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Ortega Gimenez, J.

Publications and source records attributed to Ortega Gimenez, J..

2 recordsLinked to original sources

Evolved and plastic gene expression in adaptation to a novel niche

Gene expression, resulting from complex regulatory interactions, plays an important role in adaptation and speciation. While gene expression historically has been studied in the context of reproductive isolation in speciation research, a role for evolved differences in gene expression in adaptation to novel niches is increasingly appreciated. How gene expression evolves and enables divergent ecological adaptation, and how changes in gene expression relate to genomic architecture and genetic divergence are pressing questions in understanding the processes of adaptation and ecological speciation. Further, how plasticity in gene expression can both contribute to and be affected by the process of ecological adaptation is a crucial component in understanding gene expression evolution. To address these questions, we investigate the role of evolved and plastic gene expression differences in adaptation leveraging an established host plant shift in the peacock fly Tephritis conura. Using a cross-fostering design where larvae feed on either natal or alternate host plants, we uncover extensive evolved differences in gene expression between the ecotypes, strikingly in genes associated with processing of host plant chemicals. We find limited evidence for plasticity, with some indications of higher plasticity in the ancestral ecotype where the expression of three gene coexpression modules is altered when larvae are cross-fostered to the derived host plant. Interestingly, we find an enrichment of differentially expressed genes within a large, ecotype-specific inversion in the T. conura genome. This finding adds to evidence that inversions are important for enabling diversification in the face of gene flow and underscores that effects on gene expression may be key to understanding the role of inversions.

evolutionary biology↗

The genomic landscape of adaptation to a new host plant

Adaptation to novel ecological niches is known to be rapid. However, how the loci underlying ecological divergence are coupled to traits reproductively isolating populations, ultimately enabling the formation of persistent species, remains a consequential question in speciation research. Here, we investigated the genomic differences underpinning colonization of a new niche and formation of two partly sympatric host races of Tephritis conura peacock flies. We took advantage of two independent sympatric zones west and east of the Baltic Sea, where host plant specialists using the thistle species Cirsium heterophyllum and C. oleraceum co-occur, and address what regions of the genome maintain the host races in parallel. Using genome-wide association, differentiation and divergence statistics, we identified a large, highly divergent region associated with host use among western and eastern populations. Within this region, we identified unique haplotypes associated with each host race, indicative of a large inversion, adding to the growing body of evidence that structural changes to the genome are important for adaptations to persist in the face of gene flow. We further showed strong signatures of selection in this region, especially in populations of the derived C. oleraceum specialist host race. The region also had reduced introgression, especially in western populations, while the rest of the genome showed signs of extensive gene flow. Genes within highly differentiated windows within the putative inversion were not only enriched for functions involved in host adaptation, including phenology and metabolic responses to different metabolites in the two host plants, but also enriched for gametogenesis, fertilization and embryological development, all of which suggest sequence divergence could have large consequences on reproductive isolation between the host races. In conclusion, this study suggests that structural changes in the genome may facilitate the formation of persistent host races, and ultimately speciation, in face of gene flow.

evolutionary biology↗