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Characterisation of operation conditions and online monitoring of physiological culture parameters in shaken 24-well microtiter plates

机译:摇动的24孔微量滴定板的运行条件表征和生理培养参数在线监测

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摘要

A new online monitoring technique to measure the physiological parameters, dissolved oxygen (DO) and pH of microbial cultures in continuously shaken 24-well microtiter plates (MTP) is introduced. The new technology is based on immobilised fluorophores at the bottom of standard 24-well MTPs. The sensor MTP is installed in a sensor dish reader, which can be fixed on an orbital shaker. This approach allows real online measurements of physiological parameters during continuous shaking of cultures without interrupting mixing and mass transfer like currently available technologies do. The oxygen transfer conditions at one constant shaking frequency (250 1/min) and diameter (25 mm) was examined with the chemical sulphite oxidation method. Varied filling volumes (600-1,200 μL) of Esc-herichia coli cultures demonstrated the importance of sufficient oxygen transfer to the culture. Cultures with higher filling volumes were subjected to an oxygen limitation, which influenced the cell metabolism and pro-longated the cultivation time. The effects could be clearly monitored by online DO and pH measurements. A further study of different media in an E. coli fermentation elucidated the different growth behaviour in response to the medium composition. The MTP fermentations correlated very well with parallel fermentations in shake flasks. The new technique gives valuable new insights into biological processes at a very small scale, thus enabling parallel experimentation and shorter development times in bioprocessing.
机译:介绍了一种新的在线监测技术,该技术可以测量连续摇动的24孔微量滴定板(MTP)中的微生物培养物的生理参数,溶解氧(DO)和pH。这项新技术基于标准24孔MTP底部的固定荧光团。传感器MTP安装在传感器皿读取器中,该传感器可以固定在定轨振荡器上。这种方法可以在连续摇动培养物期间真正在线测量生理参数,而不会像目前可用的技术那样中断混合和传质。用化学亚硫酸盐氧化法检查了在一个恒定的振荡频率(250 1 / min)和直径(25 mm)下的氧转移条件。大肠杆菌培养物的各种填充量(600-1,200μL)证明了向培养物中充分转移氧气的重要性。具有较高填充量的培养物受到氧气限制,这会影响细胞代谢并延长培养时间。可以通过在线溶解氧和pH测量清楚地监控这些影响。对大肠杆菌发酵中不同培养基的进一步研究阐明了响应培养基成分的不同生长行为。 MTP发酵与摇瓶中的平行发酵非常相关。这项新技术以非常小的规模为生物学过程提供了宝贵的新见解,从而使并行实验和较短的生物加工开发时间成为可能。

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