氟材料能清除过量的二氧化碳,促进大肠杆菌的生长。

IF 1.7 4区 生物学 Q4 BIOCHEMICAL RESEARCH METHODS
Yoshihisa Yamashige , Shojiro Kikuchi , Ryosuke Hosoki , Koji Kawada , Katsuaki Izawa , Masahiko Harata , Yuichi Ogawa
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引用次数: 0

摘要

含氟溶剂被用作封闭微生物培养中的氧气载体,以维持有氧条件。然而,含氟溶剂的生长促进作用仍不明确。因此,本研究旨在阐明含氟溶剂促进微生物生长的机制,并探索培养后易于分离的替代材料。本研究利用大肠杆菌和含氟溶剂 HFE-7200 来探讨除含氟溶剂释放的氧气以外促进微生物生长的其他因素。在气体渗透培养物中,大肠杆菌的生长得到了促进,而 HFE-7200 则减轻了培养基的酸化。气相色谱法证实,HFE-7200 可清除大肠杆菌新陈代谢产生的二氧化碳。由于含氟溶剂可以溶解各种气体,因此可以清除微生物培养物代谢产生的有毒气体。此外,使用固体氟材料聚四氟乙烯还能促进细菌生长。这种固体材料可以很容易地分离出来并重新用于微生物培养,这表明它们有可能成为食品生产和生物技术领域的宝贵技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fluorine materials scavenge excess carbon dioxide and promote Escherichia coli growth

Fluorinated solvents have been used as oxygen carriers in closed microbial cultures to sustain aerobic conditions. However, the growth-promoting effects of fluorinated solvents remain unclear. Therefore, this study aimed to elucidate the mechanism by which fluorinated solvents promote microbial growth and to explore alternative materials that can be easily isolated after culture. Escherichia coli and HFE-7200, a fluorinated solvent, were used to explore factors other than oxygen released by fluorinated solvents that promote microbial growth. E. coli growth was promoted in gas-permeable cultures, and HFE-7200 alleviated medium acidification. Gas chromatography confirmed that HFE-7200 functioned as a scavenger of carbon dioxide produced by E. coli metabolism. Because fluorinated solvents can dissolve various gases, they could scavenge metabolically produced toxic gases from microbial cultures. Furthermore, using polytetrafluoroethylene, a solid fluorine material, results in enhanced bacterial growth. Such solid materials can be easily isolated and reused for microbial culture, suggesting their potential as valuable technologies in food production and biotechnology.

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来源期刊
Journal of microbiological methods
Journal of microbiological methods 生物-生化研究方法
CiteScore
4.30
自引率
4.50%
发文量
151
审稿时长
29 days
期刊介绍: The Journal of Microbiological Methods publishes scholarly and original articles, notes and review articles. These articles must include novel and/or state-of-the-art methods, or significant improvements to existing methods. Novel and innovative applications of current methods that are validated and useful will also be published. JMM strives for scholarship, innovation and excellence. This demands scientific rigour, the best available methods and technologies, correctly replicated experiments/tests, the inclusion of proper controls, calibrations, and the correct statistical analysis. The presentation of the data must support the interpretation of the method/approach. All aspects of microbiology are covered, except virology. These include agricultural microbiology, applied and environmental microbiology, bioassays, bioinformatics, biotechnology, biochemical microbiology, clinical microbiology, diagnostics, food monitoring and quality control microbiology, microbial genetics and genomics, geomicrobiology, microbiome methods regardless of habitat, high through-put sequencing methods and analysis, microbial pathogenesis and host responses, metabolomics, metagenomics, metaproteomics, microbial ecology and diversity, microbial physiology, microbial ultra-structure, microscopic and imaging methods, molecular microbiology, mycology, novel mathematical microbiology and modelling, parasitology, plant-microbe interactions, protein markers/profiles, proteomics, pyrosequencing, public health microbiology, radioisotopes applied to microbiology, robotics applied to microbiological methods,rumen microbiology, microbiological methods for space missions and extreme environments, sampling methods and samplers, soil and sediment microbiology, transcriptomics, veterinary microbiology, sero-diagnostics and typing/identification.
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