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A combined growth kinetics, metabolism and gene expression model for 3D ESC bioprocesses

机译:3D ESC生物过程的组合生长动力学,代谢和基因表达模型

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Exploiting the immense potential of embryonic stem cells (ESC) lies in controlling their differentiation towards the desired cell type. Cell culture variables are known to affect ESC pluripotency, one of its defining characteristics. Therefore, we develop a mathematical model coupling cell growth, metabolism and gene expression for an ESC expansion bioprocess. Batch cultures were performed to obtain estimates for model parameters; however, they were unable to maintain cell proliferation and pluripotency levels. When perfusion feeding is administered to the expansion bioprocess, we observe different metabolic characteristics; hence we use global sensitivity analysis (GSA) to identify the most significant model parameters for re-estimation during dynamic feeding conditions. Perfusion feeding negates the sub-optimal nutrient/metabolite conditions found in batch cultures, facilitates the expansion of ESCs and maintains maximal pluripotency levels. The mathematical model herein is able to capture the experimental observations closely for batch and perfusion experiments. We highlight the importance of optimal nutrient/metabolite culture conditions during ESC bioprocess and initiate the development of an in silico design tool for their optimization.
机译:开发胚胎干细胞(ESC)的巨大潜力在于控制其向所需细胞类型的分化。众所周知,细胞培养变量会影响ESC多能性,这是它的定义特征之一。因此,我们建立了一个ESC扩展生物过程耦合细胞生长,代谢和基因表达的数学模型。进行分批培养以获得模型参数的估计值;但是,他们无法维持细胞增殖和多能性水平。当对膨胀生物过程进行灌注喂养时,我们观察到了不同的代谢特征。因此,我们使用全局灵敏度分析(GSA)来确定最重要的模型参数,以便在动态饲喂条件下进行重新估算。灌注喂养消除了分批培养中次优的营养/代谢条件,促进了ESC的扩增并保持了最大的多能性水平。本文的数学模型能够紧密捕获用于批处理和灌注实验的实验观察结果。我们着重指出了ESC生物过程中最佳营养/代谢物培养条件的重要性,并着手开发计算机设计工具以对其进行优化。

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