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首页> 外文期刊>Journal of Biotechnology >Kinetic modeling of plasmid bioproduction in Escherichia coli DH5 alpha cultures over different carbon-source compositions
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Kinetic modeling of plasmid bioproduction in Escherichia coli DH5 alpha cultures over different carbon-source compositions

机译:不同碳源组成下大肠杆菌DH5α培养物中质粒生物生产的动力学模型

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The need for the development of economic high plasmid production in Escherichia coli cultures is emerging, as a result of the latest advances in DNA vaccination and gene therapy. In order to contribute to achieve that, a model describing the kinetics involved in the bioproduction of plasmid by recombinant E. coli DH5 alpha is presented, as an attempt to understand the complex and non-linear metabolic relationships and the plasmid production occurring in dynamic batch culture environments, run under different media compositions of glucose and glycerol, that result in distinct maximum biomass growths (between 8.2 and 12.8 g DCW/L) and specific plasmid productions (between 1.1 and 7.4 mg/g DCW). The model based on mass balance equations for biomass, glucose, glycerol, acetate and plasmid accurately described different culture behaviors, using either glucose or glycerol as carbon source, or mixtures of both. From the 17 parameters obtained after model simplification, the following 10 parameters were found to be independent of the carbon source composition: the substrate affinity constants, the inhibitory constants of biomass growth on glycerol by glucose, of biomass growth on acetate by glycerol and the global biomass growth by acetate, and the yields of biomass on acetate, acetate on glucose and glycerol, and plasmid on glucose. The parameters that depend on the culture composition, and that might explain the differences found between cultures, were: maximum specific growth rates on glucose, glycerol and acetate; biomass yield on glucose and glycerol; and plasmid yield on glycerol and acetate. Moreover, a crucial role of acetate in the plasmid production was revealed by the model, with most of plasmid production being associated to the acetate consumption. The model provides meaningful insight on the E. coli dynamic cell behavior concerning the plasmid bioproduction, which might lead to important guidelines for culture optimization and process scale-up and control. (C) 2014 Elsevier B.V. All rights reserved.
机译:由于DNA疫苗接种和基因治疗的最新进展,对在大肠杆菌培养物中经济地生产高产量质粒的需求正在出现。为了有助于实现这一目标,提出了一个模型,描述了通过重组大肠杆菌DH5α生物生产质粒所涉及的动力学,以试图理解复杂和非线性的代谢关系以及动态批次中发生的质粒生产在葡萄糖和甘油的不同培养基组成下运行的培养环境会导致明显的最大生物量增长(在8.2和12.8 g DCW / L之间)和特定的质粒产量(在1.1和7.4 mg / g DCW之间)。该模型基于生物质,葡萄糖,甘油,乙酸盐和质粒的质量平衡方程,使用葡萄糖或甘油作为碳源或两者的混合物准确地描述了不同的培养行为。从简化模型后获得的17个参数中,发现以下10个参数与碳源组成无关:底物亲和常数,葡萄糖对甘油的生物量生长的抑制常数,甘油对乙酸盐的生物量生长的抑制常数和乙酸盐对生物质的生长,乙酸盐对生物质的产量,葡萄糖和甘油对乙酸盐的产量,葡萄糖对质粒的影响。取决于培养物组成并且可以解释培养物之间发现的差异的参数是:葡萄糖,甘油和乙酸盐的最大比生长速率;葡萄糖和甘油的生物量产量;甘油和乙酸盐的质粒产率。此外,该模型揭示了乙酸盐在质粒产生中的关键作用,其中大多数质粒产生与乙酸盐消耗有关。该模型提供了有关质粒生物生产的大肠杆菌动态细胞行为的有意义的见解,这可能会为培养优化以及工艺放大和控制提供重要指导。 (C)2014 Elsevier B.V.保留所有权利。

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