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Gillet, A.

Publications and source records attributed to Gillet, A..

2 recordsLinked to original sources

Rapid and repeated evolution of the pigmentation patterns in reef fishes

Pigmentation patterns are integral to animal biology1-3 and uncovering the mechanisms driving their diversification is essential for determining the evolutionary principles that shape this fundamental aspect of biodiversity4-7. Coral reef fishes are particularly notable for their extraordinary pattern diversity, ranging from simple spots and stripes to intricate, maze-like designs. Despite over a century of investigation, the evolutionary processes that govern the diversification of these pigmentation patterns remain one of the most persistent unresolved questions in evolutionary biology. Here, we investigate the relationship between pattern diversity, species richness, and geography across six iconic families of pattern-diverse coral reef fishes. Utilizing time-calibrated phylogenies, we reveal constant disparity of pigmentation patterns across globally variable reef fish communities8. We find strong evidence for a positive correlation between pattern diversity and species richness, with a high divergence of pigmentation patterns in sympatry that highlights the role of these patterns in speciation and phenotypic differentiation. Moreover, our findings support the stages model of adaptive radiation9, revealing that most pigmentation pattern diversity has emerged in evolutionary history. These results demonstrate that the evolutionary history of pigmentation patterns in reef fishes is characterized by a combination of rapid and constrained phenotypic diversification that has likely played a crucial role in their speciation dynamics.

evolutionary biology↗

Repatterning of mammalian backbone regionalization in cetaceans

The reinvasion of the aquatic realm by cetaceans is one of the most iconic ecological transitions that led to drastic modifications of the mammalian body plan, especially the axial skeleton. Relative to the vertebral column of other mammals that is subdivided into numerous anatomical regions, regional boundaries of the cetacean backbone appear obscured. Whether the traditional mammalian regions are present in cetaceans but hard to detect due to anatomical homogenization or if regions have been entirely repatterned remains unresolved. Here we combine a segmented linear regression approach with spectral clustering to quantitatively investigate the number, position, and homology of vertebral regions across species from all major cetacean clades. We propose the new "Nested Regions" hypothesis under which the cetacean backbone is composed of six homologous modules subdivided into six to nine post-cervical regions, with the degree of regionalization dependent on vertebral count and ecology. Compared to terrestrial mammals, the cetacean backbone is less regionalized in the precaudal segment but more regionalized in the caudal segment, indicating repatterning of the vertebral column associated with the transition from limb-powered to axial-driven locomotion.

evolutionary biology↗