Response of biofilms-leaves of two submerged macrophytes to high ammonium

Chemosphere. 2018 Feb:192:152-160. doi: 10.1016/j.chemosphere.2017.09.147. Epub 2017 Oct 23.

Abstract

Submerged macrophytes can provide attached surface for biofilms (known as periphyton) growth. In the present study, the alterations in biofilms formation, and chemical compositions and physiological responses were investigated on leaves of Vallisneria asiatica and Hydrilla verticillata exposed to 0.1 mg L-1 (control) or with 10 mg L-1 NH4+-N for 13 days. Results from physiological and biochemical indices (content of H2O2, malondialdehyde, total chlorophyll and activity of superoxide dismutase, catalase and peroxidase) showed that high ammonium caused oxidative damage to leaves of two species of plant. Multifractal analysis (based on scanning electron microscope images) showed that for the same plant, the values of width △α (△α = αmaxmin) of the f(α) and Δf (Δf = f(αmin)-f(αmax)) were smaller on leaves surface of two species of plant treated with 10 mg L-1 NH4+-N for 13 days than their controls, suggesting high ammonium treatments reduced morphological heterogeneity of leaf surface and enhanced area of the colony-like biofilms. X-ray photoelectron spectroscopy analysis showed that C, O, N and P were dominant elements on leaves surface of two species of plant and ammonium application increased the percentage of C but decreased that of O. High ammonium increased C1 (C-C or C-H) percentage but decreased C2 (C-O) and C3 (O-C-O or C=O) percentage on leaves surface of two species of plant, indicating that ammonium stress changed the surface chemical states and thus might reduce the capacity of leaves to adsorb nutrients from water column. Our results provided useful information to understand ammonium induced toxicity to submerged macrophytes.

Keywords: Ammonia nitrogen; Functional components; Multifractal analysis; X-ray photoelectron spectroscopy.

MeSH terms

  • Ammonium Compounds / metabolism*
  • Biofilms
  • Catalase / metabolism
  • Chlorophyll / metabolism
  • Hydrocharitaceae / enzymology
  • Hydrocharitaceae / growth & development
  • Hydrocharitaceae / physiology*
  • Malondialdehyde / metabolism
  • Peroxidases / metabolism
  • Plant Leaves / enzymology
  • Plant Leaves / growth & development
  • Plant Leaves / physiology*
  • Plant Proteins / metabolism
  • Superoxide Dismutase / metabolism

Substances

  • Ammonium Compounds
  • Plant Proteins
  • Chlorophyll
  • Malondialdehyde
  • Peroxidases
  • Catalase
  • Superoxide Dismutase