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Thermal Inactivation of Listeria Monocytogenes Within Bovine Milk Phagocytes

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Date 1988 Feb 1
PMID 3128163
Citations 12
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Abstract

Thermal resistance of intracellular and freely suspended Listeria monocytogenes that was associated with a milkborne outbreak of listeriosis was studied by using the sealed tube and slug flow heat exchanger methods. Test temperatures for the former method were 57.8, 62.8, 66.1, and 68.9 degrees C (136, 145, 151, and 156 degrees F, respectively); whereas those for the latter method were 66.1, 68.9, 71.7, and 74.4 degrees C (151, 156, 161, and 166 degrees F, respectively). The heating menstruum was sterile, whole milk. The intracellular inoculum was generated from an in vitro phagocytosis reaction by using endotoxin-induced bovine milk phagocytes. The phagocyte population consisted of 88% neutrophils, 8% macrophages, and 4% lymphocytes. Neutrophils harbored the majority of intracellular L. monocytogenes. The mean level of infectivity in the phagocyte population was 43%, and there were 26.1 +/- 19.3 bacteria per cell (10(4) viable cells per ml of test milk). Initial bacterial counts for the freely suspended and intracellular experiments (the latter was based on a sonically disrupted sample) were 10(6) L. monocytogenes cells per ml. Heat-stressed bacteria were recovered by direct plating in parallel with recovery from an enrichment broth; both methods gave comparable results. The predicted D62.8 degrees C (145 degrees F) value for intracellular sealed tube studies was 53.8 s (ZD = 5.6 degrees C [10.0 degrees F]), indicating a safe 33.4 D margin of inactivation for vat pasteurization (62.8 degrees C for 30 min).(ABSTRACT TRUNCATED AT 250 WORDS)

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References
1.
Stroup W, Dickerson Jr R, Read Jr R . Two-phase slug flow heat exchanger for microbial thermal inactivation research. Appl Microbiol. 1969; 18(5):889-92. PMC: 378107. DOI: 10.1128/am.18.5.889-892.1969. View

2.
BEARNS R, GIRARD K . The effect of pasteurization on Listeria monocytogenes. Can J Microbiol. 1958; 4(1):55-61. DOI: 10.1139/m58-007. View

3.
Tierney J, Larkin E . Potential sources of error during virus thermal inactivation. Appl Environ Microbiol. 1978; 36(3):432-7. PMC: 243065. DOI: 10.1128/aem.36.3.432-437.1978. View

4.
Schlech 3rd W, Lavigne P, Bortolussi R, Allen A, Haldane E, Wort A . Epidemic listeriosis--evidence for transmission by food. N Engl J Med. 1983; 308(4):203-6. DOI: 10.1056/NEJM198301273080407. View

5.
Fleming D, Cochi S, MacDonald K, Brondum J, Hayes P, Plikaytis B . Pasteurized milk as a vehicle of infection in an outbreak of listeriosis. N Engl J Med. 1985; 312(7):404-7. DOI: 10.1056/NEJM198502143120704. View