Dopson Mark, Ni Gaofeng, Sleutels Tom H J A
Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, SE-391 82 Kalmar, Sweden
Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, SE-391 82 Kalmar, Sweden.
FEMS Microbiol Rev. 2016 Mar;40(2):164-81. doi: 10.1093/femsre/fuv044. Epub 2015 Oct 15.
Microbial electrochemical systems exploit the metabolism of microorganisms to generate electrical energy or a useful product. In the past couple of decades, the application of microbial electrochemical systems has increased from the use of wastewaters to produce electricity to a versatile technology that can use numerous sources for the extraction of electrons on the one hand, while on the other hand these electrons can be used to serve an ever increasing number of functions. Extremophilic microorganisms grow in environments that are hostile to most forms of life and their utilization in microbial electrochemical systems has opened new possibilities to oxidize substrates in the anode and produce novel products in the cathode. For example, extremophiles can be used to oxidize sulfur compounds in acidic pH to remediate wastewaters, generate electrical energy from marine sediment microbial fuel cells at low temperatures, desalinate wastewaters and act as biosensors of low amounts of organic carbon. In this review, we will discuss the recent advances that have been made in using microbial catalysts under extreme conditions and show possible new routes that extremophilic microorganisms open for microbial electrochemical systems.
微生物电化学系统利用微生物的新陈代谢来产生电能或有用的产物。在过去几十年里,微生物电化学系统的应用范围已从利用废水发电扩展到一项多功能技术,一方面它可以利用多种来源提取电子,另一方面这些电子可用于实现越来越多的功能。极端微生物生长在对大多数生命形式都不利的环境中,将它们应用于微生物电化学系统为在阳极氧化底物以及在阴极生产新产物开辟了新的可能性。例如,极端微生物可用于在酸性pH值下氧化硫化合物以处理废水,在低温下从海洋沉积物微生物燃料电池中产生电能,使废水脱盐,并用作低含量有机碳的生物传感器。在本综述中,我们将讨论在极端条件下使用微生物催化剂方面取得的最新进展,并展示极端微生物为微生物电化学系统开辟的可能新途径。