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Modeling and Simulation of Cephalosporin C Production in a Fed-Batch Tower-Type Bioreactor

机译:在FEPT-批量塔型生物反应器中脑孢菌素C生产的建模与仿真

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Immobilized cell utilization in tower-type bioreactor is one of the main alternatives being studied to improve the industrial bioprocess. Other alternatives for the production of !!!-lactam antibiotics, such as a cephalosporin C fed-batch process in an aerated stirred-tank bioreactor with free cells of Cepha-losporium acremonium, or a tower-type bioreactor with immobilized cells of this fungus, have proven to be more efficient than the batch process. In the fed-batch process, it is possible to minimize the catabolite repression exerted by the rapidly utilization of carbon sources (such as glucose) in the synthesis of antibiotics by utilizing a suitable flow rate of supplementary medium. In this study, several runs for cephalosporin C production, each lasting 200 h, were conducted in a fed-batch tower-type bioreactor using different hydrolyzed sucrose concentrations. For this study's model, modifications were introduced to take into account the influence of supplementary medium flow rate. The balance equations considered the effect of oxygen limitation inside the bioparticles. In the Monod-type rate equations, cell concentrations, substrate concentrations, and dissolved oxygen were included as reac-tants affecting the bioreaction rate. The set of differential equations was solved by the numerical method, and the values of the parameters were estimated by the classic nonlinear regression method following Marquardt's procedure with a 95% confidence interval. The simulation results showed that the proposed model fit well with the experimental data, and based on the experimental data and mathematical model, an optimal mass flow rate to maximize the bioprocess productivity could be proposed.
机译:塔式生物反应器中的固定化细胞利用是改善工业生物过程的主要替代品之一。制作的其他替代方案!!! - 内酰胺抗生素,例如具有Cepha-oosporiumium的游离细胞的充气搅拌罐生物反应器中的头孢菌素C喂养方法,或具有该真菌的固定细胞的塔式生物反应器,已被证明比批处理更有效。在美联储批处理中,可以通过利用辅助介质的合适流速来最小化通过利用合适的流速在合成抗生素中施加碳源(例如葡萄糖)而施加的抗粘土抑制。在该研究中,使用不同水解的蔗糖浓度的FED批塔型生物反应器进行次数持续的200小时的次数持续的200小时的几次运行。对于本研究的模型,引入了修改,以考虑补充介质流量的影响。平衡方程被认为是氧气限制在生物颗粒内的影响。在Monod型速率方程中,作为影响生物反应速率的反应包括细胞浓度,底物浓度和溶解氧。所述一组微分方程是由数值方法来解决,并且该参数的值是通过经典的非线性回归方法以下马夸特的具有95%的置信区间过程估计。仿真结果表明,该模型与实验数据均匀,并基于实验数据和数学模型,可以提出最大化生物过程生产率的最佳质量流速。

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