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Messias, M.

Publications and source records attributed to Messias, M..

5 recordsLinked to original sources

First Comprehensive Examination of the Molecular Phylogenetics of Saki Monkeys, Genus Pithecia Desmarest, 1804, Reveals an Unexpectedly Low Taxonomic Diversity

Saki monkeys (Pithecia) are found exclusively in the Amazon, ranging from the Guiana Shield in the east to the Andean foothills in the west. The taxonomy of this genus is complex due to indeterminate type localities, numerous synonyms, sexual dichromatism and considerable geographical diversity in coat colour patterns. Previous assessments have indicated two to four species and a variable few subspecies based on morphological analyses of museum specimens. Just two species have been consistently recognised--Pithecia pithecia and Pithecia monachus. This study presents the first comprehensive molecular phylogeny of the genus, using mitochondrial cytochrome b sequences from 137 individuals across their range and a ddRADseq genomic analysis on 34 individuals. The phylogenetic results revealed three main clades: (1) Guiana Shield sakis, (2) Sedimentary Basin and Brazilian Shield sakis, and (3) a basal P. albicans south of the Rio Solimoes. The ddRADseq data further clarified species boundaries and relationships, identifying six distinct species: P. chrysocephala and P. pithecia sensu Hershkovitz (1987) on the Guiana Shield; P. albicans in central Amazonia south of the Rio Solimoes; P. monachus in western Amazonia; P. irrorata between the rios Purus, Tapajos, and Juruena; and P. vanzolinii in a limited area east of the Rio Jurua.

zoology↗

The genomic landscape of spider monkeys and northern muriquis from a conservation perspective

BackgroundMost populations of spider monkeys (Ateles) and muriquis (Brachyteles), two Neotropical primate genera, are under severe anthropogenic threats. Yet, taxon-wide population-level studies leveraging their degree of endangerment linked to their genetic diversity patterns and demographic history are lacking. To properly address this, there is a need to expand from morphological and genetic marker-based studies. ResultsWe generated high-coverage genome sequencing for 58 individuals sampled across 8 Atelidae species, in the first population-wide study of all extant spider monkey species, in the wild and captivity, alongside northern muriquis (Brachyteles hypoxanthus). Additionally, we present a high-contiguity reference genome for Ateles hybridus. Here, we observe the overall levels of genetic diversity and genetic load of the analyzed populations do not align to their IUCN endangerment category. Moreover, we show that in the wild, genetic load is overall higher compared to the captive populations analyzed. Then, we depict two main trans and cis-Andean sister clades in Ateles, and further structure and dynamics outlined by the Madeira River in the latter clade. Lastly, we find that genes in highly divergent regions between Ateles and B. hypoxanthus are involved in central nervous system development and photorreception. ConclusionsOur study shows i) the lack of concordance between the genetic diversity levels and extinction risk of these populations, suggestive of recent and strong external drivers; ii) increased genetic load in the wild in contrast to effective captive management, indicating mostly past demographic events; iii) structure and dynamics in spider monkeys that agrees with common biogeographical patterns and iv) genetic divergence between Ateles and Brachyteles potentially linked to distinct environmental light levels.

genomics↗

Cross-species transmission of human hepatitis B virus to wild Neotropical primates

Hepatitis B virus (HBV) infects approximately one-third of the worlds human population and kills over one million people each year. HBV is also prevalent in Old World apes but not in New World primates. Human-to-primate transmission of HBV was suspected in zoo-captive monkeys and Mauritius macaques, but empirical data are scarce. Here, we collected blood and liver samples from 88 monkeys of 27 species in two areas of the Amazon, one with pristine forest and the other highly occupied and deforested by humans. A total of 17 (34.7%) out of 49 specimens from the human-occupied region tested positive for HBV. At this site, there was a positive relationship between human population density in the sampling location and the likelihood of primates being infected by HBV. Conversely, all 39 samples from the pristine forest tested negative for HBV. By sequencing a portion of the HBV S gene in five positive samples, each from a distinct primate genus, we found that four samples were closely related to the globally widespread human HBV-A strain, but not to the Americas-native HBV-F strain. The fifth sample aligned with the human HBV-D type, prevalent in the region where these samples were obtained. To our knowledge, this study represents the first reported cases of HBV in multiple wild New World primate species anywhere in the world. Our results suggest that primates were infected by strains brought into this part of Brazil by human immigrants, where HBV transmission may have been facilitated by the close contact between humans and monkeys due to high human occupation. This shows that the impact of human immigration, occupation and population growth in the Amazon extends beyond habitat loss; it also facilitates cross-species infections, potentially leading to the emergence of new, virulent viral strains that threaten both Amazonian biodiversity and human health. Author SummaryJean P. Boubli: Professor in Primate Ecology and Evolution, School of Science, Engineering and the Environment, University of Salford, Uk Hani R. El Bizri: PhD in Wildlife Conservation with a focus on Amazonian sustainable development. Analyst of Center for International Forestry Research (CIFOR), Bogor, Indonesia Luan F. Botelho-Souza: Masters and doctorate in experimental biology at the Universidade Federal de Rondonia/Brazil, Chrysoula Gubili: Researcher at the Fisheries Research Institute Nea Peramos, Kavala, Greece, specializing in population ecology and conservation genetics. Stephen J. Martin: Professor in Social Insects, School of Science, Engineering and the Environment, University of Salford, Uk Maisa da S. Araujo: Masters and doctorate in experimental biology, at the Universidade Federal de Rondonia/Brazil, Mariluce R. Messias: Professor of Zoology and curator of the Mammalogy Museum at the Universidade Federal de Rondonia/Brazil. Alcione de O. dos Santos: Masters and doctorate in experimental biology at the Universidade Federal de Rondonia/Brazil. Luiz S. Ozaki: Masters degree from Universidade de Brasilia and PhD in Physiological Sciences, Molecular Biology in Fukuoka, Kyushu, Japan. Andre V.C. Pereira: Bachelor in Biology the Universidade Federal de Rondonia/Brazil. Tony H. Katsuragawa: Masters and doctorate in experimental biology, at the Universidade Federal de Rondonia/Brazil. Ana Maisa Passos-Silva: Masters degree in experimental biology from the Federal University of Rondonia/Brazil. Luiz H. S. Gil: Masters in experimental biology, at the Universidade Federal de Rondonia/Brazil. Izeni P. Farias: Professor of Genetics, Universidade Federal do Amazonas, Brazil Juan M.V. Salcedo: Master in Tropical Medicine from the University of Brasilia/Brazil and PhD in Sciences from the University of Sao Paulo/Brazil. Tommy C. Burch: Masters in Biological Sciences and PhD candidate from the University of Salford, UK. Deusilene Vieira: Master in Tropical Medicine from the University of Brasilia/Brazil and PhD in Sciences from the University of Sao Paulo/Brazil.

pathology↗

The landscape of tolerated genetic variation in humans and primates

Personalized genome sequencing has revealed millions of genetic differences between individuals, but our understanding of their clinical relevance remains largely incomplete. To systematically decipher the effects of human genetic variants, we obtained whole genome sequencing data for 809 individuals from 233 primate species, and identified 4.3 million common protein-altering variants with orthologs in human. We show that these variants can be inferred to have non-deleterious effects in human based on their presence at high allele frequencies in other primate populations. We use this resource to classify 6% of all possible human protein-altering variants as likely benign and impute the pathogenicity of the remaining 94% of variants with deep learning, achieving state-of-the-art accuracy for diagnosing pathogenic variants in patients with genetic diseases. One Sentence SummaryDeep learning classifier trained on 4.3 million common primate missense variants predicts variant pathogenicity in humans.

genomics↗

A global catalog of whole-genome diversity from 233 primate species

The rich diversity of morphology and behavior displayed across primate species provides an informative context in which to study the impact of genomic diversity on fundamental biological processes. Analysis of that diversity provides insight into long-standing questions in evolutionary and conservation biology, and is urgent given severe threats these species are facing. Here, we present high coverage whole-genome data from 233 primate species representing 86% of genera and all 16 families. This dataset was used, together with fossil calibration, to create a nuclear DNA phylogeny and to reassess evolutionary divergence times among primate clades. We found within-species genetic diversity across families and geographic regions to be associated with climate and sociality, but not with extinction risk. Furthermore, mutation rates differ across species, potentially influenced by effective population sizes. Lastly, we identified extensive recurrence of missense mutations previously thought to be human-specific. This study will open a wide range of research avenues for future primate genomic research. One-Sentence SummaryThe whole genome sequences of 233 primate species provide insight into the determinants of genetic diversity, phylogenomics, and human uniqueness.

genomics↗