生物反应器
混合(物理)
过滤(数学)
中国仓鼠卵巢细胞
批处理
工艺工程
曝气
放大
过程(计算)
体积热力学
比例(比率)
材料科学
化学
计算机科学
细胞培养
生物
物理
数学
工程类
热力学
统计
操作系统
经典力学
量子力学
遗传学
有机化学
作者
Tim Bürgin,Juliana Coronel,Gerrit Hagens,Michael V. Keebler,Yvonne Genzel,Udo Reichl,Tibor Anderlei
标识
DOI:10.1007/978-1-0716-0191-4_7
摘要
Increasing the cultivation volume from small to large scale can be a rather complex and challenging process when the method of aeration and mixing is different between scales. Orbitally shaken bioreactors (OSBs) utilize the same hydrodynamic principles that define the success of smaller-scale cultures, which are developed on an orbitally shaken platform, and can simplify scale-up. Here we describe the basic working principles of scale-up in terms of the volumetric oxygen transfer coefficient (kLa) and mixing time and how to define these parameters experimentally. The scale-up process from an Erlenmeyer flask shaken on an orbital platform to an orbitally shaken single-use bioreactor (SB10-X, 12 L) is described in terms of both fed-batch and perfusion-based processes. The fed-batch process utilizes a recombinant variant of the mammalian cell line, Chinese hamster ovary (CHO), to express a biosimilar of a therapeutic monoclonal antibody. The perfusion-based process utilizes either an alternating tangential flow filtration (ATF) or a tangential flow filtration (TFF) system for cell retention to cultivate an avian cell line, AGE1.CR.pIX, for the propagation of influenza A virus, H1N1, in high cell density. Based on two example cell cultivations, processes outline the advantages that come with using an orbitally shaken bioreactor for scaling-up a process. The described methods are also applicable to other suspension cell lines.
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