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Model-assisted Design of Experiments as a concept for knowledge-based bioprocess development

机译:基于模型的实验设计作为基于知识的生物过程开发的概念

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Design of Experiments methods offer systematic tools for bioprocess development in Quality by Design, but their major drawback is the user-defined choice of factor boundary values. This can lead to several iterative rounds of time-consuming and costly experiments. In this study, a model-assisted Design of Experiments concept is introduced for the knowledge-based reduction of boundary values. First, the parameters of a mathematical process model are estimated. Second, the investigated factor combinations are simulated instead of experimentally derived and a constraint-based evaluation and optimization of the experimental space can be performed. The concept is discussed for the optimization of an antibody-producing Chinese hamster ovary batch and bolus fed-batch process. The same optimal process strategies were found if comparing the model-assisted Design of Experiments (4 experiments each) and traditional Design of Experiments (16 experiments for batch and 29 experiments for fed-batch). This approach significantly reduces the number of experiments needed for knowledge-based bioprocess development.
机译:实验设计方法为“按质量设计”的生物过程开发提供了系统的工具,但是它们的主要缺点是用户定义的因子边界值选择。这可能会导致几轮重复的耗时且昂贵的实验。在这项研究中,引入了模型辅助的实验设计概念,用于基于知识的边界值降低。首先,估计数学过程模型的参数。其次,模拟研究的因素组合,而不是通过实验得出结论,并且可以对实验空间进行基于约束的评估和优化。讨论了该概念,用于优化产生抗体的中国仓鼠卵巢分批和大剂量补料分批过程。如果比较模型辅助的实验设计(每个实验4个实验)和传统的实验设计(批处理16个实验,补料分批29个实验),则会发现相同的最佳工艺策略。这种方法大大减少了基于知识的生物过程开发所需的实验数量。

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