Forschungszentrum Jülich, Institute of Bio- and Geosciences, Biotechnology (IBG-1), Jülich, Germany.
Bioeconomy Science Center (BioSC), Forschungszentrum Jülich GmbH, Jülich, Germany.
Bioprocess Biosyst Eng. 2019 Nov;42(11):1843-1852. doi: 10.1007/s00449-019-02180-z. Epub 2019 Aug 9.
With the advent of modern genetic engineering methods, microcultivation systems have become increasingly important tools for accelerated strain phenotyping and bioprocess engineering. While these systems offer sophisticated capabilities to screen batch processes, they lack the ability to realize fed-batch processes, which are used more frequently in industrial bioprocessing. In this study, a novel approach to realize a feedback-regulated enzyme-based slow-release system (FeedER), allowing exponential fed-batch for microscale cultivations, was realized by extending our existing Mini Pilot Plant technology with a customized process control system. By continuously comparing the experimental growth rates with predefined set points, the automated dosage of Amyloglucosidase enzyme for the cleavage of dextrin polymers into D-glucose monomers is triggered. As a prerequisite for stable fed-batch operation, a constant pH is maintained by automated addition of ammonium hydroxide. We show the successful application of FeedER to study fed-batch growth of different industrial model organisms including Corynebacterium glutamicum, Pichia pastoris, and Escherichia coli. Moreover, the comparative analysis of a C. glutamicum GFP producer strain, cultivated under microscale batch and fed-batch conditions, revealed two times higher product yields under slow growing fed-batch operation. In summary, FeedER enables to run 48 parallel fed-batch experiments in an automated and miniaturized manner, and thereby accelerates industrial bioprocess development at the screening stage.
随着现代基因工程方法的出现,微量培养系统已成为加速菌株表型分析和生物工艺工程的重要工具。虽然这些系统提供了用于筛选批处理过程的复杂功能,但它们缺乏实现更频繁用于工业生物加工的补料分批过程的能力。在这项研究中,通过使用定制的过程控制系统扩展我们现有的 Mini Pilot Plant 技术,实现了一种新颖的方法来实现基于酶的反馈调节的缓慢释放系统(FeedER),从而可以在微尺度培养中进行指数补料分批。通过不断将实验增长率与预定义的设定点进行比较,自动触发用于将糊精聚合物切割成 D-葡萄糖单体的淀粉葡糖苷酶的剂量。作为稳定补料分批操作的前提条件,通过自动添加氨来维持恒定的 pH 值。我们展示了 FeedER 在研究不同工业模型生物(包括谷氨酸棒杆菌、巴斯德毕赤酵母和大肠杆菌)的补料分批生长中的成功应用。此外,对在微尺度分批和补料分批条件下培养的谷氨酸棒杆菌 GFP 生产菌株进行的比较分析表明,在缓慢生长的补料分批操作下,产物产率提高了两倍。总之,FeedER 能够以自动化和微型化的方式运行 48 个平行的补料分批实验,从而在筛选阶段加速工业生物工艺的发展。