Climate-driven specialisation in plant-pollinator networks peaks outside the tropics
Sakhalkar, S. P.; Blüthgen, N.; Burkle, L. A.; CaraDonna, P.; Dalsgaard, B.; Dormann, C. F.; Kaiser-Bunbury, C. N.; Knight, T. M.; Ollerton, J.; Resasco, J.; Schleuning, M.; Vazquez, D. P.; Afagwu, R. N.; Alarcon, R.; Amorim, F. W.; Amorim, M. D.; Anyz, D.; Arroyo-Correa, B.; Artamendi, M.; Atalay, Z.; Bain, J. A.; Baldock, K. C. R.; Ballantyne, G.; Ballarin, C. S.; Balmaki, B.; Bartos, M.; Belavadi, V.; Biella, P.; Bjorkman, A. D.; Borges, J. P. R.; Bosch, J.; Bosenbecker, C.; Boyer, S.; Burghardt, K. T.; Cardona, E.; Casia, Q.; Castagna, A. M. T.; Celep, F.; Chiste, M. N.; Clough, Y.; Cook,
Show abstract
Pollination is a key ecological process sustaining biodiversity and food security, yet global patterns of plant-pollinator specialisation have remained unresolved. Using the largest global dataset of quantitative networks (>3,400 networks, >110,000 interactions), we show that the latitudinal specialisation gradient (LSG) exists, but it is non-linear, hemispherically asymmetric, and strongly taxon-dependent. Network-level and pollinator specialisation were lowest in the tropics and peaked at northern mid-latitudes, whereas plants tended to become more specialised toward higher latitudes. Climate consistently outperformed latitude, species richness, and environmental productivity as a predictor of these patterns. Specialisation declined with increasing temperature, rose with moderate rainfall before declining at the wettest sites, and increased with temperature seasonality, but plants and pollinators responded differently to these drivers. Functional groups diverged strongly: ectothermic insects were most specialised in cooler, seasonal climates, while birds showed weaker links to latitude but reduced specialisation in wetter regions. These findings demonstrate that climate, rather than latitude or species richness, structures global variation in specialisation. Because warmer and less seasonal climates promote generalisation, climate change is likely to disrupt the most specialised pollination systems, unevenly across taxa and regions, with important consequences for biodiversity and ecosystem stability.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Global plant-frugivore trait matching is shaped by climate and biogeographic history 95%
- A probabilistic view of forbidden links: their prevalence and their consequences for the robustness of plant-hummingbird communities 94%
- Warming is associated with temporal decoupling of species' body size and abundance 93%
Similar papers in this journal
- Global analysis of Poales diversification - parallel evolution in space and time into open and closed habitats 92%
- Diversification, disparification, and hybridization in the desert shrubs Encelia 92%
- Cheating emergences in the arbuscular mycorrhizal mutualism: a network and phylogenetic analysis 92%
Similar papers in this journal
- Evolutionary time best explains the latitudinal diversity gradient of living freshwater fish diversity 94%
- Müllerian mimicry in Neotropical butterflies: One mimicry ring to bring them all, and in the jungle bind them 91%
- Temporally robust occupancy frequency distributions in riverine ecosystems explained by local biodiversity regulation 90%
Similar papers in this journal
- Climate change impacts on the phylogenetic diversity of the world's terrestrial birds: more than species numbers 92%
- Repeated loss of variation in insect ovary morphology highlights the role of developmental constraint in life-history evolution 90%
- Coevolution of phenological traits shapes plant-pollinator coexistence 89%
"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.