Dzulkarnain Eka Latiffah Nadia, Audu Jemilatu Omuwa, Wan Dagang Wan Rosmiza Zana, Abdul-Wahab Mohd Firdaus
Department of Biosciences, Faculty of Science, Universiti Teknologi Malaysia, 81310, Skudai, Johor, Malaysia.
Department of Science Laboratory Technology, Modibbo Adama University, PMB 2076, Yola, Adamawa, Nigeria.
Bioresour Bioprocess. 2022 Mar 5;9(1):16. doi: 10.1186/s40643-022-00504-8.
Biohydrogen production through dark fermentation is very attractive as a solution to help mitigate the effects of climate change, via cleaner bioenergy production. Dark fermentation is a process where organic substrates are converted into bioenergy, driven by a complex community of microorganisms of different functional guilds. Understanding of the microbiomes underpinning the fermentation of organic matter and conversion to hydrogen, and the interactions among various distinct trophic groups during the process, is critical in order to assist in the process optimisations. Research in biohydrogen production via dark fermentation is currently advancing rapidly, and various microbiology and molecular biology tools have been used to investigate the microbiomes. We reviewed here the different systems used and the production capacity, together with the diversity of the microbiomes used in the dark fermentation of industrial wastes, with a special emphasis on palm oil mill effluent (POME). The current challenges associated with biohydrogen production were also included. Then, we summarised and discussed the different molecular biology tools employed to investigate the intricacy of the microbial ecology associated with biohydrogen production. Finally, we included a section on the future outlook of how microbiome-based technologies and knowledge can be used effectively in biohydrogen production systems, in order to maximise the production output.
通过暗发酵生产生物氢作为一种通过更清洁的生物能源生产来帮助减轻气候变化影响的解决方案,极具吸引力。暗发酵是一个有机底物在不同功能类群的复杂微生物群落驱动下转化为生物能源的过程。了解支撑有机物发酵并转化为氢气的微生物群落,以及该过程中不同营养群体之间的相互作用,对于协助进行工艺优化至关重要。目前,通过暗发酵生产生物氢的研究进展迅速,各种微生物学和分子生物学工具已被用于研究微生物群落。在此,我们综述了工业废物暗发酵中使用的不同系统及其生产能力,以及所使用微生物群落的多样性,特别强调了棕榈油厂废水(POME)。还包括了当前生物氢生产面临的挑战。然后,我们总结并讨论了用于研究与生物氢生产相关的微生物生态复杂性的不同分子生物学工具。最后,我们纳入了一个章节,展望基于微生物群落的技术和知识如何能在生物氢生产系统中有效应用,以实现产量最大化。