Zhao Wei, Shi Liuyang, Han Yifan, Wang Xingbiao, Wang Jingjing, Xu Song, Zhang Xiaoxia, Huang Zhiyong
Tianjin Key Laboratory of Industrial Biological Systems and Process Engineering, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, China.
National Center of Technology Innovation for Synthetic Biology, Tianjin, 300308, China.
Commun Biol. 2024 Dec 31;7(1):1716. doi: 10.1038/s42003-024-07353-5.
Despite a lot of efforts devoted to construct efficient microbiomes, there are still major obstacles to moving from the lab to industrial applications due to the inapplicability of existing technologies or limited understanding of microbiome variation regularity. Here we show a domestication strategy to cultivate an effciient and resilient functional microbiome for addressing phenolic wastewater challenges, which involves directional domestication in shaker, laboratory water test in small-scale, gas test in pilot scale, water test in pilot scale, and engineering application in industrial scale. The domestication process includes the transition from water to gas, which provided complex transient environment for screening of a more adaptable and robust microbiome, thereby mitigating the performance disparities encountered when transitioning from laboratory experimentation to industrial engineering applications. Within the domestication and application processes for treating phenolic resin wastewater, a powerful functional microbiome was built by self-assembly. This leads to an augmented biodiversity and the development of more intricate phenol and formaldehyde metabolic pathways. The incorporation of increased stochastic processes and random network characteristics further suggested the stability of the microbial community during the application phase. This study elucidates the self-assembly process of microbial communities during the artificial construction process, showcasing their adaptive evolution under different adverse conditions. It serves as a noteworthy case study for the artificial construction of a microbiome for the engineering application of treating industrial wastewater.
尽管人们为构建高效微生物群落付出了诸多努力,但由于现有技术的不适用性或对微生物群落变异规律的理解有限,从实验室到工业应用仍存在重大障碍。在此,我们展示了一种驯化策略,用于培育高效且有韧性的功能性微生物群落以应对酚类废水挑战,该策略包括在摇床中进行定向驯化、小规模实验室水质测试、中试规模气体测试、中试规模水质测试以及工业规模工程应用。驯化过程包括从水相到气相的转变,这为筛选更具适应性和稳健性的微生物群落提供了复杂的瞬态环境,从而减轻了从实验室实验向工业工程应用转变时遇到的性能差异。在处理酚醛树脂废水的驯化和应用过程中,通过自组装构建了一个强大的功能性微生物群落。这导致生物多样性增加以及更复杂的苯酚和甲醛代谢途径的发展。随机过程增加和随机网络特征的纳入进一步表明了应用阶段微生物群落的稳定性。本研究阐明了人工构建过程中微生物群落的自组装过程,展示了它们在不同不利条件下的适应性进化。它为处理工业废水的工程应用中微生物群落的人工构建提供了一个值得关注的案例研究。