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利用流式细胞术实时细菌细胞分析在灭菌微生物学中的应用机遇。

Opportunities for the application of real-time bacterial cell analysis using flow cytometry for the advancement of sterilization microbiology.

机构信息

STERIS Applied Sterilization Technologies, IDA Business and Technology Park, Tullamore, Ireland.

Centre for Disinfection, Sterilization and Biosecurity, Athlone Institute of Technology, Athlone, Ireland.

出版信息

J Appl Microbiol. 2021 Jun;130(6):1794-1812. doi: 10.1111/jam.14876. Epub 2020 Nov 6.

DOI:10.1111/jam.14876
PMID:33155740
Abstract

Medical devices provide critical care and diagnostic applications through patient contact. Sterility assurance level (SAL) may be defined as the probability of a single viable micro-organism occurring on an item after a sterilization process. Sterilization microbiology often relies upon using an overkill validation method where a 12-log reduction in recalcitrant bacterial endospore population occurs during the process that exploits conventional laboratory-based culture media for enumeration. This timely review explores key assumptions underpinning use of conventional culture-based methods in sterilization microbiology. Consideration is given to how such methods may limit the ability to fully appreciate the inactivation kinetics of a sterilization process such as vaporized hydrogen peroxide (VH2O2) sterilization, and consequently design efficient sterilization processes. Specific use of the real-time flow cytometry (FCM) is described by way of elucidating the practical relevance of these limitation factors with implications and opportunities for the sterilization industry discussed. Application of FCM to address these culture-based limitation factors will inform real-time kinetic inactivation modelling and unlock potential to embrace emerging opportunities for pharma, medical device and sterilization industries including potentially disruptive applications that may involve reduced usage of sterilant.

摘要

医疗器械通过与患者接触提供关键的护理和诊断应用。无菌保证水平 (SAL) 可定义为在灭菌过程后,单个存活微生物出现在物品上的概率。灭菌微生物学通常依赖于使用过度杀灭验证方法,在该方法中,在利用传统实验室基于培养的培养基进行计数的过程中,顽固细菌内孢子群体会发生 12 对数减少。本及时审查探讨了在灭菌微生物学中使用传统基于培养的方法的关键假设。考虑了这些方法如何限制充分了解灭菌过程(例如汽化过氧化氢 (VH2O2) 灭菌)的灭活动力学的能力,从而设计高效的灭菌过程。通过阐明这些限制因素的实际相关性以及对灭菌行业的影响和机遇,具体说明了实时流式细胞术 (FCM) 的应用。应用 FCM 解决这些基于培养的限制因素将为实时动力学灭活建模提供信息,并为制药、医疗器械和灭菌行业带来潜在的机会,包括可能涉及减少消毒剂使用的颠覆性应用。

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