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Dye, M.

Publications and source records attributed to Dye, M..

3 recordsLinked to original sources

The Tangled History and Taxonomy of an Iconic Chorus Frog Complex Clarified using Genomic Analyses

Species represent a fundamental unit of biodiversity in evolutionary biology, but the nature of the speciation continuum and inadequate sampling of organisms with broad distributions provide substantial challenges to species delimitation. The Pacific Treefrog complex (Pseudacris regilla sensu lato) is an iconic but systematically poorly understood group of chorus frogs inhabiting a vast portion of western North America. Current studies tentatively recognize three species in this complex (P. hypochondriaca, P. regilla, P. sierra), but disagreement remains among morphological, mitochondrial, and nuclear genetic data. In this study, we used thorough geographic sampling and thousands of nuclear loci, along with an integrative, multi-method approach to clarify the phylogenetic relationships and divergence history of P. regilla s.l. lineages and recommend a new taxonomic arrangement for the group. Pseudacris regilla and P. sierra fall firmly within the "gray zone" of speciation, composing a combined "north" lineage. Based on the degree of congruence in inferences from our analyses and evidence for isolating mechanisms, we propose a two species taxonomy for this complex, recognizing the "north" lineage as P. regilla and retaining P. hypochondriaca as a species. Our study shows how extensive geographic sampling, high-throughput sequencing, and multiple analytical approaches can resolve systematic uncertainties in challenging species complexes.

evolutionary biology↗

Environmental stress amplifies competitive asymmetry and drives divergent hybrid zone outcomes

Community persistence depends on the balance between abiotic constraints and biotic interactions. Environmental stress can either sort species by physiological limits or amplify competitive asymmetries, producing coexistence, exclusion, or collapse. We tested these alternatives in two replicate hybrid swarms between orangethroat and orangebelly darters (Etheostoma pulchellum and E. radiosum spp. complex) with contrasting outcomes: long-term coexistence in the Blue River versus collapse in the Washita River. We combined critical-thermal-maximum (CTmax) assays with standardized feeding experiments to evaluate physiological tolerance, competitive exclusion, and stress-amplified competition. CTmax varied with river, sex, and body size but not consistently between species, indicating that local history and demography outweighed intrinsic physiological differences. In contrast, competition trials revealed strong, temperature-dependent asymmetries: E. pulchellum dominated in the cooler, stable Blue River, whereas E. radiosum spp. gained a foraging advantage under high temperatures in the warmer Washita River drainage. These results support the prediction that abiotic stress amplifies competitive asymmetries, flipping dominance and explaining divergent hybrid zone outcomes. More broadly, our study links hybrid zone dynamics to coexistence theory, showing that climate extremes can shift competitive balance and determine whether secondary contact results in persistence or loss.

evolutionary biology↗

Sex chromosome turnover and mitonuclear conflict drive reproductive isolation

Identifying the genetic basis of reproductive barriers is essential for understanding the origin and maintenance of biological diversity. While some hybrid incompatibilities evolve as incidental byproducts of divergence1-3, those involving sex chromosomes and mitochondrial-nuclear interactions may arise through predictable pathways shaped by genomic conflict4-8. Yet, the extent to which such interactions drive the evolution of reproductive barriers and speciation in natural populations remains unclear9-11. Here, we use whole-genome resequencing in North American fishes to show that two hybridizing species possess distinct, nonhomologous sex chromosomes. These chromosomes exhibit strong associations with sex, reduced introgression in natural hybrid zones, segregation distortion in backcrosses, and an enrichment of nuclear-encoded mitochondrial genes, indicative of sex-linked mitonuclear incompatibilities. We identify a third, distinct sex chromosome in another hybridizing species, indicating repeated sex chromosome turnover within the clade. Parental crosses and genomic analyses suggest that at least one of these transitions was driven by a recessive female-determining mutation, a rare empirical example of a theoretically predicted but seldom observed mechanism of sex chromosome evolution. Together, these results link genomic architecture to hybrid dysfunction and behavioral isolation, providing strong empirical support for long-standing predictions about the role of sex-linked and cytonuclear incompatibilities in speciation.

evolutionary biology↗