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◆ Water research2026-08-07

Electron flow boosted highly selective ammonium production from microbial nitrate reduction.

Chunlei Liu, Hanrui Zhang, Zhongrui Guo, Liping Jiang, Longbin Yu, Chao Zhu, Guibing Zhu

原始摘要(英文原文)· Original abstract
Microbial dissimilatory nitrate reduction to ammonium (DNRA) process is considered as a bridge connecting nitrification and denitrification processes, which helps to improve the removal efficiency of nitrate wastewater. However, the competitiveness of DNRA was weaker than the denitrification, resulting in over 60-70% of nitrogen loss each year as N2 or N2O via denitrification. Here, we report a strategy of employing electron flow to rapidly initiate DNRA process (e-DNRA) with no external energy input. This e-DNRA strategy lies in establishing a high carbon-to-nitrogen ratio habitat to create favorable conditions for the growth and reproduction of DNRA bacteria. Subsequently, DNRA functional bacteria are enriched under reducing microenvironment induced by electron flow, ultimately forming a stable biofilm with high DNRA activity. By controlling extracellular electron flow, a nitrate reduction efficiency, conversion efficiency of nitrate to ammonium, and yield rate of 93.2%, 92.7%, and 1.23 µmmol N d-1 g-1 (MLSS) m-3 were achieved, respectively. Transcriptome analysis and 15N isotope tracing technology demonstrated that electron flow promoted the expression of nrfA gene by an order of magnitude. Genus-level microbial community structure revealed species Lentimicrobium, Geobacter, and Thauera are the primary determinants for the high DNRA efficiency. Moreover, metagenome-assembled genomes found that the electron flow increased the expression of cyt b and cyt c1 subunits in complex III by 1-2 orders of magnitude which sustained the high-rate DNRA. The proposed e-DNRA strategy provides a new solution for the synergistic treatment of nitrate wastewater and ammonium recovery.
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Electron flow boosted highly selective ammonium production from microbial nitrate reduction. — 科研速览 Science Skim