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Biology subjects

Nery, M.

Publications and source records attributed to Nery, M..

2 recordsLinked to original sources

Molecular signatures and cellular responses underlying hypoxic adaptation in sea turtles

Hypoxia-inducible factors (HIFs) are transcriptional regulators that orchestrate the canonical response to low-oxygen tension in animal cells. Vertebrates possess three HIF- isoforms, which arose from two gene duplication events of the ancestral HIF-1 gene. Here, we examined whether the HIF gene family (HIF-1, HIF-2, HIF-3, and HIF-1N inhibitor) shows evidence of positive selection in hypoxia-tolerant reptiles (Testudines), compared evolutionary patterns within the family, and assessed the transcriptional response to hypoxia in primary cells derived from a hypoxia-tolerant (Caretta caretta) and a non-tolerant (Sceloporus occidentalis) reptile. We found that HIF-1, HIF-2, and HIF-1N are highly conserved across reptiles, whereas HIF-3 is under positive selection in Testudines. We also identified multiple novel regulatory motifs unique to Testudines. Transcriptional signatures of hypoxia exposure indicated stark differences between lizards and turtles. Whereas lizard cells exhibited a canonical response to hypoxia, characterized by enriched cell-survival pathways, sea turtle cells exhibit a robust, distinctive transcriptional response involving enriched pathways related to protein synthesis, quality maintenance, and mitochondrial integrity. Surprisingly, cis-regulatory element analysis did not show HIFs as key regulators of the transcriptional response in either species. Instead, TFDP1 in lizard cells and E2F1 in sea turtle cells emerged as potential key regulators. TFDP1 regulates the cell cycle, specifically DNA synthesis and cell cycle progression, while E2F regulates DNA-damage response, apoptosis, metabolism, and fatty acid biosynthesis. These results suggest that the reptilian response to hypoxia is shaped by transcriptional plasticity, while highlighting key regulatory mechanisms driving hypoxic adaptation in sea turtle cells. However, positive selection of HIF-3 and novel HIF motifs suggest a combined, but yet to be uncovered, contribution of regulatory and coding sequence evolutionary mechanisms shaping hypoxia tolerance in Testudines.

molecular biology↗

Evolution of ion channels in cetaceans a natural experiment in the tree of life

Cetaceans could be seen as a natural experiment within the tree of life in which a mammalian lineage changed from terrestrial to aquatic habitats. This shift involved extensive phenotypic modifications, which represent an opportunity to explore the genetic bases of phenotypic diversity. Furthermore, the availability of whole genome sequences in representative species of all main cetacean groups means that we are in a golden age for such studies. Among the different molecular systems that maintain cellular homeostasis, ion channels are crucial for the proper physiological functioning of all living species. This study aims to explore the evolution of ion channels during the evolutionary history of cetaceans. To do so, we created a bioinformatic pipeline to annotate the repertoire of ion channels in the genome of the species included in our sampling. Our main results show that cetaceans have on average, fewer protein-coding genes and a higher percentage of annotated ion channels than non-cetacean mammals. Signals of positive selection were detected in ion channels related to the heart, locomotion, visual and neurological phenotypes. Interestingly, we predict that the NaV1.5 ion channel of most toothed whales (odontocetes) is sensitive to tetrodotoxin (TTX), similar to NaV1.7, given the presence of tyrosine instead of cysteine, in a specific position of the ion channel. Finally, the gene turnover rate of the cetacean crown group is more than three times faster than non-cetacean mammals.

evolutionary biology↗