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Omelchenko, D.

Publications and source records attributed to Omelchenko, D..

2 recordsLinked to original sources

Seeing in the deep: evolution of the opsin gene expression in Bermin crater lake cichlids

Cichlid visual systems can evolve rapidly during adaptive radiations. This study investigates the Bermin crater lake species flock in Cameroon, comprising thirteen (nine valid and four undescribed) Coptodon species, to explore the effects of deep-water light environments on visual evolution. We analyzed visual opsin genes and their expression using 109 retina transcriptomes, focusing on differences among species at varying depths, and seasonal changes in the visual system of a seasonally migrating species. All species exhibit a multichromatic system with at least five cone opsins. While opsin sequence variability among species was minimal due to the flocks evolutionary youth, opsin expression patterns varied significantly. Deep-water species showed reduced SWS1 and SWS2B expression, consistent with diminished UV-to-violet light in deeper waters. Unexpectedly, we observed increased proportional expression of the red-sensitive LWS opsin gene, contrary to trends seen in other lacustrine fishes. Additionally, in the seasonally deep-dwelling species Coptodon imbriferna, opsin expression varied plastically between the rainy (shallow) and dry (deep) seasons, with reduced SWS2B expression when the fish reside in the deeper habitats. To add context of other cichlid systems and to explore shared patterns of molecular adaptation, we compared Bermin cichlids to the deep-water species of the Barombi Mbo crater lake. Both cases exemplify independent evolution of deep-water species, yet their visual systems adapted similarly in the single cones (less UV- and violet-sensitive and more blue-sensitive cones), whereas differently in the long-wavelength sensitive double cones (LWS expression lost in Barombi while increased in Bermin). Overall, our study focuses on an evolutionarily young example of cichlid adaptive radiation, providing a unique opportunity to examine the initial phases of molecular adaptation in visual systems.

evolutionary biology↗

Hemoglobin gene repertoire in teleost and cichlid fishes shaped by gene duplications and genome rearrangements

Hemoglobin is a crucial element of the oxygen transport system in vertebrates. It exhibits remarkable gene diversity across teleost fishes, reflecting their evolutionary adaptations for thriving in various aquatic environments. In this study, we present the dynamic evolution of hemoglobin subunit genes based on a comparison of high quality long-read genome assemblies of 24 vertebrate species, including 16 teleosts (of which six are cichlids). Our findings indicate that teleost genomes contain between five (fugu) and 43 (salmon) hemoglobin genes, representing the largest hemoglobin gene repertoire among vertebrates. We find evidence that the ancestor of teleosts had at least four Hb and three or four Hb{beta} subunit genes, and that the current gene diversity emerged during subsequent teleost radiation, driven primarily by (tandem) gene duplications, genome compaction, and rearrangement dynamics. We provide insights into the genomic organization of hemoglobin clusters, revealing the parallel origin of multiple clusters in tetrapods and in teleosts. Importantly, we show that the presence of paralogous rhbdf1 genes flanking both teleost hemoglobin clusters (LA and MN) supports the hypothesis for the origin of the LA cluster by rearrangement within teleosts, rather than by the teleost specific whole-genome duplication. We specifically focus on cichlid fishes, where adaptation to low oxygen environments has been shown to play roles in species diversification. Our analysis of six cichlid genomes, including the Pungu maclareni from crater lake Barombi Mbo, for which we sequenced the representative genome, reveals 18 to 31 copies of the Hb genes, and elevated rates of non- synonymous substitutions compared to other teleosts. Overall, this work facilitates a deeper understanding of how hemoglobin genes contribute to the adaptive and diversification potential of teleosts.

evolutionary biology↗