2018 Rodrigues et al. - Scalable Culture of Human Induced Pluripotent Cells on Microcarriers Under Xeno-Free Conditions
First report of expanding human iPSCs in Vertical-Wheel® single-use bioreactors under xeno-free conditions. Vitronectin-coated microcarriers and E8 medium supported scalable expansion in 100 mL and 500 mL bioreactors while maintaining pluripotency, normal karyotype, and differentiation capacity. The study demonstrates a GMP-compatible approach for scalable iPSC manufacturing.
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This study combines CFD simulations with hPSC suspension culture experiments to investigate scale-up in Vertical-Wheel® bioreactors. The authors compare conventional Eulerian metrics, including volume-averaged shear stress and energy dissipation rate (EDR), with Lagrangian analysis of aggregate trajectories. Aggregate size, agitation rate, and bioreactor scale were shown to influence hydrodynamic exposure, while EDR correlated more strongly with aggregation efficiency, aggregate size, and cell expansion than shear stress. The findings highlight the value of tracking aggregate exposure histories to guide more representative scale-up and agitation strategies for hPSC manufacturing in Vertical-Wheel bioreactors.
This white paper examines the cost and operational advantages of scaling cell therapy manufacturing with Vertical-Wheel® bioreactors compared with planar culture and stirred-tank systems. It evaluates expansion efficiency, labor, facility footprint, process consistency, contamination risk, and cell quality. Published studies in hiPSCs and MSCs are used to assess yield, handling requirements, reproducibility, viability, phenotype, potency, and scale-up performance. A side-by-side cost comparison, including a 3 L PBS Biotech system, illustrates how Vertical-Wheel bioreactors can support a more streamlined and scalable manufacturing approach while recognizing that actual costs depend on the specific process.
This protocol provides step-by-step guidance for transitioning pluripotent stem cells (PSCs) from 2D adherent culture to scalable 3D aggregate culture using the PBS-Mini Vertical-Wheel® bioreactor. It covers seed train preparation, inoculation, aggregate formation, expansion, media exchange, sampling, morphology assessment, cell counting, viability analysis, and harvest. Workflows are provided for both PBS-Mini 0.1 and 0.5 vessels, including aggregate dissociation in conical tubes or directly within the bioreactor. The protocol offers a practical starting point for developing, optimizing, and scaling robust PSC aggregate processes on the PBS Vertical-Wheel platform.
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