UCD School of Chemical and Bioprocess Engineering, Centre for Synthesis and Chemical Biology, University College Dublin, Belfield, Dublin, Ireland.
J Appl Microbiol. 2010 Dec;109(6):2105-17. doi: 10.1111/j.1365-2672.2010.04842.x. Epub 2010 Sep 16.
The purpose of this study was to develop a system that would allow biofilms to be cultivated under strictly defined conditions in terms of dissolved oxygen, fluid shear and to assess whether the method was suitable for the detection of respiratory activity stratification in biofilm samples.
The system is a modified version a commercially available laboratory biofilm reactor and incorporates a number of features such as the provision of defined levels of dissolved oxygen, constant average shear, enhanced gas-liquid mass transfer, aseptic operation and the ability to remove biofilm for ex situ analysis during or after continuous cultivation.
The system was shown to be effective for the characterization of the effects of dissolved oxygen on a pure culture of Staphylococcus epidermidis. The versatility of the system offers the potential for cultivating pure culture biofilm in defined, controlled conditions and facilitates a range of analyses that can be performed ex situ.
The ability to provide strict regulation of environmental conditions and enhanced transfer of oxygen to the biofilm during cultivation are important, first because oxygen is known to regulate biofilm development in several micro-organisms and second because many conventional biofilm cultivation systems may not provide adequate oxygen supply to the biofilm.
本研究旨在开发一种系统,以在溶解氧、流体剪切力等方面严格定义的条件下培养生物膜,并评估该方法是否适合检测生物膜样本中的呼吸活性分层。
该系统是一种经过改良的商业实验室生物膜反应器,具有一些特点,如提供定义水平的溶解氧、恒定的平均剪切力、增强的气液传质、无菌操作以及在连续培养过程中或之后能够取出生物膜进行异位分析的能力。
该系统被证明可有效用于表征溶解氧对表皮葡萄球菌纯培养物的影响。该系统的多功能性为在定义的、受控的条件下培养纯培养物生物膜提供了潜力,并促进了一系列可以在异位进行的分析。
在培养过程中能够严格控制环境条件和增强氧气向生物膜的传递非常重要,首先是因为氧气已知会调节几种微生物中的生物膜发育,其次是因为许多传统的生物膜培养系统可能无法为生物膜提供足够的氧气供应。