Laboratory of Bioprocess Engineering, Department of Biotechnology, Technische Universität Berlin, Ackerstrasse 71-76, D-13355 Berlin, Germany.
Microb Cell Fact. 2010 May 30;9:42. doi: 10.1186/1475-2859-9-42.
Single-use rocking-motion-type bag bioreactors provide advantages compared to standard stirred tank bioreactors by decreased contamination risks, reduction of cleaning and sterilization time, lower investment costs, and simple and cheaper validation. Currently, they are widely used for cell cultures although their use for small and medium scale production of recombinant proteins with microbial hosts might be very attractive. However, the utilization of rocking- or wave-induced motion-type bioreactors for fast growing aerobic microbes is limited because of their lower oxygen mass transfer rate. A conventional approach to reduce the oxygen demand of a culture is the fed-batch technology. New developments, such as the BIOSTAT CultiBag RM system pave the way for applying advanced fed-batch control strategies also in rocking-motion-type bioreactors. Alternatively, internal substrate delivery systems such as EnBase Flo provide an opportunity for adopting simple to use fed-batch-type strategies to shaken cultures. Here, we investigate the possibilities which both strategies offer in view of high cell density cultivation of E. coli and recombinant protein production.
Cultivation of E. coli in the BIOSTAT CultiBag RM system in a conventional batch mode without control yielded an optical density (OD(600)) of 3 to 4 which is comparable to shake flasks. The culture runs into oxygen limitation. In a glucose limited fed-batch culture with an exponential feed and oxygen pulsing, the culture grew fully aerobically to an OD(600) of 60 (20 g L(-1) cell dry weight). By the use of an internal controlled glucose delivery system, EnBase Flo, OD(600) of 30 (10 g L(-1) cell dry weight) is obtained without the demand of computer controlled external nutrient supply. EnBase Flo also worked well in the CultiBag RM system with a recombinant E. coli RB791 strain expressing a heterologous alcohol dehydrogenase (ADH) to very high levels, indicating that the enzyme based feed supply strategy functions well for recombinant protein production also in a rocking-motion-type bioreactor.
Rocking-motion-type bioreactors may provide an interesting alternative to standard cultivation in bioreactors for cultivation of bacteria and recombinant protein production. The BIOSTAT Cultibag RM system with the single-use sensors and advanced control system paves the way for the fed-batch technology also to rocking-motion-type bioreactors. It is possible to reach cell densities which are far above shake flasks and typical for stirred tank reactors with the improved oxygen transfer rate. For more simple applications the EnBase Flo method offers an easy and robust solution for rocking-motion-systems which do not have such advanced control possibilities.
与标准搅拌槽生物反应器相比,一次性 rocking-motion-type 袋式生物反应器具有降低污染风险、减少清洗和消毒时间、降低投资成本以及简化和降低验证成本等优点。目前,它们被广泛用于细胞培养,尽管它们在使用微生物宿主进行小批量和中批量生产重组蛋白方面可能非常有吸引力。然而,由于其较低的氧气传质速率,rocking- 或 wave-induced 运动型生物反应器的利用受到限制,用于快速生长的需氧微生物。一种降低培养物氧气需求的常规方法是补料分批技术。新的发展,如 BIOSTAT CultiBag RM 系统为在 rocking-motion-type 生物反应器中应用先进的补料分批控制策略铺平了道路。或者,内部基质输送系统,如 EnBase Flo,为采用简单易用的补料分批型策略提供了机会,适用于摇动培养物。在这里,我们研究了这两种策略在大肠杆菌高密度培养和重组蛋白生产方面提供的可能性。
在 BIOSTAT CultiBag RM 系统中以传统分批模式培养大肠杆菌而不进行控制,得到的光密度(OD(600))为 3 到 4,与摇瓶相当。培养物进入氧气限制阶段。在葡萄糖限制的补料分批培养中,采用指数进料和氧气脉冲,培养物完全好氧生长至 OD(600)为 60(20 g L(-1)细胞干重)。通过使用内部受控葡萄糖输送系统 EnBase Flo,即使不需要计算机控制的外部养分供应,也可以获得 OD(600)为 30(10 g L(-1)细胞干重)。EnBase Flo 在装有表达异源醇脱氢酶(ADH)的重组大肠杆菌 RB791 菌株的 CultiBag RM 系统中也运行良好,表明基于酶的进料供应策略在 rocking-motion-type 生物反应器中也能很好地用于重组蛋白生产。
rocking-motion-type 生物反应器可能为细菌培养和重组蛋白生产提供一种有吸引力的替代标准培养方法。BIOSTAT Cultibag RM 系统与一次性传感器和先进控制系统相结合,为 rocking-motion-type 生物反应器中的补料分批技术铺平了道路。通过提高氧气传质速率,可以达到远高于摇瓶和典型搅拌槽反应器的细胞密度。对于更简单的应用,EnBase Flo 方法为没有这种先进控制可能性的 rocking-motion-systems 提供了一种简单而强大的解决方案。