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PMID: 36442862 Published · ppublish English Journal Article

Computational fluid dynamics simulation improves the design and characterization of a plug-flow-type scale-down reactor for microbial cultivation processes.

Biotechnology journal ·Vol. 18 ·No. 1 ·2023-01-00 ·页码 e2200152

Mayer F, Cserjan-Puschmann M, Haslinger B, Shpylovyi A, Sam C, Soos M, Hahn R, Striedner G

Abstract

The scale-up of bioprocesses remains one of the major obstacles in the biotechnology industry. Scale-down bioreactors have been identified as valuable tools to investigate the heterogeneities observed in large-scale tanks at the laboratory scale. Additionally, computational fluid dynamics (CFD) simulations can be used to gain information about fluid flow in tanks used for production. Here, we present the rational design and comprehensive characterization of a scale-down setup, in which a flexible and modular plug-flow reactor was connected to a stirred-tank bioreactor. With the help of CFD using the realizable k-ε model, the mixing time difference between a 20 and 4000 L bioreactor was evaluated and used as scale-down criterion. CFD simulations using a shear stress transport (SST) k-ω turbulence model were used to characterize the plug-flow reactor in more detail, and the model was verified using experiments. Additionally, the model was used to simulate conditions where experiments technically could not be performed due to sensor limitations. Nevertheless, verification is difficult in this case as well. This was the first time a scale-down setup was tested on high-cell-density Escherichia coli cultivations to produce industrially relevant antigen-binding fragments (Fab). Biomass yield was reduced by 11% and specific product yield was reduced by 20% during the scale-down cultivations. Additionally, the intracellular Fab fraction was increased by using the setup. The flexibility of the introduced scale-down setup in combination with CFD simulations makes it a valuable tool for investigating scale effects at the laboratory scale. More information about the large scale is still necessary to further refine the setup and to speed up bioprocess scale-up in the future.

Keywords
CFD E. coli cultivation fab plug-flow reactor scale-down
MeSH 主题词
Hydrodynamics Bioreactors Computer Simulation Biotechnology Biomass Escherichia coli/genetics
作者与单位
共 8 位作者,点击展开单位 / ORCID
Mayer Florian
Department of Biotechnology, Institute of Bioprocess Science and Engineering, University of Natural Resources and Life Sciences, Vienna, Austria.
Cserjan-Puschmann Monika
Department of Biotechnology, Institute of Bioprocess Science and Engineering, University of Natural Resources and Life Sciences, Vienna, Austria.
Haslinger Benedikt
Department of Biotechnology, Institute of Bioprocess Science and Engineering, University of Natural Resources and Life Sciences, Vienna, Austria.
Shpylovyi Anton
Department of Biotechnology, Institute of Bioprocess Science and Engineering, University of Natural Resources and Life Sciences, Vienna, Austria.
Sam Christian
Boehringer Ingelheim RCV GmbH & Co KG, Vienna, Austria.
Soos Miroslav
Department of Chemical Engineering, University of Chemistry and Technology Prague, Praha, Czech Republic.
Hahn Rainer
Department of Biotechnology, Institute of Bioprocess Science and Engineering, University of Natural Resources and Life Sciences, Vienna, Austria.
Striedner Gerald
Department of Biotechnology, Institute of Bioprocess Science and Engineering, University of Natural Resources and Life Sciences, Vienna, Austria.
Article Info
Journal
Biotechnology journal
Abbr.
Biotechnol J
ISSN
1860-7314
Published
2023-01-00
电子出版
2022-00-28
页码
e2200152
Language
English
Country/Region
Germany
NLM ID
101265833
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