TY - JOUR
T1 - Recent community warming of moths in Finland is driven by extinction in the north and colonisation in the south
AU - Ellis, Emilie E.
AU - Antao, Laura H.
AU - Davrinche, Andrea
AU - Makinen, Jussi
AU - Rees, Mark
AU - Conenna, Irene
AU - Huikkonen, Ida-Maria
AU - Leinonen, Reima
AU - Poyry, Juha
AU - Suuronen, Anna
AU - Laine, Anna-Liisa
AU - Saastamoinen, Marjo
AU - Vanhatalo, Jarno
AU - Roslin, Tomas
PY - 2025
Y1 - 2025
N2 - As the climate warms, species are shifting their ranges to match their climatic niches, leading to the warming of ecological communities (thermophilisation). We currently have little understanding of the population-level processes driving this community-level warming, particularly at rapidly warming high latitudes. Using 30 years of high-resolution moth monitoring data across a 1200 km latitudinal gradient in Finland, we find that higher latitude communities are experiencing more rapid thermophilisation. We attribute this spatial variation to colonisation-extinction dynamics, both for the full community and for thermal affinity groups. Our findings reveal that latitudinal variation in the pathways underpinning thermophilisation is the net outcome of opposite forces: in the north, community warming is driven by the extinction of cold-affiliated species, while in the south it is driven by high colonisation rates of warm-affiliated species. Thus, we show how species' thermal affinities influence community reorganisation and highlight the elevated extinction risk among cold-affiliated species.
AB - As the climate warms, species are shifting their ranges to match their climatic niches, leading to the warming of ecological communities (thermophilisation). We currently have little understanding of the population-level processes driving this community-level warming, particularly at rapidly warming high latitudes. Using 30 years of high-resolution moth monitoring data across a 1200 km latitudinal gradient in Finland, we find that higher latitude communities are experiencing more rapid thermophilisation. We attribute this spatial variation to colonisation-extinction dynamics, both for the full community and for thermal affinity groups. Our findings reveal that latitudinal variation in the pathways underpinning thermophilisation is the net outcome of opposite forces: in the north, community warming is driven by the extinction of cold-affiliated species, while in the south it is driven by high colonisation rates of warm-affiliated species. Thus, we show how species' thermal affinities influence community reorganisation and highlight the elevated extinction risk among cold-affiliated species.
UR - https://res.slu.se/id/publ/143566
U2 - 10.1038/s41467-025-62216-9
DO - 10.1038/s41467-025-62216-9
M3 - Journal article
C2 - 40796798
SN - 2041-1723
VL - 16
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 7063
ER -