Direct and correlated responses to artificial selection for growth and water-use efficiency in a Mediterranean pine
- PMID: 33512710
- DOI: 10.1002/ajb2.1599
Direct and correlated responses to artificial selection for growth and water-use efficiency in a Mediterranean pine
Abstract
Premise: Persistence of tree populations in the face of global change relies on their capacity to respond to biotic and abiotic stressors through plastic or adaptive changes. Genetic adaptation will depend on the additive genetic variation within populations and the heritability of traits related to stress tolerance. Because traits can be genetically linked, selective pressure acting on one trait may lead to correlated responses in other traits.
Methods: To test direct and correlated responses to selection for growth and drought tolerance in Pinus halepensis, we selected trees in a parental population for higher growth and greater water-use efficiency (WUE) and compared their offspring with the offspring of random trees from the parental population in two contrasting common gardens. We estimated direct responses to selection for growth and WUE and correlated responses for growth and tolerance to abiotic and biotic stressors.
Results: We found a strong response to selection and high realized heritability for WUE, but no response to selection for growth. Correlated responses to selection in other life-history traits were not significant, except for concentration of some chemical defenses, which was greater in the offspring of mother trees selected for growth than in the offspring of unselected control trees.
Conclusions: The empirical evidence of direct responses to selection for high WUE suggests that P. halepensis has the potential to evolve in response to increasing drought stress. Contrary to expectations, the results are not conclusive of a potential negative impact of WUE and growth selection on other key life-history traits.
Keywords: Mediterranean pine; chemical defenses; correlated responses to selection; direct responses to selection; drought stress; global change; intrinsic water-use efficiency; productivity; realized heritability; terpenes.
© 2021 Botanical Society of America.
References
LITERATURE CITED
-
- Abdala-Roberts, L., X. Moreira, J. C. Cervera, and V. Parra-Tabla. 2014. Light availability influences growth-defense trade-offs in big-leaf mahogany (Swietenia macrophylla King). Biotropica 46: 591-597.
-
- Agrawal, A. A., J. K. Conner, and S. Rasmann. 2010. Tradeoffs and negative correlations in evolutionary ecology. In M. A. Bell, W. F. Eanes, D. J. Futuyma, and J. S. Levinton [eds.], Evolution after Darwin: the first 150 years, 242-268.Sinauer, Sunderland, MA, USA.
-
- Aitken, S. N., S. Yeaman, J. A. Holliday, T. Wang, and S. Curtis-McLane. 2008. Adaptation, migration or extirpation: climate change outcomes for tree populations. Evolutionary Applications 1: 95-111.
-
- Alberto, F. J., S. N. Aitken, R. Alía, S. C. González-Martínez, H. Hänninen, A. Kremer, F. Lefèvre, et al. 2013. Potential for evolutionary responses to climate change - evidence from tree populations. Global Change Biology 19: 1645-1661.
-
- Anderegg, W. R., J. A. Hicke, R. A. Fisher, C. D. Allen, J. Aukema, B. Bentz, S. Hood, et al. 2015. Tree mortality from drought, insects, and their interactions in a changing climate. New Phytologist 208: 674-683.
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