The interplay of climate change, urbanization, and species traits shapes European butterfly population trends
Colom, P.; Tejeda, A.; Bonelli, S.; Fontaine, B.; Kuussaari, M.; Maes, D.; Mestdagh, X.; Munguira, M. L.; Musche, M.; Pettersson, L. B.; Roy, D.; Rudisser, J.; Sasic, M.; Schmucki, R.; Stefanescu, C.; Titeux, N.; Settele, J.; van Swaay, C.; Gordillo, J.; Melero, Y.
Show abstract
Species populations naturally fluctuate, yet long-term trend analysis can reveal patterns of success, decline, or stability under global change pressures. While responses to climate change are well-documented, its synergy with another major global driver, urbanization, remains understudied. Here, we analyzed long-term monitoring data from over 8,400 populations of 145 butterfly species across Europe, representing a high diversity of species traits, to assess population trends in response to climate change and urbanization. We examined how population responses vary between urban and rural contexts, providing insights into the influence of site-specific conditions. Climate warming was associated with population declines, which were more pronounced in urban areas. The effect of precipitation varied between environments: increases in precipitation generally benefited populations in rural areas but had detrimental effects in urban ones. Aridity consistently drove population declines across environments, with slightly stronger effects in urban areas. Species with colder climatic niches declined the most in response to warming, increased aridity, and reduced precipitation, while trophic specialists were particularly vulnerable to aridity and precipitation changes in urban environments. Although increasing urbanization did not explain overall population trends, its effects became evident when considering species traits, with certain traits being more vulnerable to urbanization. Specifically, species with narrow climatic niches declined the most in response to urbanization in rural areas, while those and larger body sizes decline the most in urban environments. Our findings highlight the complex interplay between environmental change, landscape context, and species traits in shaping biodiversity outcomes. Importantly, our results suggest that urbanization generally amplifies the impact of climate change on insect population trends.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Climate change should drive mammal defaunation in tropical dry forests 95%
- Substantial urbanization-driven declines of larval and adult moths in a subtropical environment 95%
- Predicting species and community responses to global change in Australian mountain ecosystems using structured expert judgement 93%
Similar papers in this journal
- Including imprecisely georeferenced specimens improves accuracy of species distribution models and estimates of niche breadth 94%
- Megafauna diversity and functional declines in Europe from the Last Interglacial (LIG) to the present 94%
- The effects of human population density on trophic interactions are contingent upon latitude 94%
Similar papers in this journal
- Elevated human impact on islands increases the introduction and extinction status of native insular reptiles 94%
- Lagged climate-driven range shifts at species' leading, but not trailing, range edges revealed by multispecies seed addition experiment 94%
- Body mass and latitude as global predictors of vertebrate populations exposure to multiple threats 93%
Similar papers in this journal
- Biotic interactions are more important at species' warm vs. cool range-edges: a synthesis 94%
- Global plant-frugivore trait matching is shaped by climate and biogeographic history 94%
- Legacy of the lost and pressure of the present: Malagasy plant seeds retain megafauna dispersal signatures but downsize under human footprint 94%
Similar papers in this journal
- Spatial and seasonal variation in thermal sensitivity within North American bird species 94%
- Climate change impacts on the phylogenetic diversity of the world's terrestrial birds: more than species numbers 94%
- Impacts of predator-mediated interactions along a climatic gradient on the population dynamics of an alpine bird 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.