Search bioRxiv⌕ Search

Biology subjects

Tschanz-Lischer, H.

Publications and source records attributed to Tschanz-Lischer, H..

2 recordsLinked to original sources

Highly modular genomic architecture underlies combinatorial mechanism of speciation and adaptive radiation

Hybridisation can fuel rapid adaptive radiation, but how it enables the formation of phenotypically highly dimensional species-rich radiations remains unclear. We investigated this by analysing genotype-phenotype associations for 14 ecological (trophic, body patterns) and mating traits (nuptial colour) across 107 species of Lake Victoria cichlid fishes. We find weak trait covariance across the radiation, with many different trait combinations constituting different species. Across the radiation, polygenic, redundant, and lowly pleiotropic genomic architectures of hybrid origin underlie the repeated evolution of key traits. Such independent genomic modules can be reshuffled and recombined like Lego bricks, generating diverse trait combinations from a finite number of elements. During speciation, dispersed oligogenic trait modules become coupled through long-range linkage disequilibrium. We propose that this genomic and phenotypic modularity emerged from repeated cycles of past hybridisation, enabling superfast adaptive radiation through combinatorial speciation.

evolutionary biology↗

Molecular characterization of cell types in the squid Loligo vulgaris

Cephalopods have long been getting a lot of attention for their fascinating behavioral abilities and for the complexity of their nervous systems that set them apart from other mollusks. Because of the great evolutionary distance that separates vertebrates from mollusks, it is evident that higher cognitive features have evolved independently in this clade although they sometimes resemble cognitive functions of vertebrates. Alongside their complex behavioral abilities, cephalopods have evolved specialized cells and tissues, such as the chromatophores for camouflage or suckers to grasp prey. Gaining a better understanding of the biology of various species of cephalopods can significantly improve our knowledge of how these animals evolved and better identify the mechanisms that drive the astonishing faculties of their nervous systems. In this study, we performed single-cell transcriptomics of whole heads of Loligo vulgaris pre-hatchlings. We characterized the different cell types in the head of these animals and explored the expression patterns of core cell type markers by hybridization chain reaction. We were able to thoroughly describe some major components of the squid nervous that play important roles for the maintenance, development and sensory function in the nervous system of these animals.

developmental biology↗