Correlated evolution between heat tolerance and thermal performance curves in Drosophila subobscura
Mesas, A.; Jaramillo, A.; Castaneda, L. E.
Show abstract
Global warming imposes important challenges for ectotherm organisms, which can avoid the negative effects of thermal stress via evolutionary adaptation of their upper thermal limits (CTmax). In this sense, the estimation of CTmax and its evolutionary capacity is crucial to determine the vulnerability of natural populations to climate change. However, these estimates depend on the thermal stress intensity and it is not completely clear whether this thermal stress intensity can impact the evolutionary response of CTmax and thermal reaction norms (i.e. thermal performance curve, TPC). Here we performed an evolutionary experiment by selecting high heat tolerance using acute and chronic thermal stress in Drosophila subobscura. After artificial selection, we found that knockdown temperatures (a CTmax proxy) evolved in selected lines compared to control lines, whereas the realized heritability and evolutionary rate change of heat tolerance did not differ between acute-selected and chronic-selected lines. From TPC analysis, we found acute-selected lines evolved a higher optimal performance temperature (Topt) compared to acute-control lines, whereas this TPC parameter was not different between chronic-selected and chronic-control lines. The evolutionary response of Topt caused a displacement of entire TPC to high temperatures suggesting a shared genetic architecture between heat tolerance and high-temperature performance, which only arose in the acute-selected lines. In conclusion, thermal stress intensity has important effects on the evolution of thermal physiology in ectotherms, indicating that different thermal scenarios conduce to similar evolutionary responses of heat tolerance but do not for thermal performance. Therefore, thermal stress intensity could have important consequences on the estimations of the vulnerability of ectotherms to global warming.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- No evidence for short-term evolutionary response to a warming environment in Drosophila 96%
- Phenotypic plasticity as a function of genetic polymorphism: thermal dominance reversal in Drosophila species with contrasting melanism 95%
- Genetic variance in fitness and its cross-sex covariance predict adaptation during experimental evolution 95%
Similar papers in this journal
- Chill tolerant Drosophila species maintain electrogenic muscle membrane potential to resist cold-induced depolarization 95%
- Thermoregulatory consequences of growing up during a heatwave or a cold snap 93%
- The freeze-avoiding mountain pine beetle (Dendroctonus ponderosae) survives prolonged exposure to stressful cold by mitigating ionoregulatory collapse 93%
Similar papers in this journal
- Evolution of phenotypic plasticity during environmental fluctuations 95%
- Within population plastic responses to combined thermal-nutritional stress differ from those in response to single stressors, and are genetically independent across traits in both males and females. 94%
- Evolution of thermal performance curves: a meta-analysis of selection experiments 93%
Similar papers in this journal
Similar papers in this journal
- Drosophila suzukii wing spot size is robust to developmental temperature 94%
- Exploring links between climatic predictability and the evolution of within- and transgenerational plasticity 94%
- Many ways to make darker flies: Intra- and inter-specific variation in Drosophila body pigmentation components 94%
"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.