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January 17, 2026BMC Genomics1 citationsOpen Access

Pangenome analysis of nine soybean cyst nematode genomes reveals hidden variation contributing to diversity and adaptation

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LSLucas Borges dos SantosKSKurt C. ShowmakerRMRick E. Masonbrink

Key Points

  • The central aim is to analyze the pangenome of soybean cyst nematode populations to reveal genetic diversity and mechanisms of adaptation.
  • Constructed a pangenome from nine SCN populations with eight new high-fidelity genome assemblies.
  • Identified over 19,000 orthologous gene families and 12,000 putative secreted proteins.
  • Analyzed gene family content and structural variants among SCN populations.
  • Detected substantial genetic diversity with 35% of gene families as conserved core, 15% as soft-core, and 48% as accessory.
  • Identified rapid evolution in 40% of core single-copy genes, affecting host recognition and immune modulation.
  • Revealed extensive gene duplication and loss, indicating ongoing paralog turnover within SCN populations.

Abstract

Abstract Background The soybean cyst nematode (SCN) is a persistent threat to soybean production. SCN populations continually overcome resistant cultivars, causing significant yield losses. Studies conducted with a single reference genome restrict our understanding of intraspecific diversity, masking significant mechanisms of virulence evolution and host adaptation. Here we report a pangenome constructed of nine SCN populations of different pathotypes, including eight newly generated high-fidelity genome assemblies. Results We detected over 19,000 orthologous gene families and more than 12,000 putative secreted proteins in SCN. Combined, these data indicate substantial diversity across populations. Gene content analysis showed that 35% of gene families were the conserved core, 15% were soft-core, and 48% were accessory. Evidence of rapid evolution was identified in a high portion (40%) of core single-copy genes, most notably inside the protein domains responsible for host recognition and immune modulation. Analysis of gene-family expansion revealed extensive duplication and loss across lineages, suggesting ongoing paralog turnover within SCN populations. Finally, a graph-based pangenome enabled the identification of numerous structural variants within regions under selection. Conclusions Our study highlights substantial genetic variation in SCN that is not captured by single-reference analyses. By integrating multiple high-quality assemblies, we show that the SCN genome is highly dynamic, with extensive gene duplication and loss as well as structural variation shaping the differences among nematode populations. Collectively, the SCN pangenome provides a robust resource for studying virulence and adaptation mechanisms in SCN and establishes a genomic foundation for the development of more precise management strategies.

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Cite This Study

Santos et al. (2026) studied this question.

synapsesocial.com/papers/696b2631d2a12237a934987fhttps://doi.org/10.1186/s12864-025-12493-x
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