数学模拟嗜热硬脂地杆菌孢子的失活动力学:灭菌环境和温度分布的影响

Q3 Medicine
Manuel Feurhuber , Ralf Neuschwander , Thomas Taupitz , Carsten Frank , Christoph Hochenauer , Valentin Schwarz
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引用次数: 3

摘要

在本研究中,研究了嗜热硬脂地杆菌孢子在不同灭菌环境下的失活动力学。根据实验数据,对反应动力学进行了分析,并建立了数学模型。在不同灭菌温度和保温时间的湿热环境下,精确测量了其失活动力学。所有测量的失活时间都短于生物指示剂(BI)制造商指示的失活时间。在以下环境中发现:空气、饱和蒸汽、湿蒸汽、液态水、透析液,灭菌效率提高。应用一级和二级反应动力学方法,从测量数据中得出公式,使细菌失活能够建模。基于湿蒸汽和空气环境下的实验测量数据,可以采用数学一级反应动力学建模方法有效地预测嗜热脂嗜热杆菌孢子的失活动力学。然而,二级反应动力学方法可以在液态水和透析溶液环境中更准确地模拟测量数据。本文提出的数学模型可用于描述嗜热硬脂芽孢杆菌孢子在不同灭菌试验环境或任何给定灭菌温度剖面下的失活动力学。这些发现可用于提高灭菌过程的质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematically modelling the inactivation kinetics of Geobacillus stearothermophilus spores: Effects of sterilization environments and temperature profiles

In this study, inactivation kinetics of Geobacillus stearothermophilus spores were evaluated in different sterilization environments. The kinetics were analysed and mathematically modelled based on experimental data collected. The inactivation kinetics were measured precisely in moist heat environments using different sterilization temperatures and holding times. All measured inactivation times were shorter than the inactivation time indicated by the Biological Indicator (BI) manufacturer. Increasing sterilization efficiency was found in the following environments: air, saturated steam, wet steam, liquid water, dialysis solutions. Applying first- and second-order reaction kinetics approaches, formulas were derived from measured data that enabled bacterial inactivation to be modelled. A mathematical first-order reaction kinetic modelling approach could be taken to effectively predict inactivation kinetics for G. stearothermophilus spores based on the experimentally measured data collected in wet steam and air environments. A second-order reaction kinetics approach could be taken, however, to model measured data more accurately in liquid water and dialysis-solution environments. The mathematical models presented here can be applied to describe inactivation kinetics for G. stearothermophilus spores in different sterilization test environments or for any given sterilization temperature profile. These findings can be used to improve the quality of sterilization processes.

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来源期刊
Physics in Medicine
Physics in Medicine Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
9
审稿时长
12 weeks
期刊介绍: The scope of Physics in Medicine consists of the application of theoretical and practical physics to medicine, physiology and biology. Topics covered are: Physics of Imaging Ultrasonic imaging, Optical imaging, X-ray imaging, Fluorescence Physics of Electromagnetics Neural Engineering, Signal analysis in Medicine, Electromagnetics and the nerve system, Quantum Electronics Physics of Therapy Ultrasonic therapy, Vibrational medicine, Laser Physics Physics of Materials and Mechanics Physics of impact and injuries, Physics of proteins, Metamaterials, Nanoscience and Nanotechnology, Biomedical Materials, Physics of vascular and cerebrovascular diseases, Micromechanics and Micro engineering, Microfluidics in medicine, Mechanics of the human body, Rotary molecular motors, Biological physics, Physics of bio fabrication and regenerative medicine Physics of Instrumentation Engineering of instruments, Physical effects of the application of instruments, Measurement Science and Technology, Physics of micro-labs and bioanalytical sensor devices, Optical instrumentation, Ultrasound instruments Physics of Hearing and Seeing Acoustics and hearing, Physics of hearing aids, Optics and vision, Physics of vision aids Physics of Space Medicine Space physiology, Space medicine related Physics.
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