Shifts in microbial community structure and function in light- and dark-grown biofilms driven by warming

Environ Microbiol. 2014 Aug;16(8):2550-67. doi: 10.1111/1462-2920.12428. Epub 2014 Mar 25.

Abstract

Biofilms are dynamic players in biogeochemical cycling in running waters and are subjected to environmental stressors like those provoked by climate change. We investigated whether a 2°C increase in flowing water would affect prokaryotic community composition and heterotrophic metabolic activities of biofilms grown under light or dark conditions. Neither light nor temperature treatments were relevant for selecting a specific bacterial community at initial phases (7-day-old biofilms), but both variables affected the composition and function of mature biofilms (28-day-old). In dark-grown biofilms, changes in the prokaryotic community composition due to warming were mainly related to rotifer grazing, but no significant changes were observed in functional fingerprints. In light-grown biofilms, warming also affected protozoan densities, but its effect on prokaryotic density and composition was less evident. In contrast, heterotrophic metabolic activities in light-grown biofilms under warming showed a decrease in the functional diversity towards a specialized use of several carbohydrates. Results suggest that prokaryotes are functionally redundant in dark biofilms but functionally plastic in light biofilms. The more complex and self-serving light-grown biofilm determines a more buffered response to temperature than dark-grown biofilms. Despite the moderate increase in temperature of only 2°C, warming conditions drive significant changes in freshwater biofilms, which responded by finely tuning a complex network of interactions among microbial populations within the biofilm matrix.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Bacteria / classification
  • Bacteria / metabolism*
  • Bacteria / radiation effects
  • Bacterial Load
  • Biofilms / growth & development*
  • Biofilms / radiation effects
  • Carbohydrate Metabolism
  • Fresh Water / microbiology*
  • Heterotrophic Processes / physiology*
  • Heterotrophic Processes / radiation effects
  • Light
  • Microbial Consortia / physiology*
  • Microbial Consortia / radiation effects
  • Phylogeny
  • Temperature