Theoretical and Practical Issues That Are Relevant When Scaling Up hMSC Microcarrier Production Processes

Author:

Jossen Valentin1,Schirmer Cedric1,Mostafa Sindi Dolman1,Eibl Regine1,Kraume Matthias2,Pörtner Ralf3,Eibl Dieter1

Affiliation:

1. Institute of Chemistry and Biotechnology, Zurich University of Applied Sciences, Campus Grüental, 8820 Wädenswil, Switzerland

2. Department of Process Engineering, Chair of Chemical and Process Engineering, Technical University of Berlin, Strasse des 17.Juni 135, 10623 Berlin, Germany

3. Department of Bioprocess and Biosystems Engineering, Technical University of Hamburg, Denickestrasse 1, 21073 Hamburg, Germany

Abstract

The potential of human mesenchymal stem cells (hMSCs) for allogeneic cell therapies has created a large amount of interest. However, this presupposes the availability of efficient scale-up procedures. Promising results have been reported for stirred bioreactors that operate with microcarriers. Recent publications focusing on microcarrier-based stirred bioreactors have demonstrated the successful use of Computational Fluid Dynamics (CFD) and suspension criteria (NS1u,NS1) for rapidly scaling up hMSC expansions from mL- to pilot scale. Nevertheless, one obstacle may be the formation of large microcarrier-cell-aggregates, which may result in mass transfer limitations and inhomogeneous distributions of stem cells in the culture broth. The dependence of microcarrier-cell-aggregate formation on impeller speed and shear stress levels was investigated for human adipose derived stromal/stem cells (hASCs) at the spinner scale by recording the Sauter mean diameter (d32) versus time. Cultivation at the suspension criteria providedd32values between 0.2 and 0.7 mm, the highest cell densities (1.25 × 106cells mL−1hASCs), and the highest expansion factors (117.0 ± 4.7 on day 7), while maintaining the expression of specific surface markers. Furthermore, suitability of the suspension criterionNS1uwas investigated for scaling up microcarrier-based processes in wave-mixed bioreactors for the first time.

Funder

Commission for Technology and Innovation in Switzerland

Publisher

Hindawi Limited

Subject

Cell Biology,Molecular Biology

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