Search bioRxiv⌕ Search

Biology subjects

Osada, M.

Publications and source records attributed to Osada, M..

2 recordsLinked to original sources

Visual adaptation of opsin gene expression to the aquatic environment in sea turtles

Several vertebrate taxa, cetaceans, sirenia, pinnipeds, and sea snakes have adapted to the marine aquatic environment. In the species of these taxa, marine adaptation has resulted in shifts in the absorption spectra of opsin pigments and/or the degeneration or duplication of opsin genes. Thus, marine adaptation has strongly affected the evolution of opsins. In sea turtles, however, the effect of adaptation from freshwater to marine environments on opsin evolution has not been studied. In this study, we determined the high-throughput RNA sequences extracted from eyes of two sea turtles (green turtle: Chelonia mydas, loggerhead: Caretta caretta) and two freshwater turtle species (three-keeled pond turtle: Mauremys reevesii, softshell turtle: Pelodiscus sinensis) and investigated the amino acid evolution and expression of the opsin gene. We found that most of the sea turtle lineage-specific amino acid substitutions did not alter amino acid properties and did not include previously known substitutions for turning absorption spectra of opsin pigments, suggesting no adaptive amino acid substitutions in the opsins during marine adaptation in sea turtles. Instead, the blue-sensitive opsin (SWS2) gene expression was higher in sea turtles than in freshwater turtles. These results suggest that sea turtles may have adapted their vision to the blue light-rich marine environment by increasing SWS2 expression.

evolutionary biology↗

Adaptation of the eyes of grass puffer (Takifugu niphobles) to the riverine and marine environments

Many marine fish species migrate to rivers, but little is known about whether these species switch their vision when inhabiting rivers or adapt their vision to the environment of both rivers and the sea. Grass puffer (Takifugu niphobles) is a marine fish species frequently migrating to rivers. In this study, we investigated grass puffers from riverine and marine populations and analyzed the gene expression in their eyes. The phylogeny and population genetics of riverine and marine grass puffers indicated that riverine and marine grass puffers are from the same population. Gene expression levels by high-throughput RNA sequencing indicated no differences in the expression patterns of vision-related genes in marine and riverine grass puffers. This result indicates that the adaption of their visual system to both marine and riverine environments rather than switching the expression of vision-related genes. Additionally, riverine grass puffers increase the expression levels of heat shock proteins and related genes. These genes showed higher expression in riverine grass puffer than in other marine and river pufferfish species, suggesting that the grass puffer individuals adapt to the environmental difference when they migrate to the river by increasing the expression levels of heat shock protein and related genes.

evolutionary biology↗