Roles of Fe-C amendment on sulfate-containing pharmaceutical wastewater anaerobic treatment: Microbial community and sulfur metabolism

Sci Total Environ. 2022 Sep 1:837:155868. doi: 10.1016/j.scitotenv.2022.155868. Epub 2022 May 11.

Abstract

The effects of multiple two-phase anaerobic treatment involving acidification coupling Fe-C on sulfate-containing chemical synthesis-based pharmaceutical wastewater treatment were investigated. Fe-C was added as a filler with 25% vol. to acidogenic reactors for semi-continuous operation. The results suggested that Fe-C amendment promoted sulfate removal efficiency by 47.5% and shortened the reaction time by 50% in the acidogenic phase. With mitigation of sulfate inhibition, SCOD removal efficiency and methane production were further increased by 24.6% and 398% compared to direct raw wastewater anaerobic digestion, respectively, in methanogenic phase. The results of sulfate removal kinetics confirmed a 150% increase of removal rate in acidogenic phase. However, the apparent kinetic microbial sulfate removal constant without Fe-C amendment was maintained at approximately 0.06 h-1. The Fe-C amendment not only increased the relative abundance of Methanothrix and Desulfovibrio for sulfate reduction but also enriched unclassified_p__Chloroflexi and unclassified_c__Deltaproteobacteria for acidification. Metagenomic results indicated that Fe-C enhanced dissimilatory sulfate reduction and PAPS synthesis of assimilatory step. The hydrogen sulfide production through the 3-mercaptopyruvate to pyruvate pathways was also enhanced. Butyrate-oxidizing genes were increased synchronously to convert butyrate to acetate.

Keywords: Acidogenic process; Iron-carbon; Metabolic pathway; Methanogenic process; Sulfate reduction.

MeSH terms

  • Anaerobiosis
  • Bioreactors* / microbiology
  • Butyrates / chemistry
  • Pharmaceutical Preparations* / chemistry
  • Sulfates / analysis
  • Wastewater / microbiology
  • Water Purification* / methods

Substances

  • Butyrates
  • Pharmaceutical Preparations
  • Sulfates
  • Waste Water