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Dias, Y.

Publications and source records attributed to Dias, Y..

2 recordsLinked to original sources

Discovery of two potential new species and two novel bat-coronavirus subgenera (Phyllacovirus and Phyllobecovirus) in the Neotropics

Bats are major natural reservoirs for coronaviruses, yet complete viral genomes from South America remain scarce, limiting evolutionary and taxonomic understanding. Here, we conducted metatranscriptomic sequencing of coronavirus-positive bat samples collected across two ecologically distinct Brazilian biomes: the Atlantic Forest and the semi-arid Caatinga. We recovered seven complete or near-complete genomes belonging to Alphacoronavirus and Betacoronavirus. Phylogenetic and comparative similarity analyses of conserved replicase domains (3CLpro, NiRAN, RdRp, ZBD, HEL1), following International Committee on Taxonomy of Viruses (ICTV) demarcation criteria, revealed significant viral diversity. Within Alphacoronavirus, two genomes from Atlantic Forest phyllostomid bats (Artibeus lituratus and Carollia perspicillata) formed a deeply divergent sister lineage to Amalacovirus, exhibiting a mean amino acid similarity of 76.7% with the reference genome. Within Betacoronavirus, one genome from a Caatinga phyllostomid bat (Artibeus planirostris) clustered within the recently described Ambecovirus clade, displaying 75.9% mean amino acid similarity with mormoopid-associated reference sequences. Based on these divergence levels and non-recombinant genomic architectures, we propose two novel candidate subgenera, Phyllacovirus and Phyllobecovirus, alongside potential novel viral species. Furthermore, our findings demonstrate strong host-associated structuring and biogeographical partitioning of viral lineages across Neotropical biomes. Overall, this study expands the genomic landscape of South American bat coronaviruses and underscores the importance of continuous genomic surveillance at human-wildlife interfaces.

genomics↗

Holocentromere diversity in Cyperaceae: contrasting repeat organisation in Mapanioideae and Cyperoideae

Centromeres ensure accurate chromosome segregation and are typically confined to a single, localised region in monocentric chromosomes. In contrast, holocentric chromosomes exhibit kinetochore activity distributed along the chromosome length. Although holocentricity is widespread in Cyperaceae, the composition and organisation of these centromeres, as well as their evolutionary diversification, remain poorly understood. Here, we investigated centromere organisation in representatives of the subfamilies Mapanioideae (Hypolytrum schraderianum Nees) and Cyperoideae (Cladium mariscus (L.) Pohl) by combining genome assemblies, repeatome characterisation (RepeatExplorer), fluorescence in situ hybridisation (FISH), and immunolocalisation. Comparative synteny analyses incorporating the genomes of Rhynchospora breviuscula (n = 5) and Carex littledalei (n = 29) identified conserved blocks, eventually expanding almost whole chromosomes of H. schraderianum (n = 30) and Cl. mariscus (n = 39), despite divergent chromosome numbers and deep evolutionary distances within Cyperaceae. Mobile elements showed very low abundances and were uniformly dispersed, with Ty1/Copia Angela being the most abundant in both species. In Cl. mariscus, holocentromeres showed an extended distribution of centromere- and kinetochore-associated proteins along the chromosomes, largely colocalised with two satellite DNA repeats that form dispersed clusters. In contrast, H. schraderianum also displayed kinetochore signals along chromatids, but the most abundant satellite DNA family was enriched in distal and interstitial chromosomal regions rather than interspersed along the chromatids. Together, these results reveal different genomic architectures underlying holocentric organisation in phylogenetically distinct Cyperaceae lineages, suggesting that holocentromeres in this family have diversified with variation in centromere organisation in regard to its association with repetitive DNA.

evolutionary biology↗