4.7 Article

Extracellular electron transfer features of Gram-positive bacteria

期刊

ANALYTICA CHIMICA ACTA
卷 1076, 期 -, 页码 32-47

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.aca.2019.05.007

关键词

Gram-positive bacteria; Enterococcus faecalis; Extracellular electron transfer; Mediated electron transfer; Direct electron transfer; Electron-conducting redox polymers

资金

  1. European Commission [FP7-PEOPLE-2013-ITN-607793]
  2. Swedish Research Council [2015-02547, 2014-5908]
  3. Swedish Research Council [2015-02547] Funding Source: Swedish Research Council

向作者/读者索取更多资源

Electroactive microorganisms possess the unique ability to transfer electrons to or from solid phase electron conductors, e.g., electrodes or minerals, through various physiological mechanisms. The processes are commonly known as extracellular electron transfer and broadly harnessed in microbial electrochemical systems, such as microbial biosensors, microbial electrosynthesis, or microbial fuel cells. Apart from a few model microorganisms, the nature of the microbe-electrode conductive interaction is poorly understood for most of the electroactive species. The interaction determines the efficiency and a potential scaling up of bioelectrochemical systems. Gram-positive bacteria generally have a thick electron non-conductive cell wall and are believed to exhibit weak extracellular electron shuttling activity. This review highlights reported research accomplishments on electroactive Gram-positive bacteria. The use of electron-conducting polymers as mediators is considered as one promising strategy to enhance the electron transfer efficiency up to application scale. In view of the recent progress in understanding the molecular aspects of the extracellular electron transfer mechanisms of Enterococcus faecalis, the electron transfer properties of this bacterium are especially focused on. Fundamental knowledge on the nature of microbial extracellular electron transfer and its possibilities can provide insight in interspecies electron transfer and biogeochemical cycling of elements in nature. Additionally, a comprehensive understanding of cell-electrode interactions may help in overcoming insufficient electron transfer and restricted operational performance of various bioelectrochemical systems and facilitate their practical applications. (C) 2019 Elsevier B.V. All rights reserved.

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