Graph-based pangenome of Venturia inaequalis, the apple scab fungus, reveals structural variants associated with population differentiation
Plant pathogen genomes adapt across coding and non-coding regions in response to their hosts, environments, and disease management practices. Venturia inaequalis, the causal agent of apple scab, has evolved alongside its Malus host throughout apple domestication. We generated 17 high-quality genome assemblies, including the first chromosome-scale assembly of V. inaequalis, to define the species' complete gene content and investigate the role of structural variation in genome evolution. Together with a previously published scaffold-level reference, these assemblies were used to construct a gene-based pangenome containing 215,301 predicted protein-coding genes clustered into 13,240 orthogroups, 88.11% of which were core (73.86%) or soft-core (14.25%), 11.88% shell (present in 2-16 isolates), and 0.1% private, indicating a highly conserved gene repertoire. Virulence-associated effectors were significantly enriched in the soft-core and shell components, and accessory apoplastic effectors displayed elevated nucleotide diversity and nonsynonymous-to-synonymous substitution ratios (Ka/Ks) relative to core effectors, consistent with diversification. We further identified a putative accessory chromosome of variable size (23-132.6 kb) in European and U.S. isolates encoding genes with virulence function. A graph-based pangenome identified 38,799 non-redundant structural variants (SVs), largely driven by Gypsy LTR retrotransposons. We used the graph-based pangenome to genotype 136 globally distributed V. inaequalis isolates and identified variants differentiating populations associated with domesticated apple (Malus domestica) from those associated with its Central Asian wild progenitor, M. sieversii. Together, these resources establish a foundation for future studies of diversity, host adaptation, and genome evolution in V. inaequalis.