Poschet F, Vereecken K M, Geeraerd A H, Nicolaï B M, Van Impe J F
BioTeC-Bioprocess Technology and Control, Department of Chemical Engineering, Katholieke Universiteit Leuven, W. de Croylaan 46, B-3001 Leuven, Belgium.
Int J Food Microbiol. 2005 Apr 15;100(1-3):107-24. doi: 10.1016/j.ijfoodmicro.2004.10.008. Epub 2004 Dec 15.
In this paper, a novel class of microbial growth models is analysed. In contrast with the currently used logistic type models (e.g., the model of Baranyi and Roberts [Baranyi, J., Roberts, T.A., 1994. A dynamic approach to predicting bacterial growth in food. International Journal of Food Microbiology 23, 277-294]), the novel model class, presented in Van Impe et al. (Van Impe, J.F., Poschet, F., Geeraerd, A.H., Vereecken, K.M., 2004. Towards a novel class of predictive microbial growth models. International Journal of Food Microbiology, this issue), explicitly incorporates nutrient exhaustion and/or metabolic waste product effects inducing stationary phase behaviour. As such, these novel model types can be extended in a natural way towards microbial interactions in cocultures and microbial growth in structured foods. Two illustrative case studies of the novel model types are thoroughly analysed and compared to the widely used model of Baranyi and Roberts. In a first case study, the stationary phase is assumed to be solely resulting from toxic product inhibition and is described as a function of the pH-evolution. In the second case study, substrate exhaustion is the sole cause of the stationary phase. Finally, a more complex case study of a so-called P-model is presented, dealing with a coculture inhibition of Listeria innocua mediated by lactic acid production of Lactococcus lactis.
本文分析了一类新型的微生物生长模型。与目前使用的逻辑型模型(例如Baranyi和Roberts的模型[Baranyi, J., Roberts, T.A., 1994. 预测食品中细菌生长的动态方法。《国际食品微生物学杂志》23, 277 - 294])不同,Van Impe等人(Van Impe, J.F., Poschet, F., Geeraerd, A.H., Vereecken, K.M., 2004. 迈向一类新型的预测微生物生长模型。《国际食品微生物学杂志》,本期)提出的新型模型类别明确纳入了导致稳定期行为的营养物质耗尽和/或代谢废物产物效应。因此,这些新型模型类型可以自然地扩展到共培养中的微生物相互作用以及结构化食品中的微生物生长。对新型模型类型的两个说明性案例研究进行了深入分析,并与广泛使用的Baranyi和Roberts模型进行了比较。在第一个案例研究中,假定稳定期完全是由有毒产物抑制导致的,并将其描述为pH演变的函数。在第二个案例研究中,底物耗尽是稳定期的唯一原因。最后,给出了一个所谓P模型的更复杂案例研究,该研究涉及乳酸乳球菌产生的乳酸介导的无害李斯特菌共培养抑制。