• norsk
    • English
  • norsk 
    • norsk
    • English
  • Logg inn
Vis innførsel 
  •   Hjem
  • Norges miljø- og biovitenskapelige universitet
  • Publikasjoner fra Cristin - NMBU
  • Vis innførsel
  •   Hjem
  • Norges miljø- og biovitenskapelige universitet
  • Publikasjoner fra Cristin - NMBU
  • Vis innførsel
JavaScript is disabled for your browser. Some features of this site may not work without it.

Transcriptional profiling elucidates biofilm functionality in the dynamic environment of an enhanced biological phosphorus removal reactor

Villard, Didrik; Snipen, Lars-Gustav; Rudi, Knut; Branders, Sverre; Saltnes, Torgeir; Eikås, Sondre; Johansen, Wenche
Peer reviewed, Journal article
Published version
Thumbnail
Åpne
wst2024314.pdf (812.1Kb)
Permanent lenke
https://hdl.handle.net/11250/3169629
Utgivelsesdato
2024
Metadata
Vis full innførsel
Samlinger
  • Journal articles (peer reviewed) [5298]
  • Publikasjoner fra Cristin - NMBU [6263]
Originalversjon
Water Science and Technology. 2024, 90 (7), 2114-2130.   10.2166/wst.2024.314
Sammendrag
Recently, biofilms, complex and dynamic structures of microorganisms, have been applied to enhanced biological phosphorus removal (EBPR), a wastewater treatment configuration dependent on cyclic shifts between anaerobic and aerobic conditions. In this study, comparative metagenomics and metatranscriptomics were performed on biofilms collected from seven sites of a moving-bed-biofilm-reactor-based EBPR process. The aim was to examine the functional ecology of phosphorus-accumulating biofilms throughout a single EBPR cycle. Taxonomic profiling revealed high microbial diversity, stable throughout the EBPR cycle. The dominant phosphorus-accumulating organisms (PAOs) were identified as Candidatus accumulibacter, Candidatus phosphoribacter, and Candidatus lutibacillus. However, these did not show the highest transcriptional activities. Propionivibrio, a glycogen-accumulating organism, was the most transcriptionally active. Comparative analysis of biofilms from different EBPR stages showed a progressive change in metatranscriptome composition, correlating with nutrient removal. Analysis of differentially expressed genes in abundant PAOs revealed key genes associated with the uptake of phosphorus, degradation of glycogen, biosynthesis of polyhydroxyalkanoates, and acetate production. In conclusion, this study reveals that biofilms possess the capability to adapt to environmental fluctuations primarily through alterations in microbial gene expression activity and subsequent metabolic modulation, and dominant taxa may not necessarily exhibit the highest transcriptional activity in complex microbial communities.
Tidsskrift
Water Science and Technology

Kontakt oss | Gi tilbakemelding

Personvernerklæring
DSpace software copyright © 2002-2019  DuraSpace

Levert av  Unit
 

 

Bla i

Hele arkivetDelarkiv og samlingerUtgivelsesdatoForfattereTitlerEmneordDokumenttyperTidsskrifterDenne samlingenUtgivelsesdatoForfattereTitlerEmneordDokumenttyperTidsskrifter

Min side

Logg inn

Statistikk

Besøksstatistikk

Kontakt oss | Gi tilbakemelding

Personvernerklæring
DSpace software copyright © 2002-2019  DuraSpace

Levert av  Unit