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微生物活性的原位电化学分析。

In-situ electrochemical analysis of microbial activity.

作者信息

Martin Ariane L, Satjaritanun Pongsarun, Shimpalee Sirivatch, Devivo Blake A, Weidner John, Greenway Scott, Henson J Michael, Turick Charles E

机构信息

Department of Biological Sciences, Life Sciences Facility, Clemson University, Clemson, SC, USA.

Department of Chemical Engineering and Computing, University of South Carolina, 541 Main Street, Columbia, Columbia, SC, USA.

出版信息

AMB Express. 2018 Oct 4;8(1):162. doi: 10.1186/s13568-018-0692-2.

Abstract

Microbes have a wide range of metabolic capabilities available that makes them industrially useful organisms. Monitoring these metabolic processes is a crucial component in efficient industrial application. Unfortunately, monitoring these metabolic processes can often be invasive and time consuming and expensive, especially within an anaerobic environment. Electrochemical techniques, such as cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS) offer a non-invasive approach to monitor microbial activity and growth. EIS and CV were used to monitor Clostridium phytofermentans, an anaerobic and endospore-forming bacterium. C. phytofermentans ferments a wide range of sugars into hydrogen, acetate, and ethanol as fermentation by-products. For this study, both traditional microbiological and electrochemical techniques were used to monitor the growth of C. phytofermentans and the formation of fermentation products. An irreversible reduction peak was observed using CV beginning at mid-logarithmic phase of growth. This peak was associated with C. phytofermentans and not the spent medium and was indicative of a decrease in carbon and energy sources to the cells. Additionally, EIS analysis during growth provided information related to increased charge transfer resistance of the culture also as a function of carbon and energy source depletion. Results demonstrate that CV and EIS are useful tools in the monitoring the physiological status of bioprocesses.

摘要

微生物具有广泛的代谢能力,这使其成为具有工业利用价值的生物体。监测这些代谢过程是高效工业应用的关键组成部分。不幸的是,监测这些代谢过程通常具有侵入性,耗时且昂贵,尤其是在厌氧环境中。电化学技术,如循环伏安法(CV)和电化学阻抗谱(EIS),提供了一种非侵入性的方法来监测微生物的活性和生长。EIS和CV被用于监测嗜热栖热放线菌,一种厌氧且形成芽孢的细菌。嗜热栖热放线菌将多种糖类发酵成氢气、乙酸和乙醇作为发酵副产物。在本研究中,传统微生物学技术和电化学技术都被用于监测嗜热栖热放线菌的生长以及发酵产物的形成。使用CV在生长的对数中期开始观察到一个不可逆还原峰。这个峰与嗜热栖热放线菌有关,而不是与用过的培养基有关,并且表明细胞的碳源和能源减少。此外,生长过程中的EIS分析还提供了与培养物电荷转移电阻增加相关的信息,这也是碳源和能源消耗的函数。结果表明,CV和EIS是监测生物过程生理状态的有用工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/93dc/6172163/80016eddd1c9/13568_2018_692_Fig1_HTML.jpg

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