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Harvesting AAV by tangential flow filtration using reverse asymmetric membranes
Xiaolei Hao1, Ronny Horax2, Xianghong Qian1
1Department of Biomedical Engineering, University of Arkansas, Fayetteville, Arkansas, USA.
Biotechnology Progress
|August 4, 2025
Summary
This study demonstrates reverse asymmetric hollow fiber membranes effectively harvest adeno-associated virus (AAV). Optimized flow rates and transmembrane pressure ensure high permeability and 94% virus recovery during bioreactor clarification.
Area of Science:
- Biotechnology
- Membrane Filtration
- Virology
Background:
- Efficient bioreactor clarification for virus particle harvesting is a significant challenge in biopharmaceutical production.
- Tangential flow filtration (TFF) offers a scalable solution adaptable to various bioprocessing operations.
Purpose of the Study:
- To investigate the feasibility of using reverse asymmetric hollow fiber membranes for harvesting adeno-associated virus serotype 2 (AAV2).
- To determine the critical flux and optimize operating parameters for stable and efficient AAV2 recovery.
Main Methods:
- Utilized reverse asymmetric hollow fiber membranes with the open support structure facing the feed stream.
- Conducted flux stepping experiments in total recycle mode to determine critical flux.
- Performed AAV2 harvesting at a wall shear rate of 2000 s⁻¹ and a permeate flux of 15 Lm⁻²h⁻¹.
Main Results:
- Critical flux increased with increasing wall shear rate, indicating improved membrane stability at higher flow rates.
- A stable transmembrane pressure of 3.5 kPa was maintained during concentration and diafiltration.
- Achieved a high virus recovery rate of 94% with minimal product dilution.
Conclusions:
- Reverse asymmetric hollow fiber membranes are effective for AAV2 harvesting, offering a stable and permeable secondary membrane.
- Optimized operating conditions, including wall shear rate and transmembrane pressure, are crucial for maximizing virus recovery and process efficiency.

