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从阴极到微生物的细胞外电子转移:在生物燃料生产中的应用

Extracellular electron transfer from cathode to microbes: application for biofuel production.

作者信息

Choi Okkyoung, Sang Byoung-In

机构信息

Department of Chemical Engineering, Hanyang University, 222 Wangshimni-ro, Seongdong-gu, Seoul, 04763 South Korea.

出版信息

Biotechnol Biofuels. 2016 Jan 19;9:11. doi: 10.1186/s13068-016-0426-0. eCollection 2016.

Abstract

Extracellular electron transfer in microorganisms has been applied for bioelectrochemical synthesis utilizing microbes to catalyze anodic and/or cathodic biochemical reactions. Anodic reactions (electron transfer from microbe to anode) are used for current production and cathodic reactions (electron transfer from cathode to microbe) have recently been applied for current consumption for valuable biochemical production. The extensively studied exoelectrogenic bacteria Shewanella and Geobacter showed that both directions for electron transfer would be possible. It was proposed that gram-positive bacteria, in the absence of cytochrome C, would accept electrons using a cascade of membrane-bound complexes such as membrane-bound Fe-S proteins, oxidoreductase, and periplasmic enzymes. Modification of the cathode with the addition of positive charged species such as chitosan or with an increase of the interfacial area using a porous three-dimensional scaffold electrode led to increased current consumption. The extracellular electron transfer from the cathode to the microbe could catalyze various bioelectrochemical reductions. Electrofermentation used electrons from the cathode as reducing power to produce more reduced compounds such as alcohols than acids, shifting the metabolic pathway. Electrofuel could be generated through artificial photosynthesis using electrical energy instead of solar energy in the process of carbon fixation.

摘要

微生物中的细胞外电子转移已应用于生物电化学合成,利用微生物催化阳极和/或阴极生化反应。阳极反应(电子从微生物转移到阳极)用于产生电流,而阴极反应(电子从阴极转移到微生物)最近已应用于消耗电流以进行有价值的生化产物生产。广泛研究的产电细菌希瓦氏菌属和地杆菌属表明,电子转移的两个方向都是可能的。有人提出,在没有细胞色素C的情况下,革兰氏阳性细菌会使用一系列膜结合复合物(如膜结合铁硫蛋白、氧化还原酶和周质酶)来接受电子。通过添加带正电的物质(如壳聚糖)对阴极进行修饰,或使用多孔三维支架电极增加界面面积,会导致电流消耗增加。从阴极到微生物的细胞外电子转移可以催化各种生物电化学还原反应。电发酵利用来自阴极的电子作为还原力,以产生比酸更多的还原化合物(如醇),从而改变代谢途径。在碳固定过程中,可以通过人工光合作用利用电能而非太阳能来产生电燃料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d629/4717640/0277b7f6dbe1/13068_2016_426_Fig1_HTML.jpg

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