Departament d'Enginyeria Química, Biològica i Ambiental, Universitat Autònoma de Barcelona, Cerdanyola del Vallès, Barcelona, 08193, Spain.
Austrian Centre of Industrial Biotechnology (acib GmbH), Vienna, 1010, Austria.
Biotechnol J. 2021 Apr;16(4):e2000391. doi: 10.1002/biot.202000391. Epub 2020 Dec 28.
Stable cell pools are receiving a renewed interest as a potential alternative system to clonal cell lines. The shorter development timelines and the capacity to achieve high product yields make them an interesting approach for recombinant protein production. In this study, stable High Five cell pools are assessed for the production of a simple protein, mCherry, and the more complex HIV-1 Gag-eGFP virus-like particles (VLPs). Random integration coupled to fluorescence-activated cell sorting (FACS) in suspension conditions is applied to accelerate the stable cell pool generation process and enrich it with high producer cells. This methodology is successfully transferred to a bioreactor for VLP production, resulting in a 2-fold increase in VLP yields with respect to shake flask cultures. In these conditions, maximum viable cell concentration improves by 1.5-fold, and by-product formation is significantly reduced. Remarkably, a global increase in the uptake of amino acids in the Gag-eGFP stable cell pool is observed when compared with parental High Five cells, reflecting the additional metabolic burden associated with VLP production. These results suggest that stable High Five cell pools are a robust and powerful approach to produce VLPs and other recombinant proteins, and put the basis for future studies aiming to scale up this system.
稳定细胞池作为克隆细胞系的潜在替代系统,重新引起了人们的兴趣。它们具有较短的开发时间和实现高产物产量的能力,因此是重组蛋白生产的一种有趣方法。在这项研究中,评估了稳定的 High Five 细胞池用于生产简单蛋白 mCherry 和更复杂的 HIV-1 Gag-eGFP 病毒样颗粒 (VLPs)。悬浮条件下的随机整合与荧光激活细胞分选 (FACS) 相结合,用于加速稳定细胞池的生成过程,并富集高产细胞。该方法成功地转移到生物反应器中用于 VLP 生产,与摇瓶培养相比,VLP 产量增加了 2 倍。在这些条件下,最大活细胞浓度提高了 1.5 倍,副产物形成显著减少。值得注意的是,与亲本 High Five 细胞相比,在 Gag-eGFP 稳定细胞池中观察到氨基酸摄取的整体增加,反映了与 VLP 生产相关的额外代谢负担。这些结果表明,稳定的 High Five 细胞池是生产 VLPs 和其他重组蛋白的强大而有力的方法,并为旨在扩大该系统的未来研究奠定了基础。