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Leiva, C.

Publications and source records attributed to Leiva, C..

4 recordsLinked to original sources

One species or several? Genomic evidence for deep divergence within the widely distributed anemonefish Amphiprion clarkii species complex

Defining what a species is remains one of the biggest questions in biology and directly challenges species delimitation in species complexes. The wide-spread Clarks' anemonefish Amphiprion clarkii has the widest range of all anemonefishes, from the Indian Ocean to the Central Pacific. However, the taxonomy of this species has been confused since its initial description due to its great variation in morphology and pigmentation even within the same locality. Here, we combined whole genome re-sequencing data from 166 individuals spanning most of the distribution of A. clarkii, including remote islands such as Ogasawara and Guam in the northwestern Pacific, and also including three individuals of the closely related A. tricinctus from the Marshall Islands. Our population genomic analyses reveal an unexpected level of divergence, with five deeply separated lineages corresponding to the Indian Ocean, Central Indo-Pacific, Melanesia, and the isolated population of Ogasawara. The fifth lineage comprises A. clarkii from Guam and A. tricinctus, revealing that A. tricinctus is phylogenetically nested within A. clarkii, challenging its current taxonomic status. The most divergent lineage, Melanesia, is genetically more distant from other A. clarkii lineages than several recognised species pairs within the Amphiprion genus, yet demographic modelling shows ongoing gene flow between all lineages. Together, our results highlight a hidden diversity and stress the necessity of an integrative taxonomic revision of the A. clarkii species complex.

evolutionary biology↗

Misleading Success: Genomes Reveal Critical Risks to European Gray Wolves

Have European gray wolves recovered? Despite an increase to [~]21,000 wolves (Canis lupus), our genomic analyses reveal significant risks to their long-term viability. We analyzed over 200 whole-genomes spanning five major European populations. Rather than a single recovering population, European wolves form a mosaic of isolated, independently evolving lineages, mostly diverging in the late Pleistocene. All lineages have contemporary effective population sizes below the threshold for long-term viability (Ne [≥] 500) and show extensive inbreeding. Runs of homozygosity reveal population-specific inbreeding histories spanning recent to deep timeframes. Most lineages exhibit higher realized than masked genetic load, indicating emerging inbreeding depression. These findings challenge claims that downlisting European wolves is biologically warranted: none of these populations currently meets thresholds associated with favorable conservation status.

evolutionary biology↗

Photosymbiosis Shaped Animal Genome Architecture and Gene Evolution as Revealed in Giant Clams

Symbioses are major drivers of organismal diversification and phenotypic innovation. However, how long-term symbioses shape whole genome evolution in metazoans is still underexplored. Here, we used a giant clam (Tridacna maxima) genome to demonstrate how symbiosis has left complex signatures in an animals genome. Giant clams thrive in oligotrophic waters by forming a remarkable association with photosymbiotic dinoflagellate algae. Genome-based demographic inferences uncovered a tight correlation between T. maxima global population change and major paleoclimate and habitat shifts, highlighting how abiotic and biotic factors dictate T. maxima microevolution. Comparative analyses revealed unique symbiosis-driven genomic features, including expansion and contraction of immunity-related gene families and a large proportion of lineage-specific genes. Strikingly, about 70% of the genome is composed of repetitive elements, especially transposable elements, most likely resulting from a symbiosis-adapted immune system. This work greatly enhances our understanding of genomic drivers of symbiosis that underlie metazoan evolution and diversification.

genomics↗

Synergistic genomic mechanisms of adaptation to ocean acidification in a coral holobiont

Ocean acidification, caused by anthropogenic CO2 emissions, is predicted to have major consequences for reef-building corals, jeopardizing the scaffolding of the most biodiverse marine habitats. However, whether corals can adapt to ocean acidification and how remains unclear. We addressed these questions by re-examining transcriptome and genome data of Acropora millepora coral holobionts from volcanic CO2 seeps with end-of-century pH levels. We show that adaptation to ocean acidification is a wholistic process involving the three main compartments of the coral holobiont. We identified 441 coral host candidate adaptive genes involved in calcification, response to acidification, and symbiosis; population genetic differentiation in dinoflagellate photosymbionts; and consistent transcriptional microbiome activity despite microbial community shifts. Coral holobionts from natural analogues to future ocean conditions harbor beneficial genetic variants with far-reaching rapid adaptation potential. In the face of climate change, these populations require immediate conservation strategies as they could become key to coral reef survival.

evolutionary biology↗