Abstract

Cellular therapies are emerging as a standard approach for the treatment of several diseases. However, realizing the promise of cellular therapies across the full range of treatable disorders will require large-scale, controlled, reproducible culture methods. Bioreactor systems offer the scale-up and monitoring needed, but standard stirred bioreactor cultures do not allow for the real-time regulation of key nutrients in the medium. In this study, β-TC6 insulinoma cells were aggregated and cultured for 3 weeks as a model of manufacturing a mammalian cell product. Cell expansion rates and medium nutrient levels were compared in static, stirred suspension bioreactors (SSB), and continuously fed (CF) SSB. While SSB cultures facilitated increased culture volumes, no increase in cell yields were observed, partly due to limitations in key nutrients, which were consumed by the cultures between feedings, such as glucose. Even when glucose levels were increased to prevent depletion between feedings, dramatic fluctuations in glucose levels were observed. Continuous feeding eliminated fluctuations and improved cell expansion when compared with both static and SSB culture methods. Further improvements in growth rates were observed after adjusting the feed rate based on calculated nutrient depletion, which maintained physiological glucose levels for the duration of the expansion. Adjusting the feed rate in a continuous medium replacement system can maintain the consistent nutrient levels required for the large-scale application of many cell products. Continuously fed bioreactor systems combined with nutrient regulation can be used to improve the yield and reproducibility of mammalian cells for biological products and cellular therapies and will facilitate the translation of cell culture from the research lab to clinical applications.

Highlights

  • Cell replacement therapies in humans require the production of large-scale culture of viable, functioning cells

  • Results b-TC6 Cell Expansion in Static and suspension bioreactors (SSB) Cultures In order to determine whether clusters of b-TC6 cells could be scaled up by increasing culture volume in a stirred suspension bioreactor

  • The SSB culture offers benefits when compared with static culture, Figure 1 demonstrates that there was no improvement in cellular expansion when compared to static cultures

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Summary

Introduction

Cell replacement therapies in humans require the production of large-scale culture of viable, functioning cells. Mammalian cells are typically cultured in static culture and propagated by passaging at regular intervals, with supplemental medium changes as needed This method is limited by the requirement for frequent manipulations, which results in variability of culture conditions and increased risk of contamination [3,4,5,6,7]. Stirred suspension bioreactors (SSB) can be used as an alternative to static cell culture for microorganism cultures to increase culture volume and density, and decrease handling [8] This approach has been applied to mammalian cells, including pluripotent stem cells [9,10,11,12,13,14,15,16,17,18].

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