AVT-Biochemical Engineering, RWTH Aachen University, Aachen, Germany.
Biotechnol Prog. 2024 Sep-Oct;40(5):e3468. doi: 10.1002/btpr.3468. Epub 2024 Apr 11.
Cell line generation of mammalian cells is a time-consuming and labor-intensive process, especially because of challenges in clone selection after transfection. Antibiotics are common selection agents for mammalian cells due to their simplicity of use. However, the optimal antibiotic concentration must be determined with a kill curve experiment before clone selection starts. The traditional kill curve experiments are resource-intensive and time-consuming due to necessary sampling and offline analysis effort. This study, thus, explores the potential of online monitoring the oxygen transfer rate (OTR), as a non-invasive and efficient alternative for kill curve experiments. The OTR is monitored using the Transfer-rate Online Measurement (TOM) system and the micro(μ)-scale Transfer-rate Online Measurement (μTOM) device, which was used for mammalian cells first. It could be shown that the OTR curves for both devices align perfectly, affirming consistent cultivation conditions. The μTOM device proves effective in performing kill curve experiments in 96-deep-well plates without the need for sampling and offline analysis. The streamlined approach reduces medium consumption by 95%, offering a cost-effective and time-efficient solution for kill curve experiments. The study validates the generalizability of the method by applying it to two different CHO cell lines (CHO-K1 and sciCHO) with two antibiotics (puromycin and hygromycin B) each. In conclusion, the broad application of OTR online monitoring for CHO cell cultures in 96-deep-well plates is highlighted. The μTOM device proves as a valuable tool for high-throughput experiments, paving the way for diverse applications, such as media and clone screening, cytotoxicity tests, and scale-up experiments.
哺乳动物细胞系的生成是一个耗时耗力的过程,尤其是在转染后进行克隆选择时。由于抗生素使用简单,因此它们是哺乳动物细胞常用的选择剂。然而,在开始克隆选择之前,必须通过杀伤曲线实验确定最佳抗生素浓度。由于需要采样和离线分析,传统的杀伤曲线实验既耗费资源又耗时。因此,本研究探索了在线监测氧传递率(OTR)的潜力,将其作为杀伤曲线实验的一种非侵入性和高效替代方法。使用 Transfer-rate Online Measurement (TOM) 系统和微(μ)尺度 Transfer-rate Online Measurement (μTOM) 设备监测 OTR,这是首次将 μTOM 设备用于哺乳动物细胞。结果表明,两种设备的 OTR 曲线完全吻合,证实了一致的培养条件。μTOM 设备可在 96 孔深孔板中进行杀伤曲线实验,无需采样和离线分析,非常有效。这种简化方法将培养基消耗减少了 95%,为杀伤曲线实验提供了经济高效、节省时间的解决方案。该研究通过将该方法应用于两种不同的 CHO 细胞系(CHO-K1 和 sciCHO)和两种抗生素(嘌呤霉素和潮霉素 B),验证了该方法的通用性。总之,强调了 OTR 在线监测在 96 孔深孔板中的 CHO 细胞培养中的广泛应用。μTOM 设备是高通量实验的有价值工具,为介质和克隆筛选、细胞毒性测试和放大实验等多种应用铺平了道路。