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Biology subjects

Farina, B. M.

Publications and source records attributed to Farina, B. M..

2 recordsLinked to original sources

Widespread selection relaxation in aquatic mammals

While mammals are predominantly terrestrial, several lineages within them have independently transitioned to aquatic environments and exhibit a great variety of evolutionary changes, which ultimately lead to irreversible transitions to aquatic lifestyle. Such changes should also be detectable at the molecular level and, for instance, olfactory genes have been found to evolve under reduced selection and functionality in whales. However, the presence of a molecular signature related to aquatic transitions across other genes remains unknown as is the degree to which this affects only fully aquatic groups or also semiaquatic ones. Here, we use a Bayesian framework to investigate differences in the strength of purifying selection among terrestrial, semiaquatic and fully aquatic mammals using a set of 1000 orthologous genes, while accounting for shared ancestry, and controlling for body mass and effective population size. We found that selection relaxation linked to aquatic transitions is not only occurring in olfactory genes, but also detected across 20% of the other genes analysed here. This consistent trend of genes under weaker selection is inferred in both semi- and fully aquatic mammals although the pattern is stronger in the latter. While most of the genes analysed here likely remain functional in all mammals, their evolution is inferred to be neutral in a substantial number of aquatic species, consistently with genes that might be losing their functionality. The inferred widespread relaxation of selection among genes is consistent with a macroevolutionary scenario where secondary transitions to aquatic environment eventually become irreversible.

evolutionary biology↗

Turtle body size evolution is determined by lineage-specific specializations rather than global trends

Organisms display considerable variety of body sizes and shapes, and macroevolutionary investigations help to understand the evolutionary dynamics behind to such variations. Turtles (Testudinata) show great body size disparity, especially when their rich fossil record is accounted for. We explored body size evolution in turtles, testing which factors might influence the observed patterns and evaluating the existence of long-term directional trends. We constructed the most comprehensive body size dataset for the group to date, tested for correlation with paleotemperature, estimated ancestral body sizes, and performed macroevolutionary model-fitting analyses. We found no evidence for directional body size evolution, even when using very flexible models, thereby rejecting the occurrence of Copes rule. We also found no significant effect of paleotemperature on overall through-time body size patterns. In contrast, we found a significant influence of habitat preference on turtle body size. Freshwater turtles display a rather homogenous body size distribution through time. In contrast, terrestrial and marine turtles show more pronounced variation, with terrestrial forms being restricted to larger body sizes, up to the origin of testudinids in the Cenozoic, and marine turtles undergoing a reduction in body size disparity after the extinctions of many groups in the mid-Cenozoic. Our results therefore suggest that long-term, generalized patterns are probably explained by factors specific to certain groups and related at least partly to habitat use.

evolutionary biology↗