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Growth of Cronobacter spp. under Dynamic Temperature Conditions Occurring during Cooling of Reconstituted Powdered Infant Formula

机译:克罗诺杆菌属菌种的生长。在动态温度条件下冷却重构粉状婴儿配方奶粉时

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摘要

Reconstituted infant formulae are excellent growth media for Cronobacter spp. (formerly Enterobacter sakazakii) and other microorganisms that may be present in such products. Immediate consumption or rapid cooling and storage at a low temperature are therefore recommended as control measures to prevent microbial growth. Placing a container filled with reconstituted liquid formula in the refrigerator, however, does not mean that the temperature of the liquid is directly the same as the set-point of the refrigerator. This study describes the temperature profiles and methods to predict lag time and possible growth of Cronobacter spp. during the cooling process in three types of containers. The overall heat transfer coefficients (a) were determined and were shown to have a very large variability in both household refrigerators and an air-ventilated refrigerator equipped with a fan. A mathematical model was built to predict the growth of Cronobacter spp. under dynamic temperature conditions using three models for the lag time. The various estimations for the lag time had a remarkably strong impact on the predicted growth. The assumption of a constant lvalue (k = lag time × specific growth rate = λ × μ = 2.88) fitted the experimental data best. Predictions taking into account the large variability in heat transfer showed that proliferation of Cronobacter spp. during cooling may be prevented by limiting the volume to be cooled to portion size only, or by reconstituting at temperatures of 25℃ or lower. The model may also be used to predict growth in other situations where dynamic temperature conditions exist.
机译:重构的婴儿配方食品是克罗诺杆菌属的极佳生长培养基。 (以前为阪崎肠杆菌)和此类产品中可能存在的其他微生物。因此,建议立即食用或在低温下快速冷却和储存,以作为防止微生物生长的控制措施。然而,将装有重构液体配方的容器放置在冰箱中并不意味着液体的温度与冰箱的设定点直接相同。这项研究描述了温度曲线和预测滞后时间以及克氏杆菌属菌种可能生长的方法。在三种容器的冷却过程中。确定了总的传热系数(a),并且显示出,在家用冰箱和配有风扇的通风冰箱中,它们的变化都很大。建立了数学模型来预测克氏杆菌的生长。在动态温度条件下,使用三种模型作为滞后时间。滞后时间的各种估计对预测的增长有显着的影响。恒定的左值(k =滞后时间×比生长速率=λ×μ= 2.88)的假设最适合实验数据。考虑到传热的巨大变化的预测表明,克罗诺杆菌属菌的繁殖。可以通过将要冷却的体积仅限制为部分大小或在25℃或更低的温度下进行重构来防止冷却。该模型还可用于预测存在动态温度条件的其他情况下的增长。

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  • 来源
    《Journal of food protection》 |2009年第12期|2489-2498|共10页
  • 作者单位

    Wageningen University, Laboratory of Food Microbiology, P.O. Box 8129, 6700 EV Wageningen, The Netherlands;

    Nestle Product Technology Centre Konolfingen, Applied Science & Analytical Support Department, Nestle Strasse 3, P.O. Box 12, CH-3510, Konolfingen, Switzerland;

    Wageningen University, Laboratory of Food Microbiology, P.O. Box 8129, 6700 EV Wageningen, The Netherlands Unilever, SEAC, Colworth Science Park, Sharnbook MK44 1LQ, UK;

    Wageningen University, Laboratory of Food Microbiology, P.O. Box 8129, 6700 EV Wageningen, The Netherlands;

    Wageningen University, Laboratory of Food Microbiology, P.O. Box 8129, 6700 EV Wageningen, The Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-17 23:26:03

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