Start-up of solid-phase denitrification process for treatment of nitrate-rich water in recirculating mariculture system: Carbon source selection and nitrate removal mechanism

Efficient nitrate removal from recirculating mariculture system (RMS) water is of significance since high concentration of nitrate would cause chronic health effects on aquatic organisms and eutrophication. Solid-phase denitrification (SPD) is a safer and more sustainable approach than conventional...

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Veröffentlicht in:Chemosphere (Oxford) 2023-10, Vol.338, p.139568-139568, Article 139568
Hauptverfasser: Wang, Yinghan, Sun, Zhe, Qiang, Zhimin
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Sprache:eng
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Zusammenfassung:Efficient nitrate removal from recirculating mariculture system (RMS) water is of significance since high concentration of nitrate would cause chronic health effects on aquatic organisms and eutrophication. Solid-phase denitrification (SPD) is a safer and more sustainable approach than conventional heterotrophic denitrification by dosing liquid carbon sources. Thus, its application for treating nitrate-rich RMS water was investigated in this study. Poly 3-hydroxybutyrate-co-3-hydroxyvalerate (PHBV) was identified with the best nitrate removal among four kinds of carbon sources. PHBV-filled reactors started with mariculture, municipal and mixing sludges (at the ratio of 1:1) and fed with 200 mg L-1 nitrate-rich RMS water all achieved over 81% nitrate removals with a HRT of 4 days. The dissolved organic carbon concentrations of the reactors were in the range of 3–9 mg L-1. Arcobacter, Halomonas, and Psedomonas were dominant genera responsible for nitrate removal in different reactors. Metagenomic analyses indicate that both denitrification and assimilatory nitrate reduction (ANR) are the main contributors to nitrate removals. Metagenomic results illustrated nirB/D cooperated with nasA may perform ANR pathway, which transformed nitrate to ammonia for biosynthesis. These results indicate that SPD could be a safer alternative for treating nitrate-rich RMS water, and provide new insights into nitrogen metabolism pathways in SPD process. [Display omitted] •SPD process using PHBV as carbon source can treat nitrate-rich recirculating mariculture water.•PHBV-SPD reactors seeded with different sludges achieved effective nitrate removal.•Arcobacter, Halomonas, and Psedomonas were the dominant genera in SPD reactors.•Denitrification and ANR pathways both contributed greatly to nitrogen metabolism.
ISSN:0045-6535
1879-1298
DOI:10.1016/j.chemosphere.2023.139568