Department of Fermentation Science, Faculty of Applied Bio-Science, Tokyo University of Agriculture, Tokyo 156-8502, Japan.
Department of Fermentation Science, Faculty of Applied Bio-Science, Tokyo University of Agriculture, Tokyo 156-8502, Japan.
Bioresour Technol. 2022 Jan;343:126076. doi: 10.1016/j.biortech.2021.126076. Epub 2021 Oct 1.
Numerous attempts have been made to upscale biohydrogen production via dark fermentation (DF); however, the Achilles' heel of DF, i.e., lactic acid bacteria (LAB) contamination and overgrowth, hinders such upscaling. Key microbes are needed to develop a lactate-driven DF system that can serve as a lactate fermentation platform. In this study, the utility of Megasphaera elsdenii and LAB co-culturing in lactate-driven DF was evaluated. When inoculated simultaneously with LAB or after LAB culture, M. elsdenii achieved a stable hydrogen yield of 0.95-1.49 H-mol/mol-glucose, approximately half that obtained in pure M. elsdenii cultures. Hydrogen production was maintained even at an initial M. elsdenii-to-LAB cell ratio of one-millionth or less. Moreover, M. elsdenii produced hydrogen via lactate-driven DF from unusable sugars such as xylose or cellobiose. Thus, M. elsdenii could be a Game changer instrumental in unlocking the full potential of DF.
已经有许多尝试通过暗发酵(DF)来提高生物氢气的产量;然而,DF 的阿喀琉斯之踵,即乳酸菌(LAB)的污染和过度生长,阻碍了这种放大。需要关键微生物来开发一种可以作为乳酸发酵平台的乳酸驱动 DF 系统。在这项研究中,评估了 Megasphaera elsdenii 和 LAB 共培养在乳酸驱动 DF 中的应用。当与 LAB 同时接种或在 LAB 培养后接种时,M. elsdenii 可稳定地产生 0.95-1.49 H-mol/mol-葡萄糖的氢气,约为纯 M. elsdenii 培养物的一半。即使初始 M. elsdenii 与 LAB 细胞的比例低至百万分之一,也能维持氢气的产生。此外,M. elsdenii 可以通过乳酸驱动 DF 从木糖或纤维二糖等不可用的糖中产生氢气。因此,M. elsdenii 可能成为一个重要的“游戏规则改变者”,有助于充分发挥 DF 的潜力。