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Powering microbes with electricity: direct electron transfer from electrodes to microbes.用电为微生物供能:电极到微生物的直接电子转移。
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A shift in the current: new applications and concepts for microbe-electrode electron exchange.电流转移:微生物-电极电子交换的新应用和新概念。
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Microbial electrosynthesis: feeding microbes electricity to convert carbon dioxide and water to multicarbon extracellular organic compounds.微生物电合成:向微生物供电,将二氧化碳和水转化为多碳细胞外有机化合物。
mBio. 2010 May 25;1(2):e00103-10. doi: 10.1128/mBio.00103-10.
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Gene expression and deletion analysis of mechanisms for electron transfer from electrodes to Geobacter sulfurreducens.基因表达和电子从电极到脱硫弧菌传递机制的缺失分析。
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Cathodes as electron donors for microbial metabolism: which extracellular electron transfer mechanisms are involved?作为微生物代谢电子供体的阴极:涉及哪些细胞外电子转移机制?
Bioresour Technol. 2011 Jan;102(1):324-33. doi: 10.1016/j.biortech.2010.07.008. Epub 2010 Aug 4.
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A c-type cytochrome and a transcriptional regulator responsible for enhanced extracellular electron transfer in Geobacter sulfurreducens revealed by adaptive evolution.通过适应性进化揭示的负责增强 Geobacter sulfurreducens 细胞外电子转移的 c 型细胞色素和转录调节因子。
Environ Microbiol. 2011 Jan;13(1):13-23. doi: 10.1111/j.1462-2920.2010.02302.x.
9
Electron transfer mechanisms, new applications, and performance of biocathode microbial fuel cells.电子传递机制、生物阴极微生物燃料电池的新应用和性能。
Bioresour Technol. 2011 Jan;102(1):316-23. doi: 10.1016/j.biortech.2010.06.096. Epub 2010 Jul 14.
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Clostridium ljungdahlii represents a microbial production platform based on syngas.Ljungdahlii 梭菌代表了一种基于合成气的微生物生产平台。
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二氧化碳中的有机化合物的电合成由多种产乙酸微生物催化。

Electrosynthesis of organic compounds from carbon dioxide is catalyzed by a diversity of acetogenic microorganisms.

机构信息

106B Morrill 4 North, University of Massachusetts, Microbiology, 639 North Pleasant St., Amherst, MA 01003, USA.

出版信息

Appl Environ Microbiol. 2011 May;77(9):2882-6. doi: 10.1128/AEM.02642-10. Epub 2011 Mar 4.

DOI:10.1128/AEM.02642-10
PMID:21378039
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3126412/
Abstract

Microbial electrosynthesis, a process in which microorganisms use electrons derived from electrodes to reduce carbon dioxide to multicarbon, extracellular organic compounds, is a potential strategy for capturing electrical energy in carbon-carbon bonds of readily stored and easily distributed products, such as transportation fuels. To date, only one organism, the acetogen Sporomusa ovata, has been shown to be capable of electrosynthesis. The purpose of this study was to determine if a wider range of microorganisms is capable of this process. Several other acetogenic bacteria, including two other Sporomusa species, Clostridium ljungdahlii, Clostridium aceticum, and Moorella thermoacetica, consumed current with the production of organic acids. In general acetate was the primary product, but 2-oxobutyrate and formate also were formed, with 2-oxobutyrate being the predominant identified product of electrosynthesis by C. aceticum. S. sphaeroides, C. ljungdahlii, and M. thermoacetica had high (>80%) efficiencies of electrons consumed and recovered in identified products. The acetogen Acetobacterium woodii was unable to consume current. These results expand the known range of microorganisms capable of electrosynthesis, providing multiple options for the further optimization of this process.

摘要

微生物电合成是一种微生物利用电极中衍生出的电子将二氧化碳还原为多碳、细胞外有机化合物的过程,它是一种从容易储存和易于运输的产品(如燃料)的碳-碳键中捕获电能的潜在策略。迄今为止,只有一种微生物,即产乙酸菌 Sporomusa ovata,被证明能够进行电合成。本研究旨在确定是否有更广泛的微生物能够进行这一过程。其他几种产乙酸菌,包括另外两个 Sporomusa 物种、梭菌属 Clostridium ljungdahlii、梭菌属 Clostridium aceticum 和热醋穆尔氏菌 Moorella thermoacetica,在产生有机酸的同时消耗电流。通常,乙酸盐是主要产物,但也形成了 2-氧代丁酸和甲酸盐,其中 2-氧代丁酸是 C. aceticum 电合成的主要产物。Sphaeroides sp.、C. ljungdahlii 和 M. thermoacetica 在确定的产物中消耗和回收的电子效率>80%。产乙酸菌 Acetobacterium woodii 无法消耗电流。这些结果扩展了已知能够进行电合成的微生物范围,为进一步优化该过程提供了多种选择。