Gene expression in the microbial consortia of colonial Microcystis aeruginosa-a potential buoyant particulate biofilm

Environ Microbiol. 2022 Oct;24(10):4931-4945. doi: 10.1111/1462-2920.16133. Epub 2022 Jul 20.

Abstract

Microcystis spp., notorious bloom-forming cyanobacteria, are often present in colony form in eutrophic lakes worldwide. Uncovering the mechanisms underlying Microcystis colony formation and maintenance is vital to controlling the blooms, but it has long been a challenge. Here, bacterial communities and gene expression patterns of colonial and unicellular forms of one non-axenic strain of Microcystis aeruginosa isolated from Lake Taihu were compared. Evidently, different microbial communities between them were observed through 16S rDNA MiSeq sequencing. Metatranscriptome analyses revealed that transcripts for pathways involved in bacterial biofilm formation, such as biosynthesis of peptidoglycan and arginine by Bacteroidetes, methionine biosynthesis, alginate metabolism, flagellum, and motility, as well as widespread colonization islands by Proteobacteria, were highly enriched in the colonial form. Furthermore, transcripts for nitrogen fixation and denitrification pathways by Proteobacteria that usually occur in biofilms were significantly enriched in the colonial Microcystis. Results revealed that microbes associated with Microcystis colonies play important roles through regulation of biofilm-related genes in colony formation and maintenance. Moreover, Microcystis colony represents a potential 'buoyant particulate biofilm', which is a good model for biofilm studies. The biofilm features of colonial Microcystis throw a new light on management and control of the ubiquitous blooms in eutrophic waters.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Alginates / metabolism
  • Arginine / metabolism
  • Biofilms
  • DNA, Ribosomal
  • Gene Expression
  • Lakes / microbiology
  • Methionine / genetics
  • Methionine / metabolism
  • Microbial Consortia
  • Microcystis* / metabolism
  • Peptidoglycan / metabolism

Substances

  • Alginates
  • DNA, Ribosomal
  • Peptidoglycan
  • Arginine
  • Methionine