It is claimed that Aspergillus niche evolution proceeds through directional rare genome changes, where there is expansion under pathogenic selection, and contraction under industrial domestication.
Abstract
Aspergillus species are ecologically diverse and deeply entangled with human health and industry. A. fumigatus and A. flavus are the two principal species of invasive aspergillosis [1]. A. niger and A. oryzae, on the other hand, are responsible for global enzyme production, organic acid production [2], and koji-based fermentation industries [3]. The question of whether these similar phenotypes share the same genomic mechanisms across the genus is not yet understood. To address this, we constructed per-species pangenomes for the four Aspergillus species (929 initial genomes filtered to 210 ANI-verified, high-quality assemblies for a total of 88 A. fumigatus, 70 A. flavus, 33 A. oryzae, and 19 A. niger assemblies) alongside a genus-level pangenome of 15,163 orthogroups, and conducted phenotype-labeled pan-genome-wide association studies (pan-GWAS) with kinship correction across all species. Pan-GWAS identified up to 117 significant orthogroup presence/absence associations per species-phenotype comparison. However, convergence analysis showed that among the 92 and 62 distinct gene families significant for human pathogenicity in A. fumigatus and A. flavus respectively, the two species seldom agreed on whether the pathogenicity was associated with the enrichment or the depletion of a specific gene family. Convergence analysis of the functional annotations also yielded zero significant results at FDR < 0.05. A literature-curated gene panel analysis also showed that a species labeled pathogenic and another labeled GRAS carried the same aflatoxin and virulence genes, suggesting that gene presence alone cannot readily explain their phenotypic differences. Instead, we propose that niche adaptation operates through the use of the pangenomic rare genome. Reclassifying rare genes by homology identified truly rare subsets (156 to 391 orthogroups per species) distinct from paralogs and gene fragments. Human-pathogenic strains showed significant rare genome expansion of 2.44-fold for both A. fumigatus and A. flavus (kinship corrected, p = 6.6 × 10⁻⁸). Conversely, industrial strains showed rare genome contraction where both A. niger and A. oryzae industrial strains carried 0.57-fold (kinship corrected, p = 0.015) fewer rare genes than their non-industrial counterparts. Hence, we claim that Aspergillus niche evolution proceeds through directional rare genome changes, where there is expansion under pathogenic selection, and contraction under industrial domestication. The rare genome, often discarded as noise, may represent the primary evolutionary source for clinical and biotechnological adaptation in this genus.
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The genus Vagococcus comprises Gram-positive bacteria with a broad ecological distribution, yet its diversity and potential links between animal and human habitats remain underexplored. Here, we report two novel fly-associated strains, CY52-2T and CY62-2, isolated from a retail market in Beijing, China. Polyphasic taxonomic analyses demonstrated that they represent a novel species, for which we propose the name Vagococcus changpingensis sp. nov. Large-scale mining of 805 public metagenomes identified two human gut-derived genomes that share > 99.3% ANI with V. changpingensis, extending the known distribution of this species from insects to the human gastrointestinal tract at the genomic level. Pangenome analysis revealed an open pangenome and uncovered niche-specific gene sets. These findings highlight the power of targeted metagenomics to reveal the potential ecological breadth of newly described species and provide a genomic framework for future investigations of the genus Vagococcus.
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Faecalibacterium is one of the most abundant anaerobes in the human colon. At the genus level, this bacterium shows a strong positive association with human health. Expanding collections of isolates and metagenome-assembled genomes have revealed its species diversity, yet species-level functions remain so far underexplored. Here, we describe a novel species, Faecalibacterium harmsenii. In addition, we reclassify another isolate as a member of the recently reported F. langellae species. Despite close genomic relatedness, these isolates exhibit distinct physiological and biochemical traits, including differences in carbohydrate utilization, stress tolerance, enzymatic activity, Gram-staining and fatty acid composition. Our present comparative genomics analyses further uncover extensive functional diversity and plasticity across type strains, with F. harmsenii being distinguished by an expanded carbohydrate gene repertoire and reduced defense systems, mobile genetic elements and antibiotic resistance genes. Extending to the species, we identify species-specific ecological niches across hosts and differential sensitivities to human diseases, highlighting certain species as reliable biomarkers of gut health. Together, these findings refine our understanding of Faecalibacterium diversity and provide a framework for its use in microbiome-based diagnostics and therapeutic development.
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