Li Shubo, Huang Li, Ke Chengzhu, Pang Zongwen, Liu Liming
1College of Light Industry and Food Engineering, Guangxi University, Nanning, 530004 China.
2College of Life Science and Technology, Guangxi University, Nanning, 530005 China.
Biotechnol Biofuels. 2020 Mar 6;13:39. doi: 10.1186/s13068-020-01674-3. eCollection 2020.
The global energy crisis and limited supply of petroleum fuels have rekindled the interest in utilizing a sustainable biomass to produce biofuel. Butanol, an advanced biofuel, is a superior renewable resource as it has a high energy content and is less hygroscopic than other candidates. At present, the biobutanol route, employing acetone-butanol-ethanol (ABE) fermentation in species, is not economically competitive due to the high cost of feedstocks, low butanol titer, and product inhibition. Based on an analysis of the physiological characteristics of solventogenic clostridia, current advances that enhance ABE fermentation from strain improvement to product separation were systematically reviewed, focusing on: (1) elucidating the metabolic pathway and regulation mechanism of butanol synthesis; (2) enhancing cellular performance and robustness through metabolic engineering, and (3) optimizing the process of ABE fermentation. Finally, perspectives on engineering and exploiting clostridia as cell factories to efficiently produce various chemicals and materials are also discussed.
全球能源危机以及石油燃料供应有限,重新燃起了人们利用可持续生物质生产生物燃料的兴趣。丁醇作为一种先进的生物燃料,是一种优质的可再生资源,因为它能量含量高,且吸湿性低于其他备选燃料。目前,采用丙酮-丁醇-乙醇(ABE)发酵的生物丁醇路线,由于原料成本高、丁醇滴度低以及产物抑制作用,在经济上缺乏竞争力。基于对产溶剂梭菌生理特性的分析,系统综述了从菌株改良到产物分离等提高ABE发酵的当前进展,重点关注:(1)阐明丁醇合成的代谢途径和调控机制;(2)通过代谢工程增强细胞性能和鲁棒性;(3)优化ABE发酵过程。最后,还讨论了将梭菌工程改造并开发为细胞工厂以高效生产各种化学品和材料的前景。