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Biology subjects

Misawa, R.

Publications and source records attributed to Misawa, R..

2 recordsLinked to original sources

Tracing genome size dynamics in sharks and rays with inclusive sequence analysis by the Squalomix Consortium

Genomes have maintained stable sets of protein-coding genes during evolution, while chromosome organization and genome size vary drastically. Changes in genome size are often attributed to variable amounts of repetitive sequences, including transposable elements. However, it remains poorly understood how such changes were accommodated while maintaining other genomic components. Elasmobranchs, including sharks, rays, and skates, exhibit high among-species variation of genome size and high within-species variation of chromosome length, offering a unique study system to address the question. In this study, we present the first whole genome sequences of the whitebelly skate with remarkably small genome size among elasmobranchs (2.2 Gb), and the red stingray. These chromosome-scale assemblies enabled the assessment of genomic compositions including centromeres and non-coding elements, which revealed notable profiles of tRNA loci and unbiased intragenomic distribution of transposons in elasmobranch genomes. Comparative analyses across these species revealed a shared genomic architecture characterized by correlations of intergenic and intronic sequence lengths with chromosome sizes, with repetitive element accumulation in elongated regions. We analyzed tandemly duplicated genes with high copy number variability. This genome-wide survey revealed the tendency for more frequent tandem gene duplications along with genome size expansion. We document the batoid HoxC cluster in the red stingray genome, which has undergone extensive repetitive element invasion and co-localizes with the HoxB cluster on a sex chromosome. Our study demonstrates an inclusive analysis encompassing both coding and non-coding regions, adaptable to more species in the taxon and a basis for molecular-level understanding on phenotypic diversity of elasmobranchs.

genomics↗

Distributional shifts change the biodiversity-ecosystem stability relationship under climate change

Distributional shifts under climate change are increasingly recognized as a biotic change worldwide. However, the effects of distributional shifts on ecosystem variability through changes in biodiversity remain to be clari[fi]ed. In this study, to elucidate the impact of population-level distributional shifts under climate change on community structure and ecosystem function through ecological hierarchy, we investigated the temporal changes in alpha and beta diversity, the contribution of individual species to the observed changes in biodiversity, and the changes in the relationship between biodiversity and ecosystem variability, using over 25 years of data on about 700 species. We found that ecosystem variability was largely stabilized by beta diversity, especially in the present period (2012 to 2021), because beta diversity increased due to the invasion of species that were distributed mainly in tropic and subtropic areas. Despite the effect of beta diversity, ecosystem variability increased in the present period. This increase in ecosystem variability was caused by the spatially synchronized temporal variation in sea-bottom temperature, which resulted in synchronized temporal variation in species abundance among local communities, as well as the increased impact of alpha variability on ecosystem variability. These results indicate that the impact of alpha diversity on ecosystem variability is more changeable than the impact of beta diversity on ecosystem variability under climate change, suggesting the importance of focusing on changes in alpha diversity resulting from local colonization from other habitats and local extinction in existing habitats.

ecology↗