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首页> 外文期刊>Microbial Cell Factories >Validation of a high-throughput fermentation system based on online monitoring of biomass and fluorescence in continuously shaken microtiter plates
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Validation of a high-throughput fermentation system based on online monitoring of biomass and fluorescence in continuously shaken microtiter plates

机译:基于在线监测连续摇动微量滴定板中生物量和荧光的高通量发酵系统的验证

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Background An advanced version of a recently reported high-throughput fermentation system with online measurement, called BioLector, and its validation is presented. The technology combines high-throughput screening and high-information content by applying online monitoring of scattered light and fluorescence intensities in continuously shaken microtiter plates. Various examples in calibration of the optical measurements, clone and media screening and promoter characterization are given. Results Bacterial and yeast biomass concentrations of up to 50 g/L cell dry weight could be linearly correlated to scattered light intensities. In media screening, the BioLector could clearly demonstrate its potential for detecting different biomass and product yields and deducing specific growth rates for quantitatively evaluating media and nutrients. Growth inhibition due to inappropriate buffer conditions could be detected by reduced growth rates and a temporary increase in NADH fluorescence. GFP served very well as reporter protein for investigating the promoter regulation under different carbon sources in yeast strains. A clone screening of 90 different GFP -expressing Hansenula polymorpha clones depicted the broad distribution of growth behavior and an even stronger distribution in GFP expression. The importance of mass transfer conditions could be demonstrated by varying filling volumes of an E. coli culture in 96 well MTP. The different filling volumes cause a deviation in the culture growth and acidification both monitored via scattered light intensities and the fluorescence of a pH indicator, respectively. Conclusion The BioLector technology is a very useful tool to perform quantitative microfermentations under engineered reaction conditions. With this technique, specific yields and rates can be directly deduced from online biomass and product concentrations, which is superior to existing technologies such as microplate readers or optode-based cultivation systems. In particular, applications with strong demand on high-throughput such as clone and media screening and systems biology can benefit from its simple handling, the high quantitative information content and its capacity of automation.
机译:背景技术最近介绍了一种具有在线测量功能的高通量发酵系统BioLector的高级版本,并进行了验证。该技术通过在线监测连续摇动的微量滴定板中的散射光和荧光强度,将高通量筛选和高信息含量结合在一起。给出了光学测量的校准,克隆和培养基筛选以及启动子表征的各种实例。结果高达50 g / L细胞干重的细菌和酵母生物量浓度与散射光强度呈线性相关。在培养基筛选中,BioLector可以清楚地展示其检测不同生物量和产品产量以及推导特定增长率以定量评估培养基和营养素的潜力。可通过降低生长速率和暂时增加NADH荧光来检测由于不适当的缓冲液条件引起的生长抑制。 GFP很好地用作报告蛋白,用于研究酵母菌株中不同碳源下启动子的调控。对90个不同的表达GFP的汉逊酵母多形汉逊酵母克隆的克隆筛选显示了其生长行为的广泛分布以及GFP表达中的更强分布。传质条件的重要性可以通过改变96孔MTP中大肠杆菌培养物的填充量来证明。不同的填充量会分别通过散射光强度和pH指示剂的荧光监测到培养物生长和酸化的偏差。结论BioLector技术是在工程反应条件下进行定量微发酵的非常有用的工具。利用这种技术,可以直接从在线生物量和产品浓度推算出特定的产量和速率,这优于现有技术,例如酶标仪或基于光电二极管的培养系统。尤其是,对高通量的强烈需求的应用程序(例如克隆和媒体筛选以及系统生物学)可以从其简单的处理,高定量信息内容和自动化能力中受益。

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