Elucidating the roles of Cr(VI)-Cu(II) Co-pollution in the stress of aniline degradation stress: Insights into metabolic pathways and functional genes

Bioresour Technol. 2023 Nov:387:129613. doi: 10.1016/j.biortech.2023.129613. Epub 2023 Aug 4.

Abstract

In order to examine the impact of Cu(II)-Cr(VI) co-pollution in printing and dyeing wastewater on the aniline biodegradation system (ABS), loading experiments were conducted on ABS at varying concentrations of Cu(II)-Cr(VI). The synergistic stress imposed by Cu(II)-Cr(VI) accelerated the deterioration of the systems, with only the C2-3 (2 mg/L Cr(VI)-3 mg/L Cu(II)) sustaining stable operation for 42 days. However, its nitrogen removal performance remained significantly impaired, resulting in a total nitrogen (TN) removal rate below 40%. High-throughput sequencing analysis revealed a stronger correlation between Cr(VI) and microbial diversity compared to Cu(II). Metagenomic sequencing results demonstrated that Cu(II) emerged as the dominant factor influencing the distribution of dominant bacteria in C2-3, as well as its contribution to contaminant degradation. The complex co-pollution systems hindered aniline degradation and nitrogen metabolism through the combined bio-toxicity of heavy metals and aniline, thereby disrupting the transport chain within the systems matrix.

Keywords: Aniline degradation; Cu(II)-Cr(VI) co-pollution; Functional Genes; Metabolic Pathways; Microbial community response.

MeSH terms

  • Chromium / metabolism
  • Metabolic Networks and Pathways
  • Metals, Heavy* / metabolism
  • Nitrogen

Substances

  • chromium hexavalent ion
  • Metals, Heavy
  • Chromium
  • Nitrogen