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Updated: Sep 21, 2026

A Novel Bioreactor for High Density Cultivation of Diverse Microbial Communities
Published on: December 25, 2015
High-efficiency simultaneous ammonia and nitrate removal in iron-sulfur coupled system under carbon limitation:
Haohao Miao1, Wei Zeng1, Xiaojing Hao1
1National Engineering Laboratory for Advanced Municipal Wastewater Treatment and Reuse Technology, Department of Environmental Engineering, Beijing University of Technology, No.100 Pingleyuan, Chaoyang District, Beijing, 100124, China.
Abstract:
Iron‑sulfur coupling is a promising process for efficient nitrate removal, but its potential for simultaneous ammonia removal remains poorly recognized. This study established a biofilter (ISBF) using sponge iron and elemental sulfur as mixed fillers. Over 228 days of operation, ISBF achieved excellent nitrate (98.1%) and ammonia (89.7%) removal within 2 h. In-situ batch tests and ¹⁵N isotope tracing revealed synergistic nitrogen removal via autotrophic denitrification (56.6%), Feammox (9.1%), and Anammox (30.9%). X-ray diffraction confirmed FeOOH formation within biofilm, providing highly available substrates for iron metabolism. The analysis of microbial and functional genes revealed that Ca. Brocadia was enriched (3.57% and 26.67% at genomic and transcriptional levels, respectively) with high expression of hzsA (cDNA/DNA: 0.73-0.88). The bottom region of ISBF drove multi-pathway nitrogen removal, and middle/upper zones promoted complete denitrification and sulfate reduction, thereby improving nitrogen loss and reducing sulfate pollution. Batch tests and multi-omics analyses suggested that Ca. Brocadia possessed the potential for dual Feammox-Anammox metabolism, thereby facilitating its enrichment and maintenance of activity under NO₂⁻-deficient startup conditions. The Thiobacillus-dominated denitrification consortia exhibited a high narG and low nirKS expression pattern, implying a robust capacity for NO₂⁻ accumulation and supporting efficient nitrogen removal through anammox metabolism. Additionally, the increased abundance of genes involved in the electron transfer process suggested that ISBF could efficiently regulate multi-pathway synergistic nitrogen removal and ensure functional robustness. Therefore, this study provides novel insights for achieving simultaneous nitrate and ammonia removal under carbon limitation.
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