Akkermans Simen, Verheyen Davy, Smet Cindy, Van Impe Jan F M
BioTeC, Chemical and Biochemical Process Technology and Control, Department of Chemical Engineering, KU Leuven, 9000 Ghent, Belgium.
OPTEC, Optimization in Engineering Center-of-Excellence, KU Leuven, 3000 Leuven, Belgium.
Foods. 2021 Jul 20;10(7):1674. doi: 10.3390/foods10071674.
The detection and quantification of sublethal injury (SI) of pathogenic microorganisms has become a common procedure when assessing the efficiency of microbial inactivation treatments. However, while a plethora of studies investigates SI in function of time, no suitable modelling procedure for SI data has been proposed thus far. In this study, a new SI model structure was developed that relies on existing microbial inactivation models. This model is based on the description of inactivation kinetics between the subpopulations of healthy, sublethally injured and dead cells. The model was validated by means of case studies on previously published results, modelled by different inactivation models, i.e., (i) log-linear inactivation; (ii) biphasic inactivation; and (iii) log-linear inactivation with tailing. Results were compared to those obtained by the traditional method that relies on calculating SI from independent inactivation models on non-selective and selective media. The log-linear inactivation case study demonstrated that the SI model is equivalent to the use of independent models when there can be no mistake in calculating SI. The biphasic inactivation case study illustrated how the SI model avoids unrealistic calculations of SI that would otherwise occur. The final case study on log-linear inactivation with tailing clarified that the SI model provides a more mechanistic description than the independent models, in this case allowing the reduction of the number of model parameters. As such, this paper provides a comprehensive overview of the potential and applications for the newly presented SI model.
在评估微生物灭活处理的效率时,检测和量化致病微生物的亚致死损伤(SI)已成为一种常见的程序。然而,尽管大量研究调查了SI随时间的变化情况,但迄今为止尚未提出适用于SI数据的建模程序。在本研究中,开发了一种基于现有微生物灭活模型的新SI模型结构。该模型基于对健康、亚致死损伤和死亡细胞亚群之间灭活动力学的描述。通过对先前发表的结果进行案例研究对该模型进行了验证,这些结果由不同的灭活模型建模,即:(i)对数线性灭活;(ii)双相灭活;以及(iii)带拖尾的对数线性灭活。将结果与通过传统方法获得的结果进行比较,传统方法依赖于根据非选择性和选择性培养基上的独立灭活模型计算SI。对数线性灭活案例研究表明,当计算SI时不会出错时,SI模型等同于使用独立模型。双相灭活案例研究说明了SI模型如何避免否则会出现的SI的不切实际计算。最后关于带拖尾的对数线性灭活的案例研究表明,在这种情况下,SI模型比独立模型提供了更具机械性的描述,从而允许减少模型参数的数量。因此,本文全面概述了新提出的SI模型的潜力和应用。