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Araya-Donoso, R.

Publications and source records attributed to Araya-Donoso, R..

3 recordsLinked to original sources

Genome-wide divergence in a desert plant in the Baja California Peninsula driven by glacial cycles and adaptation to different climatic conditions

The processes that generate distinct patterns of population subdivision (i.e., phylogeographic breaks) and facilitate local adaptations continue to be a focal point of evolutionary research. Here, we used whole-genome sequencing, demographic modeling, ecological niche modeling, and genotype-environment association analysis paired with outlier tests to understand patterns and drivers of diversification of the desert shrub Encelia farinosa in the Baja California Peninsula. We found that E. farinosa was represented by three moderately differentiated (0.027 < Fst < 0.068) genetically distinct groups, distributed across the North, Central and Southern regions of the Peninsula. Demographic analyses revealed fluctuations in the effective population sizes and two lineage divergence events, which coincided with the onset of recent glacial cycles. The ecological niche modeling recovered concordant southward shifts and decrease in the suitable habitat for all E. farinosa groups during the Last Glacial period. Analyses of associations between putative adaptive loci and environmental variables suggested that climate has been an important driver of adaptive genetic variation, with regional differentiation primarily associated with solar irradiation, temperature, and precipitation seasonality. We demonstrate that local adaptations in E. farinosa involve multiple genes associated with immune response, stress response, and morphological adaptations associated with arid climate such as leaf pubescence. Our findings indicate that current levels of differentiation and genetic variation in E. farinosa can be explained by the interplay of processes acting at multiple temporal scales, including isolation by distance, glaciation-mediated demographic processes, and recent natural selection shaping specific adaptations for each geographical group.

evolutionary biology↗

A chromosome-length reference genome for the common side-blotched lizard Uta stansburiana and gene expression data reveals fast pace-of-life comes with environmental stability

Uta stansburiana are an emerging model system for testing hypotheses regarding the evolution of pace-of-life syndromes (POLS) across its variable environments and wide latitudinal gradient. POLS are suites of traits related to variation of life history along a slow maturing-fast maturing continuum. We present a high-quality chromosome-level reference genome for U. stansburiana and use RNA-seq gene expression data to test for molecular correlates for pace-of-life differences between locations with higher and lower climate seasonality, UV differences, and sexual size dimorphism (SSD). Our assembly is 2.1 Gbp, has scaffold N50 of 320 Mbp, includes 104 scaffolds, and has an L50 of 3. The assembly comprises six macrochromosomes and 11 microchromosomes. We annotated 20,350 genes for the assembly and found a repeat element composition of 49.23%, similar to work in other phrynosomatid lizards. RNA-seq data reveal differential expression in genes consistent with pace-of-life differences and physiological variation including those related to stress, sexual reproduction, and cell proliferation/carcinogenesis between distinctive environments. Our results provide genes potentially underlying the molecular bases of POLS differences in a wild lizard.

evolutionary biology↗

Strong signatures of selection on genes underlying core reinforcement mechanisms in speciating desert tortoises

Genomic reinforcement and differential ecological adaptation are thought to be fundamental mechanisms of speciation. In this study we investigate the genomic basis of adaptation and reinforcement between two desert tortoise species of North America that occupy desert habitats with differing seasonal rainfall patterns and have considerable behavioral and reproductive differences yet maintain a narrow hybrid zone. We generated a chromosome-scale reference genome for Gopherus morafkai and performed analysis of synteny, genes under positive selection, and environmental niche modeling. Results show extensive positive selection (422 genes) including related to eye development and function that may relate to environmental differences, as well as prezygotic isolation mechanisms such as sperm-egg recognition, and postzygotic reinforcement mechanisms such as the spindle assembly checkpoint, and sister chromatid pairing. Together, results offer strong genetic support for the role of these classic processes in shaping reproductive isolation and lineage divergence of speciating tortoises.

evolutionary biology↗