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Metagenomic analysis of aromatic ring-cleavage mechanism in nano-Fe3O4@activated coke enhanced bio-system for coal pyrolysis wastewater treatment

  • Mengqi Zheng
  • , Hongjun Han
  • , Jingxin Shi
  • , Zhengwen Zhang
  • , Wencheng Ma*
  • , Chunyan Xu
  • *Corresponding author for this work
  • School of Environment, Harbin Institute of Technology
  • Harbin Gongchuang Environmental Protection Technology Company

Research output: Contribution to journalArticlepeer-review

Abstract

In current study, nano-Fe3O4@activated coke enhanced bio-system (FEBS) under limited-oxygen condition was applied for efficient treatment of aromatic organics in coal pyrolysis wastewater. Metagenomic analyses revealed functional microbiome linkages and mechanism involved in aromatic ring-cleavage. Based on biodegradation efficiency in different reactors, FEBS supplementation conferred the best organic removal (avg. 92.29%). It also showed a remarkable advantage in biodegradability maintenance (> 40%) over control reactors. Metagenomics profiling revealed the degradation processes were driven by Fe3O4 redox reactions and microbial biofilm, while the suspended sludge was the principal force for aromatic mineralization. Based on the analysis of functional species and genes, most bacteria cleaved the benzene ring preferably through the aerobic pathways, mediated by catechol 1, 2-dioxygenase, catechol 2, 3-dioxygenase and protocatechuate 3, 4-dioxygenase (66−84%). Ecological network showed that Comamonas testosterone-centered microbiome and Azotobacter linked to the nitrogen (N)-heterocyclic ring-cleavage. Network linkage further demonstrated that Alicycliphilus and Acidovorax were the key tone taxa involved in benzene ring-cleavage. Finally, combined with analysis of degradation products, bacteria degraded N-heterocyclic ring containing organic aromatic compounds (quinoline) mainly through anaerobic processes, whereas cleavage of benzene ring preferred aerobic pathways. The enriched functional species were the primary reason for the enhanced biodegradation in FEBS.

Original languageEnglish
Article number125387
JournalJournal of Hazardous Materials
Volume414
DOIs
StatePublished - 15 Jul 2021
Externally publishedYes

Keywords

  • Aromatic ring-cleavage
  • Coal pyrolysis wastewater
  • Enhanced biodegradation
  • Metagenomic study
  • Nano-FeO@activated coke

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