Suppr超能文献

呼吸活性测量装置可用于确定摇床 96 深孔微量滴定板中微生物培养物的氧气传递速率。

Device for respiration activity measurement enables the determination of oxygen transfer rates of microbial cultures in shaken 96-deepwell microtiter plates.

机构信息

Chair of Biochemical Engineering (AVT.BioVT), RWTH Aachen University, Aachen, North Rhine-Westphalia, Germany.

Office Germany, Kuhner Shaker GmbH, Herzogenrath, North Rhine-Westphalia, Germany.

出版信息

Biotechnol Bioeng. 2022 Mar;119(3):881-894. doi: 10.1002/bit.28022. Epub 2022 Jan 7.

Abstract

Mini-bioreactors with integrated online monitoring capabilities are well established in the early stages of process development. Mini-bioreactors fulfil the demand for high-throughput-applications and a simultaneous reduction of material costs and total experimental time. One of the most essential online monitored parameters is the oxygen transfer rate (OTR). OTR-monitoring allows fast characterization of bioprocesses and process transfer to larger scales. Currently, OTR-monitoring on a small-scale is limited to shake flasks and 48-well microtiter plates (MTP). Especially, 96-deepwell MTP are used for high-throughput-experiments during early-stage bioprocess development. However, a device for OTR monitoring in 96-deepwell MTP is still not available. To determine OTR values, the measurement of the gas composition in each well of a MTP is necessary. Therefore, a new micro(µ)-scale Transfer rate Online Measurement device (µTOM) was developed. The µTOM includes 96 parallel oxygen-sensitive sensors and a single robust sealing mechanism. Different organisms (Escherichia coli, Hansenula polymorpha, and Ustilago maydis) were cultivated in the µTOM. The measurement precision for 96 parallel cultivations was 0.21 mmol·L ·h (pooled standard deviation). In total, a more than 15-fold increase in throughput and an up to a 50-fold decrease in media consumption, compared with the shake flask RAMOS-technology, was achieved using the µTOM for OTR-monitoring.

摘要

在工艺开发的早期阶段,具有集成在线监测功能的小型生物反应器已经得到了很好的应用。小型生物反应器满足高通量应用的需求,同时降低了材料成本和总实验时间。最基本的在线监测参数之一是氧气传递速率(OTR)。OTR 监测可以快速表征生物过程,并将其转移到更大的规模。目前,小型生物反应器的 OTR 监测仅限于摇瓶和 48 孔微量滴定板(MTP)。特别是,96 深孔 MTP 用于早期生物工艺开发过程中的高通量实验。然而,用于 96 深孔 MTP 的 OTR 监测设备仍然不可用。为了确定 OTR 值,需要测量 MTP 中每个孔的气体组成。因此,开发了一种新的微(µ)规模传递速率在线测量装置(µTOM)。µTOM 包括 96 个平行的氧敏传感器和一个单一的坚固密封机构。不同的生物(大肠杆菌、多形汉逊酵母和玉米黑粉菌)在 µTOM 中进行了培养。96 个平行培养物的测量精度为 0.21mmol·L·h(合并标准偏差)。与摇瓶 RAMOS 技术相比,使用 µTOM 进行 OTR 监测,总吞吐量增加了 15 倍以上,培养基消耗减少了 50 倍。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验