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基于甘油的 Bacillus atrophaeus 灭菌生物指示剂系统:开发、性能评估和成本分析。

Glycerol-based sterilization bioindicator system from Bacillus atrophaeus: development, performance evaluation, and cost analysis.

机构信息

Production and Research Centre of Immunobiological Products, Parana State Department of Health, Av. São Roque, 716, Piraquara, PR, 83302-200, Brazil.

出版信息

Appl Microbiol Biotechnol. 2013 Feb;97(3):1031-42. doi: 10.1007/s00253-012-4350-3. Epub 2012 Aug 23.

DOI:10.1007/s00253-012-4350-3
PMID:22911095
Abstract

The development of new value-added applications for glycerol is of worldwide interest because of the environmental and economic problems that may be caused by an excess of glycerol generated from biodiesel production. A novel use of glycerol as a major substrate for production of a low-cost sterilization biological indicator system (BIS; spores on a carrier plus a recovery medium) was investigated. A sequential experimental design strategy was applied for product development and optimization. The proposed recovery medium enables germination and outgrowth of heat-damaged spores, promoting a D (160 °C) value of 6.6 ± 0.1 min. Bacillus atrophaeus spores production by solid-state fermentation reached a 2.3 ± 1.2 × 10(8) CFU/g dry matter. Sporulation kinetics results allowed this process to be restricted in 48 h. Germination kinetics demonstrated the visual identification of nonsterile BIS within 24 h. Performance evaluation of the proposed BIS against dry-heat and ethylene oxide sterilization showed compliance with the regulatory requirements. Cost breakdowns were from 41.8 (quality control) up to 72.8 % (feedstock). This is the first report on sterilization BIS production that uses glycerol as a sole carbon source, with significant cost reduction and the profitable use of a biodiesel byproduct.

摘要

由于生物柴油生产过程中产生的过量甘油可能带来环境和经济问题,因此开发甘油的新附加值应用引起了全世界的关注。本研究探索了将甘油用作生产低成本灭菌生物指示剂系统(BIS;载有孢子和回收培养基的载体)的主要基质的新用途。采用序贯实验设计策略进行产品开发和优化。所提出的回收培养基能够使受热损伤的孢子发芽和生长,从而使 D(160°C)值达到 6.6±0.1 分钟。通过固态发酵生产萎缩芽孢杆菌孢子达到了 2.3±1.2×10(8)CFU/g 干物质。孢子形成动力学结果允许将该过程限制在 48 小时内进行。发芽动力学表明,在 24 小时内可以直观地识别非无菌 BIS。对所提出的 BIS 进行干热和环氧乙烷灭菌效果评估表明,其符合监管要求。成本细目分析从 41.8%(质量控制)到 72.8%(原料)不等。这是首次报道使用甘油作为唯一碳源生产灭菌 BIS,显著降低了成本,并实现了生物柴油副产物的盈利利用。

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