TY - JOUR
T1 - Drivers of epilithic biofilms in Greenland streams
T2 - The role of nutrients, temperature and catchment slope across a climate gradient
AU - Moedt, Sanne M.
AU - Christoffersen, Kirsten S.
AU - Westergaard-Nielsen, Andreas
AU - Martinsen, Kenneth T.
AU - Pastor, Ada
AU - Korsgaard, Niels Jákup
AU - Riis, Tenna
N1 - Publisher Copyright:
© 2025 The Author(s). Environmental Microbiology Reports published by John Wiley & Sons Ltd.
PY - 2025/4
Y1 - 2025/4
N2 - The Arctic is warming faster than the global average, making it critical to understand how this affects ecological structure and function in streams, which are key Arctic ecosystems. Microbial biofilms are crucial for primary production and decomposition in Arctic streams and support higher trophic levels. However, comprehensive studies across Arctic regions, and in particular within Greenland, are scarce. This study analysed total biomass, autotrophic biomass (chlorophyll a), and the general structure of major autotrophic groups in stream epilithic biofilms across Greenland's subarctic, Low Arctic, and High Arctic regions. Our aim was to identify primary environmental drivers of biofilm across these climate regions. We observed large environmental variation differences in biofilm chlorophyll a concentrations and total biomass across the regions. Cyanobacteria, diatoms, and green algae were present in all regions, with cyanobacteria dominating High Arctic streams. Phosphate and water temperature primarily drove autotrophic biofilm abundance measured as chlorophyll a concentration, while catchment slope and nitrate concentrations influenced total biofilm biomass, with relationships varying by region. Our results suggest increased biofilm accumulation in Greenland streams under projected climate warming, which likely will alter trophic food webs and biogeochemical cycling, with region-specific responses expected.
AB - The Arctic is warming faster than the global average, making it critical to understand how this affects ecological structure and function in streams, which are key Arctic ecosystems. Microbial biofilms are crucial for primary production and decomposition in Arctic streams and support higher trophic levels. However, comprehensive studies across Arctic regions, and in particular within Greenland, are scarce. This study analysed total biomass, autotrophic biomass (chlorophyll a), and the general structure of major autotrophic groups in stream epilithic biofilms across Greenland's subarctic, Low Arctic, and High Arctic regions. Our aim was to identify primary environmental drivers of biofilm across these climate regions. We observed large environmental variation differences in biofilm chlorophyll a concentrations and total biomass across the regions. Cyanobacteria, diatoms, and green algae were present in all regions, with cyanobacteria dominating High Arctic streams. Phosphate and water temperature primarily drove autotrophic biofilm abundance measured as chlorophyll a concentration, while catchment slope and nitrate concentrations influenced total biofilm biomass, with relationships varying by region. Our results suggest increased biofilm accumulation in Greenland streams under projected climate warming, which likely will alter trophic food webs and biogeochemical cycling, with region-specific responses expected.
KW - aquatic microbiology
KW - biofilm biology
KW - microbial communities
UR - http://www.scopus.com/inward/record.url?scp=105000106728&partnerID=8YFLogxK
U2 - 10.1111/1758-2229.70074
DO - 10.1111/1758-2229.70074
M3 - Article
C2 - 40077906
AN - SCOPUS:105000106728
SN - 1758-2229
VL - 17
JO - Environmental Microbiology Reports
JF - Environmental Microbiology Reports
IS - 2
M1 - e70074
ER -