Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5746388 | Chemosphere | 2017 | 8 Pages |
Abstract
Integrated simultaneous desulfurization and denitrification (ISDD) process has proven to be feasible for the coremoval of sulfate, nitrate, and chemical oxygen demand (COD). In this study, we aimed to reveal the microbial community dynamics in the ISDD process with different influent nitrate (NO3â) concentrations. For all tested scenarios, full denitrification was accomplished while sulfate removal efficiency decreased along with increased influent NO3â concentrations. The proportion of S0 to influent SO42â maintained a low level (5.6-17.0%) regardless of the increased influent NO3â concentrations. Microbial community analysis results showed that higher influent NO3â concentrations affected the microbial community structure greatly. Phyla Proteobacteria, Spirochaetae, Firmicutes, Synergistetes, and Chloroflexi dominated in all the community compositions, of which Proteobacteria exhibited a clear difference among eight microbial samples. Members of δ-Proteobacteria, with 16S rRNA gene sequences related to Desulfobulbus, were clearly decreased at influent NO3â = 3000 and 3500 mg/L, suggesting an inhibitory effect of NO3â on sulfate reduction. In contrast, as influent NO3â concentration increased, microbial community was notably enriched in γ-Proteobacteria and ε-Proteobacteria, which revealed the enrichment of 16S rRNA gene sequences related to Pseudomonas (γ-Proteobacteria), and Arcobacteria and Sulfurospirillum (ε-Proteobacteria).
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Authors
Chuan Chen, Xi-Jun Xu, Peng Xie, Ye Yuan, Xu Zhou, Ai-Jie Wang, Duu-Jong Lee, Nan-Qi Ren,