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PMID: 38582408 Published · ppublish English Journal Article Validation Study

Validation of a CFD model for cell culture bioreactors at large scale and its application in scale-up.

Journal of biotechnology ·Vol. 387 ·2024-05-20 ·页码 79-88

Xing Z, Duane G, O'Sullivan J, Chelius C, Smith L, Borys MC, Khetan A

Abstract

Among all the operating parameters that control the cell culture environment inside bioreactors, appropriate mixing and aeration are crucial to ensure sufficient oxygen supply, homogeneous mixing, and CO2 stripping. A model-based manufacturing facility fit approach was applied to define agitation and bottom air flow rates during the process scale-up from laboratory to manufacturing, of which computational fluid dynamics (CFD) was the core modeling tool. The realizable k-ε turbulent dispersed Eulerian gas-liquid flow model was established and validated using experimental values for the volumetric oxygen transfer coefficient (kLa). Model validation defined the process operating parameter ranges for application of the model, identified mixing issues (e.g., impeller flooding, dissolved oxygen gradients, etc.) and the impact of antifoam on kLa. Using the CFD simulation results as inputs to the models for oxygen demand, gas entrance velocity, and CO2 stripping aided in the design of the agitation and bottom air flow rates needed to meet cellular oxygen demand, control CO2 levels, mitigate risks for cell damage due to shear, foaming, as well as fire hazards due to high O2 levels in the bioreactor gas outlet. The recommended operating conditions led to the completion of five manufacturing runs with a 100% success rate. This model-based approach achieved a seamless scale-up and reduced the required number of at-scale development batches, resulting in cost and time savings of a cell culture commercialization process.

Keywords
Carbon dioxide stripping Computational fluid dynamics Gas entrance velocity Impeller flooding Oxygen demand model Process scale-up Volumetric oxygen transfer coefficient
MeSH 主题词
Bioreactors Cell Culture Techniques/methods,instrumentation Hydrodynamics Oxygen/metabolism,analysis Carbon Dioxide/metabolism Computer Simulation CHO Cells Cricetulus Models, Biological Animals
化学物质
Oxygen Carbon Dioxide
作者与单位
共 7 位作者,点击展开单位 / ORCID
Xing Zizhuo
Biologics Development and Operations, Bristol Myers Squibb Company, Devens, MA 01434, USA. Electronic address: [email protected].
Duane Gearóid
Manufacturing Science and Technology Biologics, Bristol Myers Squibb Company, Mulhuddart, Ireland.
O'Sullivan Josiah
Manufacturing Science and Technology Biologics, Bristol Myers Squibb Company, Mulhuddart, Ireland.
Chelius Cynthia
Biologics Development and Operations, Bristol Myers Squibb Company, Devens, MA 01434, USA.
Smith Laura
Biologics Development and Operations, Bristol Myers Squibb Company, Devens, MA 01434, USA.
Borys Michael C
Biologics Development and Operations, Bristol Myers Squibb Company, Devens, MA 01434, USA. Electronic address: [email protected].
Khetan Anurag
Biologics Development and Operations, Bristol Myers Squibb Company, Devens, MA 01434, USA.
Article Info
Journal
Journal of biotechnology
Abbr.
J Biotechnol
ISSN
1873-4863
Published
2024-05-20
电子出版
2024-00-04
页码
79-88
Language
English
Country/Region
Netherlands
NLM ID
8411927
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