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人工湿地处理城市污水中的新型微生物氮转化过程:小型综述。

Novel microbial nitrogen transformation processes in constructed wetlands treating municipal sewage: a mini-review.

机构信息

Department of Civil Engineering, Malaviya National Institute of Technology, Jaipur, India.

出版信息

World J Microbiol Biotechnol. 2021 Feb 5;37(3):40. doi: 10.1007/s11274-021-03001-w.

Abstract

Traditionally nitrogen transformation in constructed wetlands (CWs) has been attributed to the activities of aerobic autotrophic nitrifiers followed by anoxic heterotrophic denitrifiers. However, the nitrogen balances in such systems are far from being explained as a large fraction of the losses remain unaccounted for. The classical nitrification-denitrification theory has been successfully employed in certain unit processes by culturing fast-growing bacteria, but the CWs offer an ideal environment for slow-growing bacteria that may be beneficially exploited to achieve enhanced nitrogen removal by manipulating the environmental conditions in their favor. In the last three decades, many novel microorganisms have been isolated from CWs that have led to the discovery of some other routes that have made researchers believe could play a significant role in nitrogen transformation processes. The increased understanding of novel discerned pathways like anaerobic ammonium oxidation (ANAMMOX), heterotrophic nitrification and aerobic denitrification, which are mediated by specialized bacteria has indicated that these microorganisms could be enriched by applying selection pressures within CWs for achieving high rates of nitrogen removal. Understanding these novel nitrogen transformation processes along with the associated microbial population can provide new dimensions to the design of CWs for enhanced nitrogen removal.

摘要

传统上,人工湿地 (CWs) 中的氮转化归因于好氧自养硝化菌的活动,随后是缺氧异养反硝化菌。然而,这些系统中的氮平衡远未得到解释,因为很大一部分损失仍未得到解释。经典的硝化-反硝化理论通过培养生长迅速的细菌在某些单元过程中得到了成功应用,但 CWs 为生长缓慢的细菌提供了理想的环境,通过操纵有利于它们的环境条件,可以利用这些细菌来实现增强的氮去除。在过去的三十年中,已经从 CWs 中分离出许多新型微生物,这导致发现了一些其他途径,使研究人员相信这些途径可能在氮转化过程中发挥重要作用。对新型氮转化途径(如厌氧氨氧化 (ANAMMOX)、异养硝化和好氧反硝化)的理解有所增加,这些途径是由专门的细菌介导的,这表明可以通过在 CWs 中施加选择压力来富集这些微生物,以实现高氮去除率。了解这些新型氮转化过程以及相关的微生物种群,可以为增强氮去除的 CWs 设计提供新的维度。

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