高灵敏度实时监测pH值和呼吸活动揭示了摇瓶培养的代谢动力学。

IF 2.5 3区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Burak Sarikaya, Karsten Günster, Luca Antonia Grebe, Eva Forsten, Katharina Hürter, Jochen Büchs, Jørgen Magnus
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引用次数: 0

摘要

Erlenmeyer摇瓶在生物工艺开发的第一步被广泛使用。尽管摇瓶在学术界和工业界应用广泛,但通常缺乏标准化和用户友好的在线监测技术。在这项工作中,pH和呼吸活动监测系统(pH- ramos)用于无创在线测量氧传递速率(OTR),二氧化碳传递速率(CTR)和pH在多达八个平行摇瓶无菌条件下。使用专用的氧气和二氧化碳传感器在摇瓶的顶空准连续测量OTR和CTR,从而实现精确的呼吸商(RQ)评估。自粘pH传感器点用于培养物的高频实时pH监测。这些原型pH传感器点因其简单的灭菌性和随后在培养基中的一点校准而脱颖而出。在为期28天的非生物实验中评估pH传感器斑点的长期稳定性。用多态Ogataea polymorpha、毛霉黑穗病菌Ustilago trichophora和营养弧菌Vibrio等真核和原核微生物对该新型pH-RAMOS进行了验证。在线OTR, CTR, RQ和pH信号的组合允许根据其pH的还原或变化程度识别各种代谢现象,例如氧限制,底物限制,diauxies以及特定化合物的产生或消耗。高频和敏感的pH监测对于记录微妙和短暂的代谢现象特别有利。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-sensitivity real-time monitoring of pH and respiration activity unveils metabolic dynamics in shake flask cultures.

Erlenmeyer shake flasks are widely used during the first steps of bioprocess development. Despite their broad application in academia and industry, shake flasks usually lack standardized and user-friendly online monitoring techniques. In this work, the pH and Respiratory Activity MOnitoring System (pH-RAMOS) for the non-invasive online measurement of the oxygen transfer rate (OTR), carbon dioxide transfer rate (CTR), and pH in up to eight parallel shake flasks under sterile conditions is presented. The OTR and CTR are quasi-continuously measured in the headspace of the shake flasks using dedicated oxygen and carbon dioxide sensors, enabling precise respiratory quotient (RQ) evaluation. Self-adhesive pH sensor spots are used for the high-frequent real-time pH monitoring of the culture. These prototype pH sensor spots stand out due to their simple sterilizability and subsequent one-point calibration in the cultivation medium. The long-term stability of the pH sensor spots was assessed in a 28-day long abiotic experiment. The novel pH-RAMOS was validated with different eukaryotic and prokaryotic microorganisms, such as Ogataea polymorpha, Ustilago trichophora, and Vibrio natriegens. The combination of online OTR, CTR, RQ, and pH signals allowed for identifying various metabolic phenomena, such as oxygen limitations, substrate limitations, diauxies, and the production or consumption of specific compounds, based on their degree of reduction or change of pH. The high-frequent and sensitive pH-monitoring was particularly advantageous for registering subtle and transient metabolic phenomena.

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来源期刊
Biotechnology Progress
Biotechnology Progress 工程技术-生物工程与应用微生物
CiteScore
6.50
自引率
3.40%
发文量
83
审稿时长
4 months
期刊介绍: Biotechnology Progress , an official, bimonthly publication of the American Institute of Chemical Engineers and its technological community, the Society for Biological Engineering, features peer-reviewed research articles, reviews, and descriptions of emerging techniques for the development and design of new processes, products, and devices for the biotechnology, biopharmaceutical and bioprocess industries. Widespread interest includes application of biological and engineering principles in fields such as applied cellular physiology and metabolic engineering, biocatalysis and bioreactor design, bioseparations and downstream processing, cell culture and tissue engineering, biosensors and process control, bioinformatics and systems biology, biomaterials and artificial organs, stem cell biology and genetics, and plant biology and food science. Manuscripts concerning the design of related processes, products, or devices are also encouraged. Four types of manuscripts are printed in the Journal: Research Papers, Topical or Review Papers, Letters to the Editor, and R & D Notes.
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