硫黄
歧化
硝酸盐
反硝化
氮气
化学
环境化学
铵
硫循环
有机化学
催化作用
作者
Bo Shao,Li Niu,Yuan-Guo Xie,Ruochen Zhang,Wei Wang,Xijun Xu,Jianxing Sun,Defeng Xing,Duu‐Jong Lee,Nanqi Ren,Zheng‐Shuang Hua,Chuan Chen
出处
期刊:Water Research
[Elsevier BV]
日期:2024-04-30
卷期号:257: 121700-121700
被引量:9
标识
DOI:10.1016/j.watres.2024.121700
摘要
Sulfur-based denitrification is a promising technology in treatments of nitrate-contaminated wastewaters. However, due to weak bioavailability and electron-donating capability of elemental sulfur, its sulfur-to-nitrate ratio has long been low, limiting the support for dissimilatory nitrate reduction to ammonium (DNRA) process. Using a long-term sulfur-packed reactor, we demonstrate here for the first time that DNRA in sulfur-based system is not negligible, but rather contributes a remarkable 40.5%–61.1% of the total nitrate biotransformation for ammonium production. Through combination of kinetic experiments, electron flow analysis, 16S rRNA amplicon, and microbial network succession, we unveil a cryptic in-situ sulfur disproportionation (SDP) process which significantly facilitates DNRA via enhancing mass transfer and multiplying 86.7–210.9% of bioavailable electrons. Metagenome assembly and single-copy gene phylogenetic analysis elucidate the abundant genomes, including uc_VadinHA17, PHOS-HE36, JALNZU01, Thiobacillus, and Rubrivivax, harboring complete genes for ammonification. Notably, a unique group of self-SDP-coupled DNRA microorganism was identified. This study unravels a previously concealed fate of DNRA, which highlights the tremendous potential for ammonium recovery and greenhouse gas mitigation. Discovery of a new coupling between nitrogen and sulfur cycles underscores great revision needs of sulfur-driven denitrification technology.
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