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Spore germination based assay for monitoring antibiotic residues in milk at dairy farm

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Abstract

Spore germination based assay involves the transformation of dormant spores of Bacillus stearothermophilus 953 into active vegetative cells. The inhibition of germination process specifically in presence of antibiotic residues was used as a novel approach for monitoring target contaminants in milk. The indicator organism i.e., B. stearothermophilus 953 was initially allowed to sporulate by seeding in sporulation medium and incubating at 55 °C for 18 ± 2 h. The spores exhibited a typical chain behavior as revealed through phase contrast microscopy. The minimal medium inoculated with activated spores was incubated at 64 °C for 2–3 h for germination and outgrowth in presence of specific germinant mixture containing dextrose, whey powder and skimmed milk powder added in specific ratio along with reconstituted milk as negative control and test milk samples. The change in color of the medium from purple to yellow was used as criteria for detection of antibiotic residues in milk. The efficiency of the developed assay was evaluated through a surveillance study on 228 samples of raw, pasteurized and dried milks and results were compared with AOAC approved microbial receptor assay. The presence of antibiotic level was 10.08 % at Codex maximum residual limit having false positive result only in 0.43 % of the samples. The results of the present investigation suggest that developed spore based assay can be a practical solution to dairy industry for its application at farm level, milk processing units, independent testing and R & D centres in order to comply with the legal requirements set by Codex.

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References

  • Azzouz A, Souhail B, Ballesteros E (2010) Continuous solid-phase extraction and gas chromatography-mass spectrometry determination of pharmaceuticals and hormones in water samples. J Chromatogr A 1217(17):2956–2963

    Article  CAS  Google Scholar 

  • Azzouz A, Jurado-Sanchez B, Souhail B, Ballesteros E (2011) Simultaneous determination of 20 pharmacologically active substances in cow’s milk, goat’s milk, and human breast milk by gas chromatography mass spectrometry. J Agric Food Chem 59:5125–5132

    Article  CAS  Google Scholar 

  • Bilandzic N, Kolanović BS, Varenina I, Scortichini G, Annunziata L, Brstilo M, Rudan N (2011) Veterinary drug residues determination in raw milk in Croatia. Food Control 22(12):1941–1948

    Article  CAS  Google Scholar 

  • Blascoa C, Corciab AD, Picó Y (2009) Determination of tetracyclines in multi-specie animal tissues by pressurized liquid extraction and liquid chromatography–tandem mass spectrometry. Food Chem 116(4):1005–1012

    Article  Google Scholar 

  • Botsoglou NA, Fletouris DJ (2001) Drug residues in foods, pharmacology, food safety, and analysis. Marcel Dekker, New York

    Google Scholar 

  • Chung HH, Jung-Bin L, Yun-Hee C, Kwang-Geun L (2009) Analysis of sulfonamide and quinolone antibiotic residues in Korean milk using microbial assays and high performance liquid chromatography. Food Chem 113:297–301

    Article  CAS  Google Scholar 

  • Das S, Kumar N, Raghu HV, Haldar L, Gaare M, Singh V and Puniya A (2011) Microbial based assay for specific detection of β-lactam group of antibiotics in milk. J Food Sci Tech. doi:10.1007/s13197-011-0609-4

  • Downes FP, Ito K (2001) Compendium of methods for the microbiological examination of foods, 4th edn. In: American Public Health Association (ed) Frances Pouch Downes Keith Ito, Washington DC

  • Grzelak EM, Malinowska I, Choma IM (2009) Determination of Cefacetrile and Cefuroxime Residues in Milk by Thin-Layer Chromatography. Journal of Li Journal of Liquid Chromatography & Related Technologies 32:2043–2049

    Article  CAS  Google Scholar 

  • IDF (1991) Detection and confirmation of inhibitors in milk and milk products. International Dairy Federation Bulletin; 258, International Dairy Federation, Brussels, Belgium

  • Kang JH, Kondo F (2001) Occurrence of false-positive results of inhibitor on milk samples using the Delvotest SP assay. J Food Prot 64(8):1211–1215

    CAS  Google Scholar 

  • Katz SE, Brady MS (2000) Antibiotic residues in food and their significance. Food Biotechnol 14(3):147–171

    Article  CAS  Google Scholar 

  • Keynan A, Evenchick Z (1969) Activation. In: Gould GW, Hurst A (eds) The bacterial spore. Academic Press, Inc., New York, pp 359–396

    Google Scholar 

  • Khabir J, Umohb JC, Audu-okoha E, Umoha JU, Kwaga JKP (2004) Veterinary drug use in poultry farms and determination of antimicrobial drug residues in commercial eggs and slaughtered chicken in Kaduna state, Nigeria. Food Control 15:99–105

    Article  Google Scholar 

  • Kumar N, Das S, Manju G (2009) A kit for detection of β-lactam antibiotic group in milk using bacterial spore as biosensor. Indian Patent Reg No. 115/DEL/2009. Office of the Controller General of Patents, Designs & Trade Marks, Mumbai

  • Kumar N, Singh NA, Singh VK, Bhand S, Malik RK (2010) Development of spore inhibition based–enzyme substrate assay (SIB-ESA) for monitoring aflatoxin M1 in milk. Indian Patent Reg No. 3064/DEL/2010. Mumbai, Office of the Controller General of Patents, Designs & Trade Marks

  • Kumar N, Kaur G, Thakur G, Raghu HV, Singh N, Singh VK, Raghav N (2012) Real time detection of enterococci in dairy foods using spore germination based bioassay. Office of the Controller General of Patents, Designs & Trade Marks, Mumbai

    Google Scholar 

  • Macaulay DM, Packard VS (1981) Evaluation of methods used to detect antibiotic residues in milk. J Food Prot 44:696–698

    CAS  Google Scholar 

  • Mayra-Makinen A (1995) Technological significance of residues for the dairy industry. Bulletin of the International Dairy Federation 9505:136–143

    CAS  Google Scholar 

  • Mitchell JL, Giffits MW, Mcewen SA, Mcnab WB, Yee AJ (2002) Antimicrobial drug residues in milk and meat: causes, concerns, prevalence, regulations, tests and test performance. J F Protection 61:742–756

    Google Scholar 

  • Navrátilová P (2008) Screening methods used for the detection of veterinary drug residues in raw cow milk—a review. Czech J Food Sci 26:393–401

    Google Scholar 

  • Raghu HV (2007) Performance of lab kit for semi-quantitative detection of antibiotic residues in milk and dried products. M. Sc Thesis submitted to National Dairy Research Institute (Deemed University), Karnal, India

  • Schmidt RH (1997) Basic elements of equipment cleaning and sanitizing in food processing and handling. Ph.D. thesis submitted to Institute of Food and Agricultural Sciences, University of Florida, Gainesville, 32611

  • Snedecor GW, Cochran WG (1980) Statistical methods, 7th edn. The Iowa State University Press, Iowa

    Google Scholar 

  • Suhren G, Reichmuth J, Walte HG (1996) Detection of β-lactam antibiotics in milk by the Penzym test. Milchwissenschaft 51:269–273

    CAS  Google Scholar 

  • Thakur G, Kumar N, Raghu HV, Malik RK (2010) Development of off-line enzyme substrate based assay for monitoring enterococci in milk. NDRI Newslett 2(1):2–3

    Google Scholar 

  • Thomas CH (2001) Iodine in milk. Ph.D. thesis submitted to University of Cincinnati, Drongen

  • Zhou J, Xue X, Li Y, Zhang J, Chen F, Wu L, Chen L, Zhao J (2009) Multiresidue determination of tetracycline antibiotics in propolis by using HPLC-UV detection with ultrasonic-assisted extraction and two-step solid phase extraction. Food Chem 115:1074–1080

    Article  CAS  Google Scholar 

  • Zvirdauskiene R, Salomskiene J (2007) An evaluation of different microbial and rapid tests for determining inhibitors in milk. Food Control 18:541–547

    Article  CAS  Google Scholar 

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Acknowledgments

The ministry of Food Processing Industries (MOFPI), Govt. of India is greatly acknowledged for supporting this research work. The Director NDRI is thankfully acknowledged for Institute fellowship to Mr. Raghu, H. V. We wish to thank Dr R K Malhothra, Principle Scientist, DESM Division, NDRI, Karnal (India) for statistical analysis of data and anonymous reviewers for their kind advice.

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Correspondence to Naresh Kumar.

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Kumar, N., Raghu, H.V., Kumar, A. et al. Spore germination based assay for monitoring antibiotic residues in milk at dairy farm. World J Microbiol Biotechnol 28, 2559–2566 (2012). https://doi.org/10.1007/s11274-012-1065-7

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  • DOI: https://doi.org/10.1007/s11274-012-1065-7

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