College of Life Science, Dalian Minzu University, Dalian, 116600, Liaoning, China; State Key Laboratory of Microbial Metabolism, and School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, China.
China Tobacco Henan Industrial Co. Ltd., Zhengzhou, 450000, China.
Environ Res. 2023 Apr 15;223:115472. doi: 10.1016/j.envres.2023.115472. Epub 2023 Feb 10.
Although many anaerobic microorganisms that can degrade PAHs have been harnessed, there is still a large gap between laboratory achievements and practical applications. Here, we review the recent advances in the biodegradation of PAHs under anoxic conditions and highlight the mechanistic insights into the metabolic pathways and functional genes. Achievements of practical application and enhancing strategies of anaerobic PAHs bioremediation in soil were summarized. Based on the concerned issues during research, perspectives of further development were proposed including time-consuming enrichment, byproducts with unknown toxicity, and activity inhibition with low temperatures. In addition, meta-omics, synthetic biology and engineering microbiome of developing microbial inoculum for anaerobic bioremediation applications are discussed. We anticipate that integrating the theoretical research on PAHs anaerobic biodegradation and its successful application will advance the development of anaerobic bioremediation.
尽管已经开发出许多能够降解多环芳烃的厌氧微生物,但实验室成果与实际应用之间仍存在较大差距。在这里,我们综述了缺氧条件下多环芳烃生物降解的最新进展,并重点介绍了代谢途径和功能基因的机制见解。总结了在土壤中进行实际应用和增强厌氧多环芳烃生物修复的策略。基于研究过程中的关注问题,提出了进一步发展的观点,包括富集时间长、未知毒性的副产物以及低温下的活性抑制。此外,还讨论了用于厌氧生物修复应用的微生物接种物的开发中宏基因组学、合成生物学和工程微生物组学。我们预计,整合多环芳烃厌氧生物降解的理论研究及其成功应用将推动厌氧生物修复的发展。