Department of Chemical Engineering, Villanova University, Villanova, Pennsylvania, 19085, USA.
Redbud Labs Inc., Research Triangle Park, North Carolina, 27709, USA.
Biotechnol J. 2021 May;16(5):e2000257. doi: 10.1002/biot.202000257. Epub 2021 Mar 11.
Bioprocess optimization for cell-based therapies is a resource heavy activity. To reduce the associated cost and time, process development may be carried out in small volume systems, with the caveat that such systems be predictive for process scale-up. The transport of oxygen from the gas phase into the culture medium, characterized using the volumetric mass transfer coefficient, k a, has been identified as a critical parameter for predictive process scale-up. Here, we describe the development of a 96-well microplate with integrated Redbud Posts to provide mixing and enhanced k a. Mixing in the microplate is characterized by observation of dyes and analyzed using the relative mixing index (RMI). The k a is measured via dynamic gassing out method. Actuating Redbud Posts are shown to increase rate of planar homogeneity (2 min) verse diffusion alone (120 min) and increase oxygenation, with increasing stirrer speed (3500-9000 rpm) and decreasing fill volume (150-350 μL) leading to an increase in k a (4-88 h ). Significant increase in Chinese Hamster Ovary growth in Redbud Labs vessel (580,000 cells mL ) versus the control (420,000 cells mL ); t(12.814) = 8.3678, p ≤ .001), and CD4 Naïve cell growth in the microbioreactor indicates the potential for this technology in early stage bioprocess development and optimization.
用于细胞治疗的生物工艺优化是一项资源密集型活动。为了降低相关成本和时间,工艺开发可以在小体积系统中进行,但需要注意的是,此类系统应可预测工艺放大。使用体积传质系数 k a 来描述气相中的氧气向培养基中的传输,已被确定为可预测工艺放大的关键参数。在这里,我们描述了一种带有集成 Redbud Posts 的 96 孔微孔板的开发,以提供混合和增强的 k a 。通过观察染料并使用相对混合指数 (RMI) 进行分析来描述微孔板中的混合。通过动态吹气法测量 k a 。Redbud Posts 的驱动被证明可以提高平面均匀度的速率(2 分钟),而不是仅靠扩散(120 分钟),并且随着搅拌速度(3500-9000 rpm)的增加和填充体积(150-350 μL)的减少,可增加 k a (4-88 h )。与对照相比,Redbud Labs 容器中的中国仓鼠卵巢生长显著增加(580,000 个细胞 mL );t(12.814) = 8.3678,p ≤.001),微生物反应器中 CD4 Naïve 细胞的生长表明该技术在早期生物工艺开发和优化中的潜力。