Institute of Bioprocess Engineering Pharmaceutical Technology, University of Applied Sciences Mittelhessen, Giessen, Germany.
Faculty of Biology and Chemistry, Justus Liebig University, Giessen, Germany.
Biotechnol Bioeng. 2018 May;115(5):1186-1194. doi: 10.1002/bit.26538. Epub 2018 Feb 4.
Oncolytic viruses offer new hope to millions of patients with incurable cancer. One promising class of oncolytic viruses is Measles virus, but its broad administration to cancer patients is currently hampered by the inability to produce the large amounts of virus needed for treatment (10 -10 virus particles per dose). Measles virus is unstable, leading to very low virus titers during production. The time of infection and time of harvest are therefore critical parameters in a Measles virus production process, and their optimization requires an accurate online monitoring system. We integrated a probe based on dielectric spectroscopy (DS) into a stirred tank reactor to characterize the Measles virus production process in adherent growing Vero cells. We found that DS could be used to monitor cell adhesion on the microcarrier and that the optimal virus harvest time correlated with the global maximum permittivity signal. In 16 independent bioreactor runs, the maximum Measles virus titer was achieved approximately 40 hr after the permittivity maximum. Compared to an uncontrolled Measles virus production process, the integration of DS increased the maximum virus concentration by more than three orders of magnitude. This was sufficient to achieve an active Measles virus concentration of > 10 TCID ml .
溶瘤病毒为无数患有绝症的患者带来了新的希望。其中一类有前途的溶瘤病毒是麻疹病毒,但由于无法生产出治疗所需的大量病毒(每剂量 10 -10 个病毒颗粒),其广泛用于癌症患者目前受到阻碍。麻疹病毒不稳定,导致在生产过程中病毒滴度非常低。因此,感染时间和收获时间是麻疹病毒生产过程中的关键参数,其优化需要精确的在线监测系统。我们将基于介电谱(DS)的探头集成到搅拌槽反应器中,以表征贴壁生长的 Vero 细胞中的麻疹病毒生产过程。我们发现 DS 可用于监测微载体上的细胞黏附,并且最佳病毒收获时间与全局最大介电常数信号相关。在 16 个独立的生物反应器运行中,在介电常数达到最大值后大约 40 小时即可达到最大麻疹病毒滴度。与未控制的麻疹病毒生产过程相比,DS 的集成将最大病毒浓度提高了三个数量级以上。这足以达到 >10 TCID ml 的有效麻疹病毒浓度。