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首页> 外文期刊>Biotechnology Progress >Combining Mechanistic and Data-Driven Approaches to Gain Process Knowledge on the Control of the Metabolic Shift to Lactate Uptake in a Fed-Batch CHO Process
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Combining Mechanistic and Data-Driven Approaches to Gain Process Knowledge on the Control of the Metabolic Shift to Lactate Uptake in a Fed-Batch CHO Process

机译:结合机械方法和数据驱动方法来获得关于分批补料CHO过程中代谢转变控制对乳酸摄取的过程知识

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摘要

A growing body of knowledge is available on the cellular regulation of overflow metabolism in mammalian hosts of recombinant protein production. However, to develop strategies to control the regulation of overflow metabolism in cell culture processes, the effect of process parameters on metabolism has to be well understood. In this study, we investigated the effect of pH and temperature shift timing on lactate metabolism in a fed-batch Chinese hamster ovary (CHO) process by using a Design of Experiments (DoE) approach. The metabolic switch to lactate consumption was controlled in a broad range by the proper timing of pH and temperature shifts. To extract process knowledge from the large experimental dataset, we proposed a novel methodological concept and demonstrated its usefulness with the analysis of lactate metabolism. Time-resolved metabolic flux analysis and PLS-R VIP were combined to assess the correlation of lactate metabolism and the activity of the major intracellular pathways. Whereas the switch to lactate uptake was mainly triggered by the decrease in the glycolytic flux, lactate uptake was correlated to TCA activity in the last days of the cultivation. These metabolic interactions were visualized on simple mechanistic plots to facilitate the interpretation of the results. Taken together, the combination of knowledge-based mechanistic modeling and data-driven multivariate analysis delivered valuable insights into the metabolic control of lactate production and has proven to be a powerful tool for the analysis of large metabolic datasets. (C) 2015 American Institute of Chemical Engineers
机译:关于重组蛋白生产的哺乳动物宿主中溢流代谢的细胞调节的知识越来越多。但是,要开发控制细胞培养过程中溢流代谢调节的策略,必须充分了解过程参数对代谢的影响。在这项研究中,我们通过实验设计(DoE)方法研究了补料分批中国仓鼠卵巢(CHO)过程中pH和温度变化时间对乳酸代谢的影响。通过适当的pH值和温度变化的时机,可以将代谢转换为乳酸的消耗控制在很宽的范围内。为了从大型实验数据集中提取过程知识,我们提出了一种新的方法论概念,并通过分析乳酸代谢来证明其有用性。结合时间分辨代谢通量分析和PLS-R VIP,评估乳酸代谢与主要细胞内途径活性之间的相关性。转向摄取乳酸主要是由糖酵解通量的降低触发的,而乳酸摄取与培养的最后几天的TCA活性相关。这些代谢相互作用在简单的机械图上可视化,以利于结果的解释。综上所述,基于知识的机械模型与数据驱动的多元分析相结合,为乳酸生产的代谢控制提供了宝贵的见识,并被证明是分析大型代谢数据集的有力工具。 (C)2015美国化学工程师学会

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