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首页> 外文期刊>Biotechnology and Bioengineering >Real-time dissolved carbon dioxide monitoring II: Surface aeration intensification for efficient CO2 removal in shake flasks and mini-bioreactors leads to superior growth and recombinant protein yields
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Real-time dissolved carbon dioxide monitoring II: Surface aeration intensification for efficient CO2 removal in shake flasks and mini-bioreactors leads to superior growth and recombinant protein yields

机译:实时溶解二氧化碳监测II:表面曝气增强用于摇瓶中的有效CO2去除,迷你生物反应器导致优异的生长和重组蛋白质产量

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Mass transfer is known to play a critical role in bioprocess performance and henceforth monitoring dissolved O-2 (DO) and dissolved CO2 (dCO(2)) is of paramount importance. At bioreactor level these parameters can be monitored online and can be controlled by sparging air/oxygen or stirrer speed. However, traditional small-scale systems such as shake flasks lack real time monitoring and also employ only surface aeration with additional diffusion limitations imposed by the culture plug. Here we present implementation of intensifying surface aeration by sparging air in the headspace of the reaction vessel and real-time monitoring of DO and dCO(2) in the bioprocesses to evaluate the impact of intensified surface aeration. We observed that sparging air in the headspace allowed us to keep dCO(2) at low level, which significantly improved not only biomass growth but also protein yield. We expect that implementing such controlled smart shake flasks can minimize the process development gap which currently exists in shake flask level and bioreactor level results.
机译:已知传质在生物过程性能下发挥关键作用,因此从此监测溶解O-2(DO)和溶解二氧化碳(DCO(2))是至关重要的。在生物反应器级别,可以在线监测这些参数,可以通过喷射空气/氧气或搅拌器速度来控制。然而,摇动烧瓶等传统小规模系统缺乏实时监测,并且仅采用培养塞施加的附加扩散限制的表面通气。在这里,我们通过在反应血管顶部空气中喷射空气和生物过程中的DO和DCO(2)的实时监测来提供强化表面通气的实施,以评估强化表面通气的影响。我们观察到,顶部空间中的喷射空气使我们能够在低水平下保持DCO(2),这不仅显着改善了生物量增长,也显着改善了蛋白质产量。我们预计实施这种受控的智能震动烧瓶可以最小化当前存在于摇瓶水平和生物反应器级别的过程开发间隙。

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