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Accelerated Bioprocess Development of Endopolygalacturonase-Production with Saccharomyces cerevisiae Using Multivariate Prediction in a 48 Mini-Bioreactor Automated Platform

机译:使用多变量预测在48个微型生物反应器自动化平台中使用酿酒酵母加速内生多聚半乳糖醛酸酶生产的生物工艺开发

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Mini-bioreactor systems enabling automatized operation of numerous parallel cultivations are a promising alternative to accelerate and optimize bioprocess development allowing for sophisticated cultivation experiments in high throughput. These include fed-batch and continuous cultivations with multiple options of process control and sample analysis which deliver valuable screening tools for industrial production. However, the model-based methods needed to operate these robotic facilities efficiently considering the complexity of biological processes are missing. We present an automated experiment facility that integrates online data handling, visualization and treatment using multivariate analysis approaches to design and operate dynamical experimental campaigns in up to 48 mini-bioreactors (8–12 mL) in parallel. In this study, the characterization of Saccharomyces cerevisiae AH22 secreting recombinant endopolygalacturonase is performed, running and comparing 16 experimental conditions in triplicate. Data-driven multivariate methods were developed to allow for fast, automated decision making as well as online predictive data analysis regarding endopolygalacturonase production. Using dynamic process information, a cultivation with abnormal behavior could be detected by principal component analysis as well as two clusters of similarly behaving cultivations, later classified according to the feeding rate. By decision tree analysis, cultivation conditions leading to an optimal recombinant product formation could be identified automatically. The developed method is easily adaptable to different strains and cultivation strategies, and suitable for automatized process development reducing the experimental times and costs.
机译:微型生物反应器系统可实现多种平行培养的自动化操作,是加速和优化生物工艺开发的有前途的替代方案,可实现高通量的复杂培养实验。其中包括分批补料和连续栽培,以及多种过程控制和样品分析选项,可为工业生产提供有价值的筛选工具。然而,考虑到生物过程的复杂性,缺少有效操作这些机器人设备所需的基于模型的方法。我们提供了一个自动化实验设备,该设备使用多变量分析方法集成了在线数据处理,可视化和处理功能,可以并行设计和运行多达48个微型生物反应器(8–12 mL)中的动态实验活动。在这项研究中,对酿酒酵母AH22分泌的重组内聚半乳糖醛酸酶进行了表征,一式三份地运行和比较了16种实验条件。开发了数据驱动的多元方法,以允许进行快速,自动化的决策以及有关内聚半乳糖醛酸酶生产的在线预测数据分析。使用动态过程信息,可以通过主成分分析以及行为相似的两个群集进行检测,从而发现异常行为的群集,然后根据进料速率对其进行分类。通过决策树分析,可以自动识别导致最佳重组产物形成的培养条件。所开发的方法易于适应不同的菌株和培养策略,并且适合于自动化的工艺开发,从而减少了实验时间和成本。

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