Influence of Silver nanoparticles on nutrient removal and microbial communities in SBR process after long-term exposure

Sci Total Environ. 2016 Nov 1:569-570:234-243. doi: 10.1016/j.scitotenv.2016.06.115. Epub 2016 Jun 22.

Abstract

The widespread utilization of silver nanoparticles (AgNPs) in industrial and commercial products inevitably raises the release into wastewater that might cause potential negative impacts on sewage treatment system. In this paper, long-term exposure experiments at four levels were conducted to determine whether AgNPs caused adverse impacts on nutrient removals in sequencing batch reactors (SBRs) and changes of microbial community structure. Compared with the control reactor (without AgNPs), carbon, nitrogen and phosphorus removal in presence of 0.1mg/L AgNPs was no difference. However, presence of 1.0 and 10mg/L AgNPs decreased the average removal efficiencies of COD from 95.4% to 85.2% and 68.3%, ammonia nitrogen from 98.8% to 71.2% and 49%, SOP from 97.6% to 75.5% and 54.1%, respectively. It was found that AgNPs could accumulate in sludge with the distribution coefficients of 39.2-114L/g, inhibit the protein and polysaccharide production in EPS, reduce the SOUR of sludge, and greatly increase LDH release from microbial cells. The illumina high-throughput sequencing results indicated that AgNPs concentration changed the structures of bacterial communities, associating with the effects of AgNPs on reactor performance. Sequence analyses showed that Proteobacteria, Bacteroidetes and Acidobacteria were the dominant phyla. It was notable that AgNPs addition reduced the contents of several nitrifying bacteria at genera level in sludge, leading to the lower removal of nitrogen.

Keywords: Inhibitory mechanisms; Microbial community structure; Nutrient removal; Silver nanoparticles; Wastewater treatment.

MeSH terms

  • Biological Oxygen Demand Analysis
  • Bioreactors / microbiology
  • Metal Nanoparticles*
  • Microbiota*
  • Nitrogen / metabolism
  • Phosphorus / metabolism
  • Sewage / analysis
  • Silver / metabolism*
  • Silver / pharmacology
  • Time Factors
  • Waste Disposal, Fluid*

Substances

  • Sewage
  • Phosphorus
  • Silver
  • Nitrogen