19. Giraffa G, Chanishvili N, Widyastuti Y. Importance of Lactobacilli in food and feed biotechnology. Research in Microbiology 2010; 161 (6): 480-487. doi: 10.1016/j. resmic.2010.03.001
  • 20. Campana R, van Hemert S, Baffone W. Strain-specific probiotic properties of lactic acid bacteria and their interference with human intestinal pathogens invasion. Gut Pathogens 2017; 9 (12): 1-12. doi: 10.1186/s13099-017-0162-4
  • 21. Tovunac I, Galic K, Prpic T, Juric S. Effect of packaging conditions on the shelf-life of chicken frankfurters with and without lactate addition. Food Science and Technology International 2011; 17: 167–175. doi: 10.1177/1082013210381952
  • 22. de Angelis M, Gobetti M. Lactobacillus spp. General characteristics. Reference module in food science. In:. Fuquay J W. Encyclopedia of dairy sciences. 2nd ed. Academic Press. 2011. pp. 78-90.
  • 23. USDA/FSIS. 2011. Microbiology Laboratory Guidebook. Metot 3.01. Quantitative analysis of bacteria in foods as sanitary indicators.
  • 24. ISO 4832:2006 (E). 2006. Microbiology of food and animal feding stuffs-horizontal method for the enumeration on coliforms-colony-count technique.
  • 25. ISO 21527-1: 2008(en). 2008. Microbiology of food and animal feeding stuffs —horizontal method for the enumeration of yeasts and moulds — Part 1: colony count technique in products with water activity greater than 0,95.
  • 26. ISO 15214:1998(en). 1998. Microbiology of food and animal feeding stuffs-horizontal method for the enumeration of mesophilic lactic acid bacteria-colony-count technique at 30 degrees C.
  • 27. Cardello AV. Measuring consumer expectations to improve food product development. In: Macfie H J H (Ed.), Consumerled food product development. Cambridge: Woodhead publishing. 2007. pp. 223–261.
  • 28. IBM SPSS, IBM Corp. Released 2012. IBM SPSS Statistics for Windows, Version 21.0. Armonk, NY: USA.
  • 29. Moradi M, Kousheh SA, Almasi H, Alizadeh A, Guimarães JT et al. Postbiotics produced by lactic acid bacteria: The next frontier in food safety. Comprehensive Reviews in Food Science and Food Safety 2020; 19: 3390-3415. doi: 10.1111/1541- 4337.12613
  • 30. Castellano P, Belfiore C, Fadda S, Vignolo G. A review of bacteriocinogenic lactic acid bacteria used as bioprotective cultures in fresh meat produced in Argentina. Meat Science 2008; 79: 483-499. doi: 10.1016/j.meatsci.2007.10.009
  • 31. Reiter MG, Bueno CM, López C, Jordano R. Occurrence of Campylobacter and Listeria monocytogenes in a poultry processing plant. Journal of Food Protection 2005; 68 (9): 1903-6. doi: 10.4315/0362-028x-68.9.1903
  • 32. Mor-Mur M, Yuste J. Emerging bacterial pathogens in meat and poultry: an overview. Food and Bioprocess Technology 2010; 3 (24). doi: 10.1007/s11947-009-0189-8
  • 33. Melero B, Diez AM, Rajkovic A, Jaime I, Rovira J. Behaviour of non-stressed and stressed Listeria monocytogenes and Campylobacter jejuni cells on fresh chicken burger meat packaged under modified atmosphere and inoculated with protective culture. International Journal of Food Microbiology 2012; 158 (2): 107-12. doi: 10.1016/j.ijfoodmicro.2012.07.003
  • 34. Maragkoudakis PA, Mountzouris KC, Psyrras D, Cremonese S, Fischer J et al. Functional properties of novel protective lactic acid bacteria and application in raw chicken meat against Listeria monocytogenes and Salmonella Enteritidis. International Journal of Food Microbiology 2009; 130: 219– 226. doi: 10.1016/j.ijfoodmicro.2009.01.027
  • 35. Castellano P, Vignolo G. Inhibition of Listeria innocua and Brochothrix thermosphacta in vacuum-packaged meat by addition of bacteriocinogenic Lactobacillus curvatus CRL705 and its bacteriocins. Letters in Applied Microbiology 2006; 43 (2): 194–199. doi: 10.1111/j.1472-765X.2006.01933.x
  • 36. Hu P, Xu XL, Zhou GH, Han YQ, Xu BC et al. Study of the Lactobacillus sakei protective effect towards spoilage bacteria in vacuum packed cooked ham analyzed by PCR–DGGE. Meat Science 2008; 80: 462–469. doi:10.1016/j.meatsci.2008.01.011
  • 37. Schillinger U, Kaya M, Lücke FK. Behaviour of Listeria monocytogenes in meat and its control by a bacteriocinproducing strain of Lactobacillus sake. Journal of Applied Bacteriology 1991; 70: 473-477. doi: 10.1111/j.1365-2672.1991. tb02743.x
  • 38. Castellano P, Belfiore C, Vignolo G. Combination of bioprotective cultures with EDTA to reduce Escherichia coli O157:H7 in frozen ground-beef patties. Food Control 2011; 22 (8): 1461-1465. doi: 10.1016/j.foodcont.2011.02.018
  • 39. Comi G, Andyanto D, Manzano M, Iacumin L. Lactococcus lactis and Lactobacillus sakei as bioprotective culture to eliminate Leuconostoc mesenteroides spoilage and improve the shelf life and sensorial characteristics of commercial cooked bacon. Food Microbiology 2016; 58: 16-22. doi: 10.1016/j. fm.2016.03.001
  • 40. Vermeiren L, Devlieghere F, Vandekinderen I, Rajtak U, Debevere J. The sensory aceptability of cooked meat products treated with a protective culture depends on glucose content and buffering capacity: a case study with Lactobacillus sakei 10A. Meat Science 2006; 74 (3): 532-545. doi: 10.1016/j. meatsci.2006.05.003
  • 41. Gao Y, Li D, Liu X. Bacteriocin-producing Lactobacillus sakei C2 as starter culture in fermented sausages. Food Control 2014; 35 (1): 1-6. doi: 10.1016/j.foodcont.2013.06.055
  • 42. Güngör E, Gökoğlu N. Determination of microbial contamination sources at a frankfurter sausage processing line. Turkish Journal of Veterinary and Animal Science 2010; 34: 53-59. doi: 10.3906/vet-0805-28
  • 43. Milani LIG, Fries LLM, Boeira LS, Bessa LS, Melo V et al. Bioprotection of frankfurter sausages. Acta Alimentaria 1998; 27: 221-229.
  • 44. Andersen L. Biopreservation with Flora Carn L-2. Fleischwirtsch 1995; 75: 1327–1329.
  • 45. Łaszkiewicz B, Szymanski P, Zielinska D, Kołozyn-Krajewska D. Application of Lactiplantibacillus plantarum SCH1 for the bioconservation of cooked sausage made from mechanically separated poultry meat. Applied Sciences 2021; 11: 1576. doi: 10.3390/app11041576
  • 46. Adams MR, Baker T, Forrest CL. A note on shelf-life extension of British fresh sausage by vacuum packing. Journal of Applied Microbiology 1987; 63 (3): 227-231. doi: 10.1111/j.1365- 2672.1987.tb04940.x
  • 47. Baumgart J. 1990. In: Mikrobiologische Untersuchung von Lebensmitteln, Behr’s Verlag, Hamburg.
  • 48. Kara S. A research on the determination of shelf life of vacuum packaged sausages. Masters Thesis, Ankara University, Graduate School of Natural and Applied Sciences. 1994.
  • 49. Sadiq FA, Yan B, Tian F, Zhao J, Zhang H et al.. Lactic acid bacteria as antifungal and anti-mycotoxigenic agents: A comprehensive review. Comprehensive Reviews in Food Science and Food Safety 2020; 18: 1403-1436. doi: 10.1111/1541-4337.12481
  • 50. Brosnan B, Coffey A, Arendt EK, Furey A. Rapid identification, by use of the LTQ orbitrap hybrid FT mass spectrometer, of antifungal compounds produced by lactic acid bacteria. Analytical and Bioanalytical Chemistry 2012; 403 (10): 2983- 2995. doi: 10.1007/s00216-012-5955-
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