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A model-driven approach towards rational microbial bioprocess optimization

机译:一种模型驱动的理性微生物生物过程优化方法

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Due to sustainability concerns, bio-based production capitalizing on microbes as cell factories is in demand to synthesize valuable products. Nevertheless, the nonhomogenous variations of the extracellular environment in bioprocesses often challenge the biomass growth and the bioproduction yield. To enable a more rational bioprocess optimization, we have established a model-driven approach that systematically integrates experiments with modeling, executed from flask to bioreactor scale, and using ferulic acid to vanillin bioconversion as a case study. The impacts of mass transfer and aeration on the biomass growth and bioproduction performances were examined using minimal small-scale experiments. An integrated model coupling the cell factory kinetics with the three-dimensional computational hydrodynamics of bioreactor was developed to better capture the spatiotemporal distributions of bioproduction. Full-factorial predictions were then performed to identify the desired operating conditions. A bioconversion yield of 94% was achieved, which is one of the highest for recombinantEscherichia coliusing ferulic acid as the precursor.
机译:由于可持续性问题,作为细胞工厂的微生物的基于生物的生产需要合成有价值的产品。然而,生物过程中细胞外环境的非源性变化通常攻击生物质生长和生物生产收率。为了实现更合理的生物过程优化,我们建立了一种模型驱动的方法,系统地将实验与模型集成,从烧瓶中执行到生物反应器量表,并使用阿魏酸以Vanillin生物转化作为案例研究。使用最小的小规模实验检查了传质和通气对生物质生长和生物生产性能的影响。开发了一种耦合细胞工厂动力学与生物反应器三维计算流体动力学的集成模型,以更好地捕获生物生产的时空分布。然后执行全因子预测以识别所需的操作条件。获得了94%的生物转化产率为94%,这是重组肠道肠化阿魏酸作为前体的最高的。

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