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Morin-Lagos, J. G.

Publications and source records attributed to Morin-Lagos, J. G..

2 recordsLinked to original sources

Range-wide phylogeography, population genomics, and demography of three widespread Ara macaws (Psittacidae)

Macaws of the genus Ara comprise eight extant species distributed throughout the Neotropics. Among them, four have broad geographic ranges, yet little is known about the evolutionary history and demographic processes that shaped their genomic variation and present-day distributions. This is particularly relevant because, although these wide-ranging macaws are classified as Least Concern by the IUCN, many of their populations are declining due to habitat fragmentation, illegal trade, and climate change. Here, we used nuclear and mitochondrial genomic data to characterize the evolutionary relationships, population structure, genetic diversity, and demographic histories of three widely distributed species (A. ararauna, A. chloropterus, and A. severus) across their geographic distributions. We identified two main populations within Ara severus, and this species showed the highest heterozygosity levels among the three species. In A. ararauna and A. chloropterus, we observed four main genetic clusters corresponding to two populations in the Amazon rainforest biome and and two populations in the Cerrado savanna biome. Cerrado populations in both species exhibited markedly reduced heterozygosity and elevated inbreeding relative to Amazonian populations, consistent with smaller effective population sizes and increased isolation. Genome-wide scans suggested that genetic drift and divergent demographic histories played a predominant role in driving the strong differentiation between Amazon and Cerrado in these two species. Nevertheless, we detected two candidate genes, NALCN and RBBP6, with convergent selection signals across A. ararauna and A. chloropterus, suggesting possible local adaptation to the Cerrado biome.

evolutionary biology↗

Phylogenomics and biogeography of the parrot genus Pyrrhura with implications for systematics and conservation

The genus Pyrrhura (Psittacidae: Arini) is one of the most diverse groups of Neotropical parrots. Its species are charismatic, widely kept as pets, and frequently bred outside their native ranges. Yet, nearly half are currently listed as threatened by the IUCN within their natural distributions. Conservation assessments and population estimates often depend on the validity of accepted taxonomic boundaries. However, despite previous systematic efforts, the evolutionary relationships among and within many Pyrrhura species remain poorly resolved, largely due to a recent and rapid radiation. Here, we generated whole-genome sequences for all currently recognized Pyrrhura species, including multiple intraspecific taxa, to reconstruct a robust nuclear phylogeny under the multi-species coalescent model, alongside the most comprehensive mitogenome-based phylogeny of the genus to date. Although both phylogenies supported the monophyly of most currently accepted species, we identified several instances of mito-nuclear discordance, particularly involving the placement of early-diverging lineages, which are best explained by incomplete lineage sorting and historical gene flow. Additionally, we detected three distinct captive lineages that do not cluster with any known wild populations, suggesting substantial overlooked genetic diversity in the worlds captive populations. Ancestral range reconstructions indicate multiple and relatively recent colonization events into the northern and central Andes, likely associated with the uplift of the Andes and the emergence of new ecological niches. Together, our results reveal a complex evolutionary history in Pyrrhura, shaped by rapid radiations, incomplete lineage sorting, and gene flow. We show that integrating nuclear and mitochondrial data with broad geographic and taxonomic sampling, including captive individuals, can uncover overlooked genetic diversity and help to resolve long-standing systematic uncertainties. Finally, we show that several topological discrepancies among previous studies can be attributed to differences in sampling strategies, particularly within the most polytypic Pyrrhura species.

evolutionary biology↗