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硫化铁驱动的自养反硝化生物滤池中硝酸盐的去除:生化和化学转化途径及其潜在的微生物机制。

Nitrate removal in iron sulfide-driven autotrophic denitrification biofilter: Biochemical and chemical transformation pathways and its underlying microbial mechanism.

作者信息

Bai Yang, Hu Huanhuan, Lee Po-Heng, Zhussupbekova Ainur, Shvets Igor V, Du Bang, Terada Akihiko, Zhan Xinmin

机构信息

Civil Engineering, School of Engineering, College of Science and Engineering, University of Galway, Galway H91 TK33, Ireland.

Imperial College London, London SW7 2AZ, United Kingdom.

出版信息

Sci Total Environ. 2023 Nov 25;901:165908. doi: 10.1016/j.scitotenv.2023.165908. Epub 2023 Aug 3.

Abstract

Iron sulfides-based autotrophic denitrification (IAD) is effective for treating nitrate-contaminated wastewater. However, the complex nitrate transformation pathways coupled with sulfur and iron cycles in IADs are still unclear. In this study, two columns (abiotic vs biotic) with iron sulfides (FeS) as the packing materials were constructed and operated continuously. In the abiotic column, FeS chemically reduced nitrate to ammonium under the ambient condition; this chemical reduction reaction pathway was spontaneous and has been overlooked in IAD reactors. In the biotic column (IAD biofilter), the complex nitrogen-transformation network was composed of chemical reduction, autotrophic denitrification, dissimilatory nitrate reduction to ammonium (DNRA) and sulfate reducing ammonium oxidation (Sulfammox). Metagenomic analysis and XPS characterization of the IAD biofilter further validated the roles of functional microbial communities (e.g., Acidovorax, Diaphorobacter, Desulfuromonas) in nitrate reduction process coupled with iron and sulfur cycles. This study gives an in-depth insight into the nitrogen transformations in IAD system and provides fundamental evidence about the underlying microbial mechanism for its further application in biological nitrogen removal.

摘要

基于硫化铁的自养反硝化(IAD)在处理硝酸盐污染废水方面是有效的。然而,IAD中与硫和铁循环相关的复杂硝酸盐转化途径仍不清楚。在本研究中,构建了两个以硫化铁(FeS)为填充材料的柱体(非生物柱与生物柱)并持续运行。在非生物柱中,FeS在环境条件下将硝酸盐化学还原为铵;这种化学还原反应途径是自发的,且在IAD反应器中一直被忽视。在生物柱(IAD生物滤池)中,复杂的氮转化网络由化学还原、自养反硝化、异化硝酸盐还原为铵(DNRA)和硫酸盐还原铵氧化(Sulfammox)组成。IAD生物滤池的宏基因组分析和XPS表征进一步验证了功能微生物群落(如嗜酸菌属、双杆菌属、脱硫单胞菌属)在与铁和硫循环耦合的硝酸盐还原过程中的作用。本研究深入洞察了IAD系统中的氮转化,并为其在生物脱氮中的进一步应用提供了潜在微生物机制的基础证据。

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