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Dimos, B.

Publications and source records attributed to Dimos, B..

2 recordsLinked to original sources

A Homology Guide for Pacific Salmon Genus Oncorhynchus resolves patterns of Duplicate Retention, Rediploidization and Local Adaptation Following the Salmonid Specific Whole Genome Duplication Event

Salmonid fishes have emerged as a tractable model to study whole genome duplications (WGD) as this group has undergone four rounds of WGD, with a significant proportion of the genome yet to rediploidize. The fact that much of modern salmonid genomes retain duplicates from the most recent WGD while other regions have rediploidized creates complications for genetic studies by obscuring homology relationships and the necessity of filtering duplicate regions from many analyses. The difficulty this creates is particularly prominent in Pacific salmonids genus Oncorhynchus who are the focus of intense genetics-based conservation and management efforts owing to the important ecological and cultural role these fish play. To address this gap, we generated a homology guide for six species of Oncorhynchus with available genomes and used this guide to describe patterns of duplicate retention and rediploidization. Overall, we find that retained duplicates comprise over half of modern gene repertoires and that retained duplicate genes are enriched for genes involved in nuclear stability, while rediploidized genes which represent a smaller proportion of genes are heavily enriched in dosage sensitive processes such as mitochondria. Additionally, by reanalyzing published expression data from locally adapted strains of O. mykiss we demonstrate that retained duplicates are more likely to be associated with adaptive divergence than rediploidized genes, highlighting the potential of WGDs to promote adaptation. Finally, we demonstrate the utility of our homology guide by investigating the evolutionary relationship among genes highlighted as playing a role in salmonid life history traits or gene editing targets.

genomics↗

Gene Family Complexity and Expression Divergence as a Mechanism of Adaptation In Coral

Gene family complexity and its influence on expression dynamics has long been theorized to be an important source of adaptation in natural systems through providing novel genetic material and influencing gene dosage. There is now growing empirical support for this theory; however, this process has only been demonstrated in a limited number of systems typically using recently diverged species or populations. In particular, examples of how this process operates in basal animals with deeper species splits has not been well explored. To address this issue, we investigated the evolution of gene family complexity in five species of common Caribbean coral. We demonstrate widespread divergence in gene repertoires owing to slow rates of gene turnover occurring along deep species splits. The resulting differences in gene family complexity involve numerous biologic processes, shedding light on to the selective forces that have influenced the evolution of each species. By coupling these findings with gene expression data, we show that increased gene family complexity promotes increased expression divergence between species, indicating an interplay between gene family complexity and expression divergence. Finally, we show that immune genes are evolving particularly fast demonstrating the importance of interactions with other organisms in the evolutionary history of Caribbean corals. Overall, these findings provide support for gene copy number change as an important evolutionary force in Caribbean corals, which may influence their ability to persist in a rapidly changing environment.

genomics↗