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Levesque, D. L.

Publications and source records attributed to Levesque, D. L..

2 recordsLinked to original sources

Comparative genomics indicate multiple genetic routes to the evolution of torpor in placental mammals

Torpor is a key survival strategy that many avian and mammalian lineages evolved in response to challenging environmental conditions. Whether the independent evolution of torpor in different lineages involved changes in the same genes remains poorly understood. Here, we performed comparative screens across 190 placental mammal genomes to comprehensively examine associations between loss, positive selection and evolutionary rate shifts in individual protein-coding genes and evolutionary shifts in torpor use. We find that gene-torpor associations are highly clade-specific, with no gene being able to explain the majority of torpor shifts across the phylogeny of placental mammals. Instead, a relatively higher but limited extent of evolutionary convergence can be detected at the pathway level. Our results suggest that torpor emerged through several genetic routes in placental mammals, which likely explains the vast diversity of torpor use patterns that can be observed among torpor-capable species today. SignificanceA fundamental question in evolutionary genomics is whether independent gains and losses of a convergent trait may be achieved through similar or distinct genetic paths. Here, we address this question by focusing on the evolution of torpor across placental mammals, a key trait that likely emerged independently in several lineages. By conducting multiple comparative genomics screens across 190 placental mammal species, we find that individual protein-coding genes have a low explanatory power for evolutionary shifts in torpor. In contrast, there is slightly stronger evidence for pathway-level convergence. Our findings suggest that the wide diversity of patterns of torpor use across placental mammals may, in part, be due to the existence of multiple genetic paths to torpor.

evolutionary biology↗

Numerous independent gains of torpor and hibernation across endotherms, linked with adaptation to diverse environments

Many endotherms from diverse taxonomic groups can respond to environmental changes through dormancy, i.e., by greatly reducing their energy expenditure for up to 24 hours (daily torpor) or longer (hibernation). We currently have a poor understanding of how dormancy evolved across endotherms and its associations with physiological traits and ecological factors. To fill this gap, we thoroughly examine the evolutionary patterns of dormancy and its links with 21 key ecophysiological variables across 1,338 extant endotherms. We find that daily torpor and hibernation are parts of a dormancy continuum, and that there are several, albeit weak, associations between dormancy and species physiological or environmental characteristics. Furthermore, we show that early endotherm ancestors likely did not hibernate and that this trait evolved multiple times in independent lineages. Overall, our results provide an explanation for the remarkable variation in dormancy patterns, even among species occupying highly similar niches.

ecology↗