A.I. Virtanen Institute for Molecular Sciences, University of Eastern Finland, Kuopio, Finland.
FinVector Vision Therapies, Kuopio, Finland.
Gene Ther. 2018 Jan;25(1):39-46. doi: 10.1038/gt.2017.91. Epub 2017 Oct 5.
Lentiviral vectors (LVs) are promising tools for gene therapy. However, scaling up the production methods of LVs in order to produce high-quality vectors for clinical purposes has proven to be difficult. In this article, we present a scalable and efficient method to produce LVs with transient transfection of adherent 293T cells in a fixed-bed bioreactor. The disposable iCELLis bioreactors are scalable with a large three-dimensional (3D) growth area range between 0.53 and 500 m, an integrated perfusion system, and a controllable environment for production. In this study, iCELLis Nano (2.67-4 m) was used for optimizing production parameters for scale-up. Transfections were first done using traditional calcium phosphate method, but in later runs polyethylenimine was found to be more reliable and easier to use. For scalable LV production, perfusion rate control by measuring cell metabolite concentrations in the bioreactor leads to higher productivity and reduced costs. Optimization of cell seeding density for targeted cell concentration during transfection, use of low compaction fixed-bed and lowering the culture pH have a positive effect on LV productivity. These results show for the first time that iCELLis bioreactor is scalable from bench level to clinical scale LV production.
慢病毒载体(LVs)是基因治疗的有前途的工具。然而,为了生产用于临床目的的高质量载体,大规模生产 LVs 的方法已被证明具有挑战性。在本文中,我们提出了一种可扩展且高效的方法,即在固定床生物反应器中使用贴壁 293T 细胞的瞬时转染来生产 LVs。一次性 iCELLis 生物反应器具有可扩展性,其三维(3D)生长面积范围在 0.53 到 500m 之间,具有集成的灌注系统和可控制的生产环境。在这项研究中,iCELLis Nano(2.67-4m)用于优化放大生产参数。最初使用传统的磷酸钙法进行转染,但在后续的运行中发现聚乙二胺更可靠且更易于使用。对于可扩展的 LV 生产,通过测量生物反应器中细胞代谢物浓度来控制灌注率可提高生产力并降低成本。在转染过程中,优化靶向细胞浓度的细胞接种密度、使用低压实固定床和降低培养 pH 值对 LV 生产力有积极影响。这些结果首次表明,iCELLis 生物反应器可从台式水平扩展到临床规模的 LV 生产。