Soons Zita I T A, van den IJssel Jan, van der Pol Leo A, van Straten Gerrit, van Boxtel Anton J B
Systems and Control Group, Wageningen University, P. O. Box 17, 6700 AA Wageningen, The Netherlands.
Bioprocess Biosyst Eng. 2009 Apr;32(3):289-99. doi: 10.1007/s00449-008-0248-y. Epub 2008 Jul 31.
This study considers two aspects of the implementation of a biomass growth observer and specific growth rate controller in scale-up from small- to pilot-scale bioreactors towards a feasible bulk production process for whole-cell vaccine against whooping cough. The first is the calculation of the oxygen uptake rate, the starting point for online monitoring and control of biomass growth, taking into account the dynamics in the gas-phase. Mixing effects and delays are caused by amongst others the headspace and tubing to the analyzer. These gas phase dynamics are modelled using knowledge of the system in order to reconstruct oxygen consumption. The second aspect is to evaluate performance of the monitoring and control system with the required modifications of the oxygen consumption calculation on pilot-scale. In pilot-scale fed-batch cultivation good monitoring and control performance is obtained enabling a doubled concentration of bulk vaccine compared to standard batch production.
本研究考虑了在从实验室规模到中试规模生物反应器放大过程中,为百日咳全细胞疫苗建立可行的批量生产工艺而实施生物质生长监测器和比生长速率控制器的两个方面。第一个方面是氧气摄取率的计算,这是在线监测和控制生物质生长的起点,同时考虑到气相中的动力学。混合效应和延迟主要由顶空和通向分析仪的管道引起。利用系统知识对这些气相动力学进行建模,以重建氧气消耗。第二个方面是在中试规模上评估监测和控制系统的性能,并对氧气消耗计算进行必要的修正。在中试规模的补料分批培养中,获得了良好的监测和控制性能,与标准分批生产相比,批量疫苗的浓度提高了一倍。