Department of Biotechnologies, "Gr.T. Popa" University of Medicine and Pharmacy of Iasi, M. Kogalniceanu 9-13, 700454 Iasi, Romania.
J Ind Microbiol Biotechnol. 2012 Jun;39(6):877-88. doi: 10.1007/s10295-012-1095-z. Epub 2012 Feb 15.
This paper is dedicated to the study on external and internal mass transfers of glucose for succinic fermentation under substrate and product inhibitions using a bioreactor with a stationary basket bed of immobilized Actinobacillus succinogenes cells. By means of the substrate mass balance for a single particle of biocatalysts, considering the Jerusalimsky kinetic model including both inhibitory effects, specific mathematical expressions have been developed for describing the profiles of the substrate concentrations and mass flows in the outer and inner regions of biocatalyst particles, as well as for estimating the influence of internal diffusion on glucose consumption rate. The results indicated that very low values of internal mass flow could be reached in the particles center. The corresponding region was considered biologically inactive, with its extent varying from 0.24% to 44% from the overall volume of each biocatalyst. By immobilization of bacterial cells and use of a basket bed, the rate of glucose consumption is reduced up to 200 times compared with the succinic fermentation system containing free cells.
本文致力于研究在基质和产物抑制下,使用固定化 Actinobacillus succinogenes 细胞的固定篮式生物反应器,对外扩散和内扩散传质对琥珀酸发酵的影响。通过单个生物催化剂颗粒的基质质量平衡,考虑包括抑制作用的耶路撒冷动力学模型,开发了特定的数学表达式来描述生物催化剂颗粒外区和内区的基质浓度和质量流分布,并估计了内扩散对葡萄糖消耗速率的影响。结果表明,在颗粒中心可以达到非常低的内质量流值。相应的区域被认为是生物上不活跃的,其范围从每个生物催化剂总体积的 0.24%到 44%不等。通过细菌细胞的固定化和篮式床的使用,与含有游离细胞的琥珀酸发酵系统相比,葡萄糖消耗速率降低了 200 倍以上。