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Kompathoum, O.

Publications and source records attributed to Kompathoum, O..

2 recordsLinked to original sources

An ancient gene duplication is implicated in virulence in the human pathogen, Histoplasma

Histoplasma spp. is a dimorphic fungal primary pathogen that infects people worldwide and frequently affects immunosuppressed patients. Previous studies have identified the AMY1 gene product, the -amylase Amy1p, as essential for -glucan production and virulence in Histoplasma capsulatum. We identified two new genes (AMY2 and AMY3) in the Histoplasma genome that encode putative -amylases and made mutants using CRISPR/Cas9 technology, followed by evaluation of their role in -glucan biosynthesis and virulence. We also searched for AMY gene copies in 19 fungal genomes with the goals of identifying orthologs for AMY2 and AMY3, and establishing how many AMY copies existed across different fungi. We found that the number and type of -amylases vary depending on the fungal species; that all -amylases related to Histoplasma Amy1p belong to the GH13_5 subfamily, and all orthologs related to Histoplasmas Amy2p and Amy3p belong to the GH13_1 subfamily. We performed phylogenetic analyses of the three paralogs and revealed that the Histoplasma AMY duplications are ancient. We further established Amy2 is an ortholog of Aspergillus niger AgtA, and Aspergillus nidulans AmyD, and that it is partially involved in Histoplasma -glucan biosynthesis and virulence, while Amy3p is an ortholog of Aspergillus flavus Amy1, and it is dispensable for -glucan biosynthesis and virulence.

microbiology↗

Telomeric assemblies of Paracoccidioides genomes

Paracoccidioides is a genus of dimorphic fungal pathogens endemic to Latin America. We generated long-read de novo assemblies for 11 isolates representing four species of the brasiliensis complex (P. brasiliensis, P. americana, P. restrepiensis, P. venezuelensis) and P. lutzii. These include the first complete telomere-to-telomere assemblies for P. brasiliensis (Pb18) and P. americana (Pb03), each with five chromosomes. Comparative analyses revealed chromosomal fusion and fission events distinguishing P. brasiliensis and P. americana, and a 90 kb tandem duplication in P. americana containing siderophore biosynthesis genes (sid1, sid3, sid4), a cluster of putative virulence factors. Mitochondrial genomes showed conserved gene order but a phylogenetic topology inconsistent with the nuclear tree, suggesting mitochondrial introgression between P. lutzii and P. venezuelensis. RNA transposable elements were enriched near telomeres, correlated with genome size, and most abundant in P. lutzii. These assemblies provide key resources for understanding genome evolution and introgression in Paracoccidioides. SIGNIFICANCESpecies of Paracoccidioides cause paracoccidioidomycosis, a systemic mycosis that remains a major public health problem in Latin America. Despite their clinical importance, genome evolution across the genus is poorly understood owing to the lack of complete reference assemblies. Here, we present the first telomere-to-telomere reference genomes for P. brasiliensis and P. americana, enabling a comprehensive comparison of chromosomal structure across the genus. Our analyses reveal that the nuclear genome is highly dynamic and shaped by large-scale rearrangements and structural variants, including the duplication of a siderophore biosynthesis-related gene cluster linked to virulence. In contrast, the mitochondrial genome is structurally conserved but shows introgression between species, revealing hidden evolutionary exchange. Together, these genomic resources redefine our understanding of Paracoccidioides evolution and provide a foundation for advances in molecular diagnostics, epidemiological surveillance, and studies of fungal pathogenicity.

microbiology↗