Effects of fertilizer application on phthalate ester pollution and the soil microbial community in plastic-shed soil on long-term fertilizer experiment

Chemosphere. 2022 Dec;308(Pt 2):136315. doi: 10.1016/j.chemosphere.2022.136315. Epub 2022 Sep 7.

Abstract

Due to the use of agricultural film, the pollution of phthalate esters (PAEs) in plastic-shed soils has attracted increasing attention. In this study, we used watermelon as a planting system and investigated the effects of organic fertilizer and chemical fertilizer application on the degradation of PAEs by evaluating soil nutrients and soil bacterial communities in plastic-shed soil. The dibutyl phthalate (DBP) concentration in the organic fertilizer soil was only 58.2% in the zero-fertilization control (CK) soil, but the concentrations of monohexyl phthalate (MEHP) and mono-n-butyl ester (MBP), the metabolites of PAEs, were found to be higher. The concentration of MBP is ten times that of DBP. The results showed that fertilization, especially the application of organic fertilizers, had a significant effect on the degradation of PAEs. There were specific biomarkers in different fertilization treatments. Among the microbiome community, Planifilum had the highest relative abundance in the organic fertilizer (OF) soil, and the highest proportion of Thermodesulfovibrionia was detected in the chemical fertilizer (CF) soil. These biomarkers were significantly correlated with PAEs and their metabolites. The relative abundance of Thermomonosporaceae was significantly positively correlated with DBP. Planifilum and Thermaerobacter, which significantly increased in organic fertilizer soil, showed a significant negative correlation with DBP and a significant positive correlation with MBP. The relative abundances of Planifilum and Geobacillus were elevated in the OF soil and may be able to co-metabolize soil nitrogen and PAEs. PAEs and their metabolites in soils had significant effects on soil microbes, as did the soil nutrients including available phosphorus (AP), alkali-hydrolysable nitrogen (Alkali-N), and organic matter (OM). Our research provides scientific support for the use of fertilizers to reduce PAE contamination but also warns of the potential risks of PAE metabolites.

Keywords: Long-term fertilizer experiment; Microbial community; Organic fertilizer; Phthalate esters; Pollution reduction.

MeSH terms

  • Alkalies
  • Bacteria / metabolism
  • Dibutyl Phthalate / metabolism
  • Esters
  • Fertilizers
  • Microbiota*
  • Nitrogen
  • Phosphorus
  • Phthalic Acids
  • Plastics
  • Soil
  • Soil Pollutants* / analysis

Substances

  • Alkalies
  • Dibutyl Phthalate
  • Esters
  • Fertilizers
  • Nitrogen
  • Phosphorus
  • phthalic acid
  • Phthalic Acids
  • Plastics
  • Soil
  • Soil Pollutants