Zhao Weihua, Bi Xuejun, Bai Meng, Wang Yanyan
State and Local Joint Engineering Research Center of Municipal Wastewater Treatment and Resource Recycling, Qingdao University of Technology, Qingdao, 266033, People's Republic of China.
School of Marine Science and Technology, Harbin Institute of Technology, Weihai, 264209, People's Republic of China.
Bioprocess Biosyst Eng. 2023 May;46(5):621-633. doi: 10.1007/s00449-023-02866-5. Epub 2023 Mar 29.
Ammonia oxidation carried out by ammonia-oxidizing microorganisms (AOMs) is a central step in the global nitrogen cycle. Aerobic AOMs comprise conventional ammonia-oxidizing bacteria (AOB), novel ammonia-oxidizing archaea (AOA), which could exist in complex and extreme conditions, and complete ammonia oxidizers (comammox), which directly oxidize ammonia to nitrate within a single cell. Anaerobic AOMs mainly comprise anaerobic ammonia-oxidizing bacteria (AnAOB), which can transform NH-N and NO-N into N under anaerobic conditions. In this review, the unique metabolic characteristics, microbial community of AOMs and the influencing factors are discussed. Process applications of nitrification/denitrification, nitritation/denitrification, nitritation/anammox and partial denitrification/anammox in wastewater treatment systems are emphasized. The future development of nitrogen removal processes using AOMs is expected, enrichment of comammox facilitates the complete nitrification performance, inhibiting the activity of comammox and NOB could achieve stable nitritation, and additionally, AnAOB conducting the anammox process in municipal wastewater is a promising development direction.
由氨氧化微生物(AOMs)进行的氨氧化是全球氮循环的核心步骤。好氧氨氧化微生物包括传统的氨氧化细菌(AOB)、能够在复杂和极端条件下生存的新型氨氧化古菌(AOA)以及在单个细胞内将氨直接氧化为硝酸盐的全程氨氧化菌(comammox)。厌氧氨氧化微生物主要包括厌氧氨氧化细菌(AnAOB),其可在厌氧条件下将NH-N和NO-N转化为N。本文综述了氨氧化微生物独特的代谢特征、微生物群落及其影响因素。重点介绍了硝化/反硝化、亚硝化/反硝化、亚硝化/厌氧氨氧化以及部分反硝化/厌氧氨氧化在废水处理系统中的工艺应用。展望了利用氨氧化微生物的脱氮工艺的未来发展,富集全程氨氧化菌有助于实现完全硝化性能,抑制全程氨氧化菌和亚硝酸盐氧化菌的活性可实现稳定的亚硝化,此外,在城市污水中进行厌氧氨氧化过程的厌氧氨氧化细菌是一个有前景的发展方向。