Growth, biofilm formation and atrazine degrading gene (trzN) expression of Arthrobacter sp. DNS10 cultured with montmorillonite, kaolinite and goethite

Chemosphere. 2022 Nov;307(Pt 2):135904. doi: 10.1016/j.chemosphere.2022.135904. Epub 2022 Aug 5.

Abstract

The viable and degradation potential of the strains which adhered to soil minerals are essential for eliminating organic pollutants from soil. Herein, the interaction (growth, biofilm formation and survive) of Arthrobacter sp. DNS10, an atrazine degrading strain, with three kinds of typical soil minerals, such as montmorillonite, kaolinite and goethite, as well as the atrazine degradation gene (trzN) expression of the strain in the minerals system were studied. The results showed that montmorillonite had significant promotion effect on the growth of strain DNS10, followed by kaolinite, but goethite significantly inhibited the growth of strain DNS10. In contrast, goethite notably promoted the biofilm formation and there was less biofilm detected in montmorillonite containing system. The percentage of the survival bacteria in the biofilm that formed on montmorillonite, kaolinite and goethite was 53.8%, 40.8% and 28.2%. In addition, there were more reactive oxygen species (ROS) were detected in the cells that exposed to goethite than those of the cells exposed to kaolinite and montmorillonite. These results suggest that the electrostatic repulsion between kaolinite/montmorillonite and strain DNS10 prevents them from contacting each other and facilitates bacterial growth by allowing the strain to obtain more nutrients. Oppositely, the needle-like morphology of goethite might damage the strain DNS10 cell when they were combined by electrostatic attraction, and the goethite induced ROS also aggravate the cytotoxicity of goethite on strain DNS10. In addition, the relative transcription of trzN in the cells contacted with montmorillonite, kaolinite and goethite was 0.94-, 0.27- and 0.20- fold of the no mineral exposure treatment. Briefly, this research suggests that the minerals with different structure and/or physicochemical characteristics might cause various trend for the biofilm formation and degradation potential of the bacteria.

Keywords: Atrazine; Biofilm; Gene transcription; Reactive oxygen species (ROS); Soil minerals.

MeSH terms

  • Arthrobacter* / genetics
  • Arthrobacter* / metabolism
  • Atrazine* / analysis
  • Bentonite / chemistry
  • Biofilms
  • Iron Compounds
  • Kaolin / chemistry
  • Minerals / chemistry
  • Reactive Oxygen Species / metabolism
  • Soil / chemistry
  • Soil Pollutants* / analysis

Substances

  • Iron Compounds
  • Minerals
  • Reactive Oxygen Species
  • Soil
  • Soil Pollutants
  • Bentonite
  • goethite
  • Kaolin
  • Atrazine