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Effect of cell retention techniques in Komagataella phaffii lab-scale continuous processes
Marina Y Linova1, Satish K Kodiripaka1, Edite Martins1
1Department of Chemical and Biochemical Engineering, Technical University of Denmark, Kongens Lyngby, Denmark.
Biotechnology Progress
|November 19, 2025
Summary
This study compares acoustic and membrane-based perfusion processes for Komagataella phaffii continuous biomanufacturing. The acoustic-based process demonstrated higher productivity and cell retention efficiency for antibody fragment production.
Area of Science:
- Biotechnology
- Bioprocess Engineering
- Cell Culture Technology
Background:
- Perfusion technology is crucial for continuous biotherapeutic production, primarily in mammalian systems.
- Application of perfusion to alternative hosts like Komagataella phaffii is limited.
- Efficient cell retention is vital for perfusion bioreactor performance.
Purpose of the Study:
- To investigate and compare two lab-scale cell retention technologies for Komagataella phaffii continuous perfusion processes.
- To evaluate the performance of acoustic-based (AP) and membrane-based (MP) processes in terms of productivity, viability, and cell density.
- To assess the suitability of these technologies for yeast-based continuous biomanufacturing.
Main Methods:
- Development of an acoustic-based process using an acoustic cell separator (ACS).
- Development of a membrane-based process utilizing a vibrating membrane filtration (VMF) device.
- Continuous culture of Komagataella phaffii for scFv13R4 antibody fragment production over 8-9 days.
Main Results:
- Both AP and MP maintained high cell viability (>90%) and productivity over extended periods.
- AP achieved higher volumetric (50.63 mg L⁻¹ day⁻¹) and specific (1.09 mg g⁻¹ day⁻¹) productivities compared to MP (32.29 mg L⁻¹ day⁻¹ and 0.44 mg g⁻¹ day⁻¹).
- MP reached 100% separation efficiency with biomass up to 74.1 g L⁻¹ DCW, while AP achieved 98% efficiency with 55.1 g L⁻¹ DCW, showing selectivity for larger yeast cells.
Conclusions:
- Acoustic-based cell retention offers higher productivity in Komagataella phaffii perfusion processes.
- Membrane-based filtration achieves higher biomass concentration but with lower specific productivity.
- Both technologies are viable for K. phaffii continuous perfusion, with acoustic separation showing potential for enhanced yields.
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