Rapid adaptation and extinction in synchronized outdoor evolution experiments of Arabidopsis
- Xing Wu
- Tatiana Bellagio
- Yunru Peng
- Lucas Czech
- Meixi Lin
- Patricia Lang
- Ruth Epstein
- Mohamed Abdelaziz
- Jake Alexander
- Carlos Alonso-Blanco
- Heidi Lie Andersen
- Modesto Berbel
- Joy Bergelson
- Oliver Bossdorf
- Liana Burghardt
- Mireille Caton-Darby
- Robert Colautti
- Carolin Delker
- Panayiotis G. Dimitrakopoulos
- Kathleen Donohue
- Walter Durka
- Gema Escribano-Avila
- Steven J. Franks
- Felix B. Fritschi
- Alexandros Galanidis
- Alfredo Garcia-Fernández
- Ana García-Muñoz
- Elena Hamann
- Allison Hutt
- José M. Iriondo
- Thomas E. Juenger
- Stephen R. Keller
- Karin Koehl
- Arthur Korte
- Pamela Korte
- Alexander Kutschera
- Carlos Lara-Romero
- Laura Leventhal
- Daniel Maag
- Arnald Marcer
- Martí March-Salas
- Juliette de Meaux
- Belén Méndez-Vigo
- Javier Morente-López
- Timothy C. Morton
- Zuzana Münzbergova
- Anne Muola
- Hanna Akiko Nomoto
- Meelis Pärtel
- F. Xavier Picó
2026-03-26
Climate change forces species to adapt rapidly to avoid extinction. To directly observe rapid adaptation and extinction, we conducted synchronized evolution experiments with Arabidopsis thaliana in 30 locations across Western Europe, the Mediterranean, the Levant, and North America. Whole-genome pooled sequencing of ~70,000 surviving plants revealed repeatable allele frequency shifts in similar climates but divergent shifts across contrasting ones, indicating evolutionary adaptation. We identified genetic variants linked to climate adaptation, including genes involved in processes ranging from thermal-stress sensing to spring-flowering timing. Evolutionary trends were often predictable, but variable, across environments. In warmer climates, evolutionary predictability correlated with population survival over 5 years, whereas erratic changes preceded extinction. These results show that rapid climate adaptation is possible, but understanding its limits will be crucial for biodiversity forecasting.