The CONstrainCONverge project has made significant technical and scientific progress across its four main work packages (WPs), with outcomes in understanding the genetic mechanisms behind adaptive evolution.
WP1: The genome-wide analysis of convergent selection was completed, revealing that alpine adaptation in Arabidopsis is polygenic and partly repeatable across species. A list of repeatedly used ‘hotspot’ genes was established, serving as the basis for further work in other WPs. The discussion of the results was published in Trends in Ecology and Evolution, offering a detailed exploration of the genetic basis of convergence in natural systems.
WP2: Transcriptomic data was processed using tools like DESeq2 and WGCNA. The analysis revealed that adaptive genes exhibit variable levels of pleiotropy, with some acting as peripheral genes while others are highly connected "hub" genes within transcription networks. This suggests that more connected genes may play a key role in adapting to challenging environments. Part of the findings are under review for publication in PLOS Genetics, with data analysis ongoing to refine the understanding of these pleiotropic networks.
WP3: This WP focused on modeling the origins and positions of adaptive alleles in hotspot genes. I found that adaptive alleles are shared across species, sometimes even across species boundaries. Both regulatory and coding changes were found to contribute to repeated adaptation, and the proportion of these changes varies according to the gene's functional type (e.g. transcription factors vs. structural proteins). This work is complete, and the results will be combined with WP2 for publication.
WP4: This WP aimed to functionally assess the fitness impacts and pleiotropy of selected hotspot genes. A shift occurred in the experimental design, moving from transgenic approaches to natural crossings of alpine and foothill alleles to avoid potential genetic incompatibilities. Using this approach, naturally contrasting lines were generated for key genes, such as PAP1 (anthocyanin synthesis), FAR5 (fatty acid reductase), and MAP18 (pollen tube elongation). Initial experiments showed that the alpine allele of PAP1 is responsible for pink flower pigmentation, and the FAR5 gene alters suberin composition. However, fitness effects of these alleles have not yet been conclusively determined, and further experiments are planned for the 2025 growing season.
Overall Scientific Outcomes
The technical work accomplished in CONstrainCONverge has deepened the understanding of how pleiotropy shapes adaptive evolution, particularly in challenging alpine environments. The identification of pleiotropic constraints and convergent genetic mechanisms provides insights into how organisms repeatedly adapt to environmental pressures. The use of both genomic and transcriptomic data, along with the innovative shift to natural variability in fitness experiments, underscores the project's contribution to evolutionary genetics.