Diffusion-driven fed-batch fermentation in perforated ring flasks.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
ACS Applied Bio Materials Pub Date : 2024-08-01 Epub Date: 2024-05-17 DOI:10.1007/s10529-024-03493-0
Clara Lüchtrath, Felix Lamping, Sven Hansen, Maurice Finger, Jørgen Magnus, Jochen Büchs
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引用次数: 0

Abstract

Purpose: Simultaneous membrane-based feeding and monitoring of the oxygen transfer rate shall be introduced to the newly established perforated ring flask, which consists of a cylindrical glass flask with an additional perforated inner glass ring, for rapid bioprocess development.

Methods: A 3D-printed adapter was constructed to enable monitoring of the oxygen transfer rate in the perforated ring flasks. Escherichia coli experiments in batch were performed to validate the adapter. Fed-batch experiments with different diffusion rates and feed solutions were performed.

Results: The adapter and the performed experiments allowed a direct comparison of the perforated ring flasks with Erlenmeyer flasks. In batch cultivations, maximum oxygen transfer capacities of 80 mmol L-1 h-1 were reached with perforated ring flasks, corresponding to a 3.5 times higher capacity than in Erlenmeyer flasks. Fed-batch experiments with a feed reservoir concentration of 500 g glucose L-1 were successfully conducted. Based on the oxygen transfer rate, an ammonium limitation could be observed. By adding 40 g ammonium sulfate L-1 to the feed reservoir, the limitation could be prevented.

Conclusion: The membrane-based feeding, an online monitoring technique, and the perforated ring flask were successfully combined and offer a new and promising tool for screening and process development in biotechnology.

Abstract Image

穿孔环形烧瓶中的扩散驱动饲料批量发酵。
目的:新建立的穿孔环形烧瓶由一个圆柱形玻璃烧瓶和一个额外的穿孔内玻璃环组成,应将基于膜的进料和氧气传输速率监测同时引入该烧瓶,以实现快速生物工艺开发:方法:制作了一个三维打印适配器,用于监测穿孔环形烧瓶中的氧气转移率。为验证适配器,进行了批量大肠杆菌实验。此外,还进行了不同扩散速率和进料溶液的批量给料实验:结果:通过适配器和所进行的实验,可以直接比较带孔环形烧瓶和埃伦迈尔烧瓶。在批量培养过程中,穿孔环形烧瓶的最大氧气传输能力达到 80 mmol L-1 h-1,是埃尔伦迈尔烧瓶的 3.5 倍。成功地进行了原料储存浓度为 500 葡萄糖 L-1 的喂料批实验。根据氧气转移率,可以观察到铵的限制。通过在饲料池中添加 40 克硫酸铵 L-1,可以防止氨限制:结论:基于膜的进料、在线监测技术和多孔环形烧瓶成功地结合在一起,为生物技术领域的筛选和工艺开发提供了一种新的、有前途的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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