Yamada Shohei, Takamatsu Yuki, Ikeda Sota, Kouzuma Atsushi, Watanabe Kazuya
Laboratory of Bioenergy Science and Technology, School of Life Sciences, Tokyo University of Pharmacy and Life Sciences, Hachioji, Japan.
Front Chem. 2022 Jan 19;9:805597. doi: 10.3389/fchem.2021.805597. eCollection 2021.
According to recent social demands for sustainable developments, the value of biomass as feedstocks for chemical industry is increasing. With the aid of metabolic engineering and genome editing, microbial fermentation has been developed for producing value-added chemicals from biomass feedstocks, while further improvements are desired for producing more diverse chemicals and increasing the production efficiency. The major intrinsic limitation in conventional fermentation technologies is associated with the need for balancing the net redox equivalents between substrates and products, resulting in limited repertories of fermentation products. One solution for this limitation would be "electro-fermentation (EF)" that utilizes bioelectrochemical systems for modifying the intracellular redox state of electrochemically active bacteria, thereby overcoming the redox constraint of fermentation. Recent studies have attempted the production of chemicals based on the concept of EF, while its utility has not been sufficiently demonstrated in terms of low production efficiencies. Here we discuss EF in terms of its concept, current status and future directions, which help us develop its practical applications to sustainable chemical industries.
根据近期社会对可持续发展的需求,生物质作为化学工业原料的价值正在增加。借助代谢工程和基因组编辑技术,已经开发出微生物发酵方法,用于从生物质原料生产增值化学品,不过仍需要进一步改进以生产更多种类的化学品并提高生产效率。传统发酵技术的主要内在限制与平衡底物和产物之间的净氧化还原当量的需求有关,这导致发酵产物种类有限。解决这一限制的一种方法是“电发酵(EF)”,它利用生物电化学系统来改变电化学活性细菌的细胞内氧化还原状态,从而克服发酵的氧化还原限制。最近的研究尝试基于电发酵的概念生产化学品,但其在低生产效率方面的实用性尚未得到充分证明。在此,我们从概念、现状和未来方向等方面讨论电发酵,这有助于我们将其实际应用于可持续化学工业。