Enzymatic functional stability of Zn-contaminated field-collected soils: an ecotoxicological perspective

Sci Total Environ. 2014 Jun 15:484:1-9. doi: 10.1016/j.scitotenv.2014.03.024. Epub 2014 Mar 28.

Abstract

Functional stability (FS) is an ecosystem attribute that is increasingly promoted in soil health assessment. However, FS is currently assessed comparatively, and it is therefore impossible to generate toxicity parameters. Additionally, the FS scores in the literature do not consider site and contamination history within the score. To address these issues, three new FS scores adapted to an ecotoxicological context and based on the Relative Soil Stability Index (RSSI) method were developed. The aim of the study was then to determine the FS score(s) that best describe the toxicity of metal-contaminated field-collected soils. Twenty pairs of Zn-contaminated soils (contaminated and reference soils) were collected on the field, and their enzymatic FS (arylsulfatase, protease, phosphatase and urease) and metal fractions (total and bioavailable) were analyzed. New RSSI-based and existing FS scores were calculated for each enzyme and correlated to the Zn fractions. One of the new RSSI-based scores was well correlated with the bioavailable labile Zn concentration for the arylsulfatase, phosphatase and urease (coefficients of regression higher than 0.50). Furthermore, this FS score was not affected by the soil organic matter and depended little on other soil properties. Other FS scores were correlated to labile Zn for only one enzyme, which varied according to the score. The new RSSI-based score thus better attributed Zn toxicity to field-collected soils than other FS scores.

Keywords: Enzymatic activity; Functional stability; Metal; Multi-stress; Resilience; Tolerance.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Ecosystem
  • Ecotoxicology
  • Environmental Monitoring*
  • Soil / chemistry
  • Soil Microbiology*
  • Soil Pollutants / analysis
  • Soil Pollutants / toxicity*
  • Urease / analysis
  • Zinc / analysis
  • Zinc / toxicity*

Substances

  • Soil
  • Soil Pollutants
  • Urease
  • Zinc