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Chandross-Cohen, T.

Publications and source records attributed to Chandross-Cohen, T..

2 recordsLinked to original sources

Exposure assessment suggests some cytotoxic Bacillus cereus group genotypes can grow over 3 logs in HTST milk throughout the shelf life at temperature abuse conditions

Cytotoxic Bacillus cereus group strains are common causes of foodborne illness including diarrhea. However, our ability to assess food safety risks associated with the exposure to cytotoxic B. cereus group strains via contaminated food is limited due to the lack of predictive tools. In this study, we experimentally quantified the growth of 17 cytotoxic B. cereus group strains, representing six phylogenetic groups, in skim milk broth and used the growth data to develop an exposure assessment model. While none of the tested strains showed detectable growth in HTST milk at 4 or 6{degrees}C, 15 of the 17 strains showed growth at 10{degrees}C, 1 of the 17 strains showed growth at 8{degrees}C, and all strains grew at [≥]14{degrees}C. Growth data for 16 strains allowed us to generate linear secondary growth models, which were then used to develop the exposure assessment model. We simulated a five-stage supply chain with up to 35 consumer storage days, as that was the timing when distinguishable variations in percent milk containers over 105 CFU/m with different B. cereus genotypes were observed. When the initial contamination level of the HTST milk is set at an average of 100 CFU/mL, the model predicts that, on consumer home storage day 21 and 35, 2.81{+/-}0.66 and 4.13{+/-}2.53 % (mean {+/-} standard deviation) of the milk containers would exceed B. cereus group concentrations of 105 CFU/mL; these data represent the average across all strains. Sensitivity analysis showed that variation in the input parameter Q0, the initial physiological state of cells, has the largest effect on models prediction for 1 of 4 group II isolates, 1 of 6 group IV isolates and both group V isolates, suggesting the need to better characterize the growth parameters of these isolates. What-if scenario analysis showed that increased mean and variability in storage temperature at the consumers home both have substantial influence on final predicted B. cereus group concentration in milk containers. This model introduces an initial tool designed to facilitate risk-based food safety decision making for products that are contaminated with low B. cereus group levels.

microbiology↗

Context matters: environmental microbiota of ice cream processing facilities affects the inhibitory performance of two lactic acid bacteria against Listeria monocytogenes

Pathogenic L. monocytogenes may inhabit dairy processing environments, increasing the risk for cross-contamination of foods. Using biocontrol microorganisms that inhibit or outcompete L. monocytogenes to complement sanitation of dairy processing facilities may enhance the control of L. monocytogenes. However, it remains unknown whether the resident microbiota of dairy processing facilities affects the antilisterial activity of biocontrol strains. Here, two lactic acid bacteria (LAB) strains (Enterococcus PS01155 and PS01156) were tested for their biocontrol potential in the context of microbiomes collected from three ice cream processing facilities (A, B, and C). Antilisterial ability was assessed by co-culturing LABs with 8-L. monocytogenes strains in the presence of microbiota for 3 days at 15{degrees}C, followed by quantification of the most probable number of attached L. monocytogenes. L. monocytogenes concentration increased by 0.38{+/-}0.77 log10 MPN/sample in treatments containing microbiota from facility A, while it decreased by 0.99{+/-}1.13 and 2.54{+/-}0.84 log10 MPN/sample in treatments with microbiota from facilities B and C, respectively. The attachment of LAB to an abiotic surface was assessed by co-culturing LABs in with the microbiomes at 15{degrees}C for 3 days, followed by characterization of attached microbiota composition using amplicon sequencing. All samples containing microbiomes from facilities A and B had high relative abundance of Pseudomonas, while samples with facility C microbiome had high relative abundance of Enterococcus. Overall, we show that microbiota composition of ice cream processing facilities affected the antilisterial ability of LABs. IMPORTANCEAntilisterial lactic acid bacteria strains had been proposed as biological pathogen control agents for application in food processing environments. However, the effect of resident food processing environment microbiota on the performance on antilisterial lactic acid bacteria strains is poorly understood. Our study shows that the composition of the microbiota collected from ice cream processing facilities environmental surfaces can affect the attachment and inhibitory effect of lactic acid bacteria strains against L. monocytogenes. Further studies are therefore needed to evaluate whether individual microbial taxa affect antilisterial properties of lactic acid bacteria strains and to characterize the underlying mechanisms.

microbiology↗