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Machine-learning predicts genomic determinants of meiosis-driven structural variation in a eukaryotic pathogen

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  • Thomas Badet

    (Laboratory of Evolutionary Genetics, Institute of Biology, University of Neuchâtel)

  • Simone Fouché

    (Laboratory of Evolutionary Genetics, Institute of Biology, University of Neuchâtel
    Plant Pathology, Institute of Integrative Biology, ETH Zurich)

  • Fanny E. Hartmann

    (Ecologie Systématique Evolution, Bâtiment 360, Univ. Paris-Sud, AgroParisTech, CNRS, Université Paris-Saclay)

  • Marcello Zala

    (Plant Pathology, Institute of Integrative Biology, ETH Zurich)

  • Daniel Croll

    (Laboratory of Evolutionary Genetics, Institute of Biology, University of Neuchâtel)

Abstract

Species harbor extensive structural variation underpinning recent adaptive evolution. However, the causality between genomic features and the induction of new rearrangements is poorly established. Here, we analyze a global set of telomere-to-telomere genome assemblies of a fungal pathogen of wheat to establish a nucleotide-level map of structural variation. We show that the recent emergence of pesticide resistance has been disproportionally driven by rearrangements. We use machine learning to train a model on structural variation events based on 30 chromosomal sequence features. We show that base composition and gene density are the major determinants of structural variation. Retrotransposons explain most inversion, indel and duplication events. We apply our model to Arabidopsis thaliana and show that our approach extends to more complex genomes. Finally, we analyze complete genomes of haploid offspring in a four-generation pedigree. Meiotic crossover locations are enriched for new rearrangements consistent with crossovers being mutational hotspots. The model trained on species-wide structural variation accurately predicts the position of >74% of newly generated variants along the pedigree. The predictive power highlights causality between specific sequence features and the induction of chromosomal rearrangements. Our work demonstrates that training sequence-derived models can accurately identify regions of intrinsic DNA instability in eukaryotic genomes.

Suggested Citation

  • Thomas Badet & Simone Fouché & Fanny E. Hartmann & Marcello Zala & Daniel Croll, 2021. "Machine-learning predicts genomic determinants of meiosis-driven structural variation in a eukaryotic pathogen," Nature Communications, Nature, vol. 12(1), pages 1-14, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-23862-x
    DOI: 10.1038/s41467-021-23862-x
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    Cited by:

    1. Sabina Moser Tralamazza & Emile Gluck-Thaler & Alice Feurtey & Daniel Croll, 2024. "Copy number variation introduced by a massive mobile element facilitates global thermal adaptation in a fungal wheat pathogen," Nature Communications, Nature, vol. 15(1), pages 1-18, December.

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