Establishment of a Perfusion Process with Antibody-Producing CHO Cells Using a 3D-Printed Microfluidic Spiral Separator with Web-Based Flow Control

Author:

Schellenberg Jana1,Dehne Michaela12,Lange Ferdinand1,Scheper Thomas1,Solle Dörte1,Bahnemann Janina2ORCID

Affiliation:

1. Institute of Technical Chemistry, Leibniz University Hannover, Callinstraße 5, 30167 Hannover, Germany

2. Institute of Physics, University of Augsburg, Universitätsstr. 1, 86159 Augsburg, Germany

Abstract

Monoclonal antibodies are increasingly dominating the market for human therapeutic and diagnostic agents. For this reason, continuous methods—such as perfusion processes—are being explored and optimized in an ongoing effort to increase product yields. Unfortunately, many established cell retention devices—such as tangential flow filtration—rely on membranes that are prone to clogging, fouling, and undesirable product retention at high cell densities. To circumvent these problems, in this work, we have developed a 3D-printed microfluidic spiral separator for cell retention, which can readily be adapted and replaced according to process conditions (i.e., a plug-and-play system) due to the fast and flexible 3D printing technique. In addition, this system was also expanded to include automatic flushing, web-based control, and notification via a cellphone application. This set-up constitutes a proof of concept that was successful at inducing a stable process operation at a viable cell concentration of 10–17 × 106 cells/mL in a hybrid mode (with alternating cell retention and cell bleed phases) while significantly reducing both shear stress and channel blockage. In addition to increasing efficiency to nearly 100%, this microfluidic device also improved production conditions by successfully separating dead cells and cell debris and increasing cell viability within the bioreactor.

Funder

German Research Foundation

Publisher

MDPI AG

Subject

Bioengineering

Reference48 articles.

1. Moyle, D. (2017). Biomanufacturing Technology Roadmap-Modular and Mobile, BioPhorum Operations Group Ltd.. Tech. Rep.

2. Perfusion mammalian cell culture for recombinant protein manufacturing—A critical review;Bielser;Biotechnol. Adv.,2018

3. The future of industrial bioprocessing: Batch or continuous?;Croughan;Biotechnol. Bioeng.,2015

4. Fed-batch and perfusion culture processes: Economic, environmental, and operational feasibility under uncertainty;Pollock;Biotechnol. Bioeng.,2013

5. Concentrated fed-batch cell culture increases manufacturing capacity without additional volumetric capacity;Yang;J. Biotechnol.,2016

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