首页> 外文期刊>Journal of biological engineering >Prediction of Escherichia coli expression performance in microtiter plates by analyzing only the temporal development of scattered light during culture
【24h】

Prediction of Escherichia coli expression performance in microtiter plates by analyzing only the temporal development of scattered light during culture

机译:通过仅分析培养过程中散射光的时间发展来预测微量滴定板中大肠杆菌的表达性能

获取原文
       

摘要

Background Escherichia coli is often used for recombinant protein production. The expression of recombinant proteins negatively affects the microbial growth, thus, a balance between protein expression and biomass formation is preferable to reach high product- and space-time-yield. Already in screening experiments, suboptimal conditions causing too weak or too strong induction must be avoided. High-throughput screening devices such as the BioLector are often applied for screening experiments. The BioLector allows optical online monitoring of each well in a continuously orbitally shaken microtiter plate via scattered light and fluorescence measurements. This technique enables a fast identification of promising clones. However, to determine the expression performance of non-fluorescent products elaborated offline analysis is often required. MethodsA mathematical method is developed to distinguish between cultures, which are insufficiently, optimally or too strongly induced. Therefore, just the temporal development of the scattered light intensity signal is investigated. It is found that discrimination between the different intensities of induction is possible via principal component analysis. By fitting an extended sigmoidal function to the trajectory of the scattered light over time, two characteristic parameters are found. These are used in an empirical model to predict the expression performance. ResultsThe method was established for a wide range of culture conditions based on 625 E. coli cultures. Three E. coli host strains (Tuner(DE3), BL21(DE3), and BL21-Gold(DE3)) expressing either flavin-mononucleotide-based fluorescent protein (FbFP) or Cellulase celA2 were investigated. Cultures were conducted in two different types of microtiter plates (48- and 96-wells), in two online measurement devices at four temperatures (28?°C, 30?°C, 34?°C, and 37?°C). More than 95% of the predicted values are in agreement with the offline measured expression performances with a satisfying accuracy of ±30%. ConclusionsThe properties of cultures studied can be represented by only two characteristic parameters (slope at and time of the inflection point) received from fitting an extended sigmoidal function to the respective scattered light trajectory. Based on these two characteristic parameters, predictions of the standardized expression performance are possible and for a first screen elaborated offline analysis can be avoided. To the best of our knowledge, this is the first work presenting a method for the general prediction of expression performance of E. coli based solely on the temporal development of scattered light signals.
机译:背景技术大肠杆菌通常用于重组蛋白的生产。重组蛋白的表达对微生物的生长产生负面影响,因此,蛋白表达和生物量形成之间的平衡是优选的,以达到高的产品和时空产量。已经在筛选实验中,必须避免引起太弱或太强诱导的次佳条件。高通量筛选设备(例如BioLector)通常用于筛选实验。 BioLector允许通过散射光和荧光测量在连续轨道摇动的微量滴定板中对每个孔进行光学在线监测。该技术能够快速鉴定有前途的克隆。但是,要确定非荧光产品的表达性能,通常需要进行离线分析。方法开发了一种数学方法,以区分文化的不足,最佳或过于强烈。因此,仅研究散射光强度信号的时间发展。发现通过主成分分析可以区分不同的感应强度。通过将扩展的S形函数拟合到随时间变化的散射光的轨迹,可以找到两个特征参数。这些在经验模型中用于预测表达性能。结果建立了基于625种大肠杆菌培养物的广泛培养条件的方法。研究了三种表达黄素单核苷酸基荧光蛋白(FbFP)或纤维素酶celA2的大肠杆菌宿主菌株(Tuner(DE3),BL21(DE3)和BL21-Gold(DE3))。在两种不同类型的微量滴定板(48和96孔)中,在两个在线测量设备中,在四个温度(28℃,30℃,34℃和37℃)下进行培养。超过95%的预测值与离线测量的表情表现相符,准确度为±30%。结论研究的培养物的特性只能由两个特征参数(拐点处的斜率和时间)来表示,这是通过将扩展的S形函数拟合到各自的散射光轨迹而获得的。基于这两个特征参数,可以预测标准化的表达性能,并且对于第一个屏幕,可以避免精心设计的离线分析。据我们所知,这是首次提出一种仅基于散射光信号的时间发展来总体预测大肠杆菌表达性能的方法的工作。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号