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PMID: 35869293 Published · ppublish English Journal Article

Evaluating shear in perfusion rotary lobe pump using nanoparticle aggregates and computational fluid dynamics.

Bioprocess and biosystems engineering ·Vol. 45 ·No. 9 ·2022-09-00 ·页码 1477-1488

Amer M, Vaca A, Bowden M

Abstract

Perfusion cell culture technology has gained a lot of interest in recent years in the biopharmaceutical industry. One common application is N-1 perfusion which is used to intensify fed batch production processes and increase facility output. Upon running our perfusion process for the first time at manufacturing scale, unexpected cell damage was observed. Reducing the recirculation pump speed resulted in improvements in cell viability which implied the impact of pump shear stress on cell viability. In this study, we used polymethyl methacrylate (PMMA) nanoparticles to determine the shear stress inside two different sized rotary lobe pumps used in N-1 perfusion. The results were used to validate a computational fluid dynamics (CFD) model to predict the maximum shear under different operating conditions of the pump. The CFD model identified the radial and mesh clearance zones as regions that experience the maximum shear stress inside the pump. The model was then used to evaluate the impact of different geometry modifications in the pump lobes, and it predicted a 17% reduction in the maximum shear stress by increasing the mesh and radial clearances by 0.08 mm and 0.13 mm, respectively. The study indicates that CFD can be a useful tool to predict shear stress inside rotary pumps. The results can be used to optimize the pump operating conditions or even customize the pump geometry to save time and cost of process scaling to manufacturing without compromising the preset operating conditions or critical scale-up parameters.

Keywords
Cell Culture Computational fluid dynamics Perfusion Rotary lobe pump Shear
MeSH 主题词
Computer Simulation Hemolysis Humans Hydrodynamics Nanoparticles Perfusion Stress, Mechanical
作者与单位
共 3 位作者,点击展开单位 / ORCID
Amer Momen ORCID
Cell Culture Development, Biogen, 5000 Davis Drive, Research Triangle Park, NC, 27709, USA. [email protected].
Vaca Alex
Gene Therapy Cell Culture, Biogen, Cambridge, MA, 02142, USA.
Bowden Marshall
Drug Substance Pilot Development, Biogen, 5000 Davis Drive, Research Triangle Park, NC, 27709, USA.
Article Info
Journal
Bioprocess and biosystems engineering
Abbr.
Bioprocess Biosyst Eng
ISSN
1615-7605
Corresponding email
Published
2022-09-00
电子出版
2022-00-23
页码
1477-1488
Language
English
Country/Region
Germany
NLM ID
101088505
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