Graduate School of Science, Technology and Innovation, Kobe University, 1-1 Rokkodai, Nada, Kobe, Hyogo 657-8501, Japan.
Graduate School of Science, Technology and Innovation, Kobe University, 1-1 Rokkodai, Nada, Kobe, Hyogo 657-8501, Japan.
Curr Opin Biotechnol. 2018 Apr;50:182-188. doi: 10.1016/j.copbio.2018.01.016. Epub 2018 Feb 3.
Microbial electrochemical systems (MESs) are expected to be put into practical use as an environmental technology that can support a future environmentally friendly society. However, conventional MESs present a challenge of inevitably increasing initial investment, mainly due to requirements for a large numbers of electrode assemblies. In this review, we introduce electrochemical biotechnologies that are under development and can minimize the required electrode assemblies. The novel biotechnologies, called electro-fermentation and indirect electro-stimulation, can drive specific microbial metabolism by electrochemically controlling intercellular and extracellular redox states, respectively. Other technologies, namely electric syntrophy and microbial photo-electrosynthesis, obviate the need for electrode assemblies, instead stimulating targeted reactions by using conductive particles to create new metabolic electron flows.
微生物电化学系统 (MESs) 有望作为一种环境技术投入实际应用,为未来的环境友好型社会提供支持。然而,传统的 MESs 面临着初始投资不可避免增加的挑战,主要是因为需要大量的电极组件。在这篇综述中,我们介绍了正在开发的可以最大限度减少所需电极组件的电化学生物技术。这些被称为电发酵和间接电刺激的新型生物技术可以分别通过电化学控制细胞内和细胞外的氧化还原状态来驱动特定的微生物代谢。其他技术,如电动共栖和微生物光电合成,则通过使用导电颗粒来创建新的代谢电子流来刺激目标反应,从而无需电极组件。