Department of Biology, Faculty of Science, Hong Kong Baptist University, Hong Kong, SAR.
Department of Biology, Faculty of Science, Hong Kong Baptist University, Hong Kong, SAR; Institute of Bioresource and Agriculture, Hong Kong Baptist University, Kowloon Tong, Hong Kong, SAR.
Bioresour Technol. 2022 Sep;360:127637. doi: 10.1016/j.biortech.2022.127637. Epub 2022 Jul 16.
Biotransformation of organic substrates via acidogenic fermentation (AF) to high-value products such as C1-C6 carboxylic acids and alcohol serves as platform chemicals for various industrial applications. However, the AF technology suffers from low product titers due to thermodynamic constraints. Recent studies suggest that augmenting AF redox potential can regulate the metabolic pathway and provide seamless electron flow by lowering the activation energy barrier, thus positively influencing the substrate utilization rate, product yield, and speciation. Hence, the augmented AF system with an exogenous electricity supply is termed as electro-fermentation (EF), which has enormous potential to strengthen the fermentation technology domain. Therefore, this critical review systematically discusses the current understanding of EF with a special focus on the extracellular electron transfer mechanism of electroactive bacteria and provides perspectives and research gaps to further improve the technology for green chemical synthesis, sustainable waste management, and circular bio-economy.
通过产酸发酵(AF)将有机底物生物转化为高附加值产品,如 C1-C6 羧酸和醇,可作为各种工业应用的平台化学品。然而,由于热力学限制,AF 技术的产品得率较低。最近的研究表明,通过降低活化能垒,增强 AF 氧化还原电位可以调节代谢途径并提供无缝的电子流,从而积极影响底物利用率、产物产率和形态。因此,具有外源电力供应的增强型 AF 系统被称为电发酵(EF),它具有极大的潜力来加强发酵技术领域。因此,本综述性评论系统地讨论了 EF 的现有理解,特别关注电活性细菌的细胞外电子转移机制,并提供了观点和研究空白,以进一步改进绿色化学合成、可持续废物管理和循环生物经济的技术。