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Indirect Measurement of the Lag Time Distribution of Single Cells of Listeria innocua in Food

机译:食品中无毒李斯特菌单细胞滞后时间分布的间接测量

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摘要

The distribution of log counts at a given time during the exponential growth phase of Listeria innocua measured in food samples inoculated with one cell each was applied to estimate the distribution of the single-cell lag times. Three replicate experiments in broth showed that the distribution of the log counts is a linear mapping of the distribution of the detection times measured by optical density. The detection time distribution reflects the lag time distribution but is shifted in time. The log count distribution was applied to estimate the distributions of the lag times in a liquid dairy product and in liver paté after different heat treatments. Two batches of ca. 100 samples of the dairy product were inoculated and heated at 55°C for 45 min or at 62°C for 2 min, and an unheated batch was incubated at 4°C. The final concentration of surviving bacteria was ca. 1 cell per sample. The unheated cells showed the shortest lag times with the smallest variance. The mean and the variance of the lag times of the surviving cells at 62°C were greater than those of the cells treated at 55°C. Three batches of paté samples were heated at 55°C for 25 min, 62°C for 81 s, or 65°C for 20 s. A control batch was inoculated but not heated. All paté samples were incubated at 15°C. The distribution of the lag times of the cells heated at 55°C was not significantly different from that of the unheated cells. However, at the higher temperatures, 62°C and 65°C, the lag duration was longer and its variance greater.
机译:在分别接种一个细胞的食物样品中测量的无病李斯特菌指数生长期的给定时间的对数计数分布用于估计单细胞滞后时间的分布。肉汤中的三个重复实验表明,对数计数的分布是通过光密度测量的检测时间分布的线性映射。检测时间分布反映了滞后时间分布,但是随时间推移。使用对数计数分布来估计经过不同热处理后的液态乳制品和肝片中滞后时间的分布。两批次接种100份乳制品样品,并在55℃下加热45分钟或在62℃下加热2分钟,并将未加热的批次在4℃下孵育。存活细菌的最终浓度为约。每个样品1个细胞。未加热的电池显示最短的滞后时间,变化最小。在62℃下存活细胞的平均时间和滞后时间的方差大于在55℃下处理的细胞。将三批paté样本在55°C加热25分钟,在62°C加热81 s,或在65°C加热20 s。接种对照批次但不加热。将所有样本样品在15°C下孵育。在55°C加热的电池的滞后时间的分布与未加热的电池的滞后时间的分布没有显着差异。但是,在较高温度(62°C和65°C)下,滞后时间更长,并且方差更大。

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