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Biology subjects

Eaton, K. M.

Publications and source records attributed to Eaton, K. M..

2 recordsLinked to original sources

Thermally tolerant symbionts may explain Caribbean octocoral resilience to heat stress

Coral reef ecosystems are under threat from the frequent and severe impacts of anthropogenic climate change, particularly rising sea surface temperatures. The effects of thermal stress may be ameliorated by adaptation and/or acclimation of the host, symbiont, or holobiont (host + symbiont) to increased temperatures. We examined the role of the symbiont in promoting thermal tolerance of the holobiont, using Antillogorgia bipinnata (octocoral host) and Breviolum antillogorgium (symbiont) as a model system. We identified five distinct genotypes of B. antillogorgium from symbiont populations isolated from Antillogorgia colonies in the Florida Keys. Three symbiont genotypes were cultured and maintained at 26{degrees}C (ambient historical temperature) and two were cultured and maintained at 30{degrees}C (elevated historical temperature) for two years. Following culturing, we analyzed the growth rate and carrying capacity of each symbiont genotype at both ambient and elevated temperatures in culture (in vitro). All genotypes grew well at both temperatures, indicating thermal tolerance among these B. antillogorgium cultures. Prior culturing at the elevated temperature, however, did not result in increased thermal tolerance. We then inoculated juvenile A. bipinnata polyps with each of the five symbiont genotypes, and reared these polyps at both ambient and elevated temperatures (in hospite experiment). All genotypes were able to establish symbioses with polyps in both temperature treatments. Survivorship of polyps at 30{degrees}C was significantly lower than survivorship at 26{degrees}C, but all treatments had surviving polyps at 56 days post-infection, suggestive of broad thermal tolerance in B. antillogorgium, which may play a part in the increased resilience of Caribbean octocorals during heat stress events.

evolutionary biology

Nanopore amplicon sequencing reveals molecular convergence and local adaptation of opsin genes

Local adaptation can drive diversification of closely related species across environmental gradients and promote convergence of distantly related taxa that experience similar conditions. We examined a potential case of adaptation to novel visual environments in a species flock (Great Lakes salmonids, genus Coregonus) using a new amplicon genotyping protocol on the Oxford Nanopore Flongle. Five visual opsin genes were amplified for individuals of C. artedi, C. hoyi, C. kiyi, and C. zenithicus. Comparisons revealed species-specific differences in the coding sequence of rhodopsin (Tyr261Phe substitution), suggesting local adaptation by C. kiyi to the blue-shifted depths of Lake Superior. Parallel evolution and "toggling" at this amino acid residue has occurred several times across the fish tree of life, resulting in identical changes to the visual systems of distantly related taxa across replicated environmental gradients. Our results suggest that ecological differences and local adaptation to distinct visual environments are strong drivers of both evolutionary parallelism and diversification.

evolutionary biology