TY - JOUR
T1 - Total RNA analysis of the active microbiome on moving bed biofilm reactor carriers under incrementally increasing micropollutant concentrations
AU - Martin, Joseph Donald
AU - Tisler, Selina
AU - Scheel, Maria
AU - Svendsen, Sif
AU - Anwar, Muhammad Zohaib
AU - Zervas, Athanasios
AU - Ekelund, Flemming
AU - Bester, Kai
AU - Hansen, Lars Hestbjerg
AU - Jacobsen, Carsten Suhr
AU - Ellegaard-Jensen, Lea
N1 - © The Author(s) 2024. Published by Oxford University Press on behalf of FEMS.
PY - 2024
Y1 - 2024
N2 - Micropollutants are increasingly prevalent in the aquatic environment. A major part of these originates from wastewater treatment plants since traditional treatment technologies do not remove micropollutants sufficiently. Moving bed biofilm reactors (MBBRs), however, have been shown to aid in micropollutant removal when applied to conventional wastewater treatment as a polishing step. Here, we used Total RNA sequencing to investigate both the active microbial community and functional dynamics of MBBR biofilms when these were exposed to increasing micropollutant concentrations over time. Concurrently, we conducted batch culture experiments using biofilm carriers from the MBBRs to assess micropollutant degradation potential. Our study showed that biofilm eukaryotes, in particular protozoa, were negatively influenced by micropollutant exposure, in contrast to prokaryotes that increased in relative abundance. Further, we found several functional genes that were differentially expressed between the MBBR with added micropollutants and the control. These include genes involved in aromatic and xenobiotic compound degradation. Moreover, the biofilm carrier batch experiment showed vastly different alterations in benzotriazole and diclofenac degradation following the increased micropollutant concentrations in the MBBR. Ultimately, this study provides essential insights into the microbial community and functional dynamics of MBBRs and how an increased load of micropollutants influences these dynamics.
AB - Micropollutants are increasingly prevalent in the aquatic environment. A major part of these originates from wastewater treatment plants since traditional treatment technologies do not remove micropollutants sufficiently. Moving bed biofilm reactors (MBBRs), however, have been shown to aid in micropollutant removal when applied to conventional wastewater treatment as a polishing step. Here, we used Total RNA sequencing to investigate both the active microbial community and functional dynamics of MBBR biofilms when these were exposed to increasing micropollutant concentrations over time. Concurrently, we conducted batch culture experiments using biofilm carriers from the MBBRs to assess micropollutant degradation potential. Our study showed that biofilm eukaryotes, in particular protozoa, were negatively influenced by micropollutant exposure, in contrast to prokaryotes that increased in relative abundance. Further, we found several functional genes that were differentially expressed between the MBBR with added micropollutants and the control. These include genes involved in aromatic and xenobiotic compound degradation. Moreover, the biofilm carrier batch experiment showed vastly different alterations in benzotriazole and diclofenac degradation following the increased micropollutant concentrations in the MBBR. Ultimately, this study provides essential insights into the microbial community and functional dynamics of MBBRs and how an increased load of micropollutants influences these dynamics.
KW - Biofilms/growth & development
KW - Microbiota
KW - Bioreactors/microbiology
KW - Wastewater/microbiology
KW - Water Pollutants, Chemical/metabolism
KW - Bacteria/genetics
KW - Biodegradation, Environmental
KW - Waste Disposal, Fluid/methods
U2 - 10.1093/femsec/fiae098
DO - 10.1093/femsec/fiae098
M3 - Journal article
C2 - 38986504
SN - 0168-6496
VL - 100
JO - FEMS Microbiology Ecology
JF - FEMS Microbiology Ecology
IS - 9
M1 - fiae098
ER -