Back

Differentiation for drought strategy but conserved plasticity to heat and drought in locally adapted populations of Arabidopsis thaliana

Buysse, S. F.; Nicholes, V.; Conner, J. K.; Josephs, E. B.

2026-01-08 evolutionary biology
10.64898/2026.01.07.698234 bioRxiv
Show abstract

Background and AimsAdaptive plasticity may be crucial for plants to survive rapid environmental changes long enough for evolutionary adaptation to occur. Heat and drought are both abiotic stresses projected to increase globally and their individual impact on plant growth and function is well-characterized. However, to understand potential responses to climate change, we must manipulate multiple stressors simultaneously. MethodsWe measured heat- and drought-related traits as well as fitness in two locally adapted populations of Arabidopsis thaliana from Rod[a]sen, Sweden and Castelnuovo di Porto, Italy. We used chamber common gardens that simulate the current fall and spring climate in Sweden and a hotter and drier climate to identify population differentiation for trait means, trait plasticity, and fitness. Key ResultsPopulation differentiation in both treatments suggests that the Swedish population avoids drought by investing in stress-tolerant leaves while the Italian population escapes drought by flowering early. Despite these differences, there is little evidence for genetic differentiation of plasticity; when experiencing heat and drought, both populations shift their traits in the direction expected to avoid drought. Further, both populations have greatly decreased fitness in heat and drought. ConclusionsThese results highlight that locally adapted populations with genetic differentiation for traits within a single environment can respond to the same stressors with plasticity in the same direction. Further, the combination of heat and drought will be extremely damaging to plant populations. Lay SummaryPlant populations respond to environmental stress in different ways, and their response can determine their survival. We found that plant populations that have evolved different drought responses in their native environments still have the same drought response in an experimental hot and dry environment. Both populations also make many fewer fruits, indicating they may decline in future climates.

Published in Annals of Botany (predicted rank #2) · training set

Matching journals

The top 7 journals account for 50% of the predicted probability mass.

50% of probability mass above

"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.