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Ecophysiological transition mediated by hybridization in a hybrid pine species complex
Zhi-Chao Li1, Chao-Qun Xu1,2, Wei Zhao3
1State Key Laboratory of Tree Genetics and Breeding, National Engineering Research Center of Tree Breeding and Ecological Restoration, National Engineering Laboratory for Tree Breeding, Key Laboratory of Genetics and Breeding in Forest Trees and Ornamental Plants, Ministry of Education, College of Biological Sciences and Technology, Beijing Forestry University, Beijing 100083, China.
Hybridization in Pinus densata facilitated adaptation to the Tibetan Plateau. Hybrids showed superior growth and gene expression changes, driving speciation and reproductive isolation.
Area of Science:
- Ecology
- Evolutionary Biology
- Genetics
Background:
- Hybridization is a key driver of evolution, but direct evidence linking it to adaptive differentiation in natural systems is scarce.
- Pinus densata, a crucial forest species on the Tibetan Plateau, is hypothesized to have arisen through hybridization.
Purpose of the Study:
- To investigate the role of hybridization in the speciation and adaptive differentiation of Pinus densata.
- To assess the phenotypic and transcriptomic consequences of hybridization in Pinus species.
Main Methods:
- Artificial interspecific F1 hybrids were created and studied alongside natural populations in a long-term common garden experiment.
- 44 growth and physiological traits were assessed across seasons, complemented by RNA sequencing for gene expression analysis.
Main Results:
- Pinus densata exhibited significant phenotypic divergence from its parental species, with enhanced growth and a balanced photosynthesis-photoprotection mechanism.
- Gene expression analysis revealed widespread differential gene expression in P. densata and F1 hybrids compared to mid-parent values, with common additive and non-additive gene actions.
- Transgressive gene expression was more prevalent in stabilized natural hybrids, indicating transcriptomic reprogramming and selection-driven divergence.
Conclusions:
- Hybridization has driven phenotypic divergence in Pinus densata, contributing to its adaptation to the high-altitude Tibetan Plateau.
- Altered physiology and gene expression in hybrids provide a basis for novel ecological adaptation and initiate reproductive isolation, supporting hybridization's role in speciation.
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