European ash pangenome reveals widespread structural variation and genetic basis of low ash dieback susceptibility

European Ash (Fraxinus excelsior) is a keystone tree species, whose populations are being decimated by ash dieback disease (ADB) - better characterisation of genetic variants associated with low susceptibility to the disease is needed. Here, we develop a F. excelsior pangenome to more fully capture sequence variability within this species compared with a linear reference genome, using a geographically diverse set of fifty F. excelsior samples. We identify 362,965 structural variants (SVs), including 174 Mb of sequence absent from the linear reference genome (22% of the linear reference size), and identify 3,412 high-confidence dispensable genes (those present only in some individuals). We use the pangenome to analyse existing genomic data from over 1,200 individuals, revealing 220 single nucleotide polymorphisms (SNPs) showing consistent allele frequency shifts between healthy individuals and those highly damaged by ADB, across UK seed sources, explicitly demonstrating the existence of a shared genetic component to low ADB susceptibility.

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Publication Details

Journal
Nature Communications
Published
2026-09-17
DOI
https://doi.org/10.1038/s41467-026-77194-9
Primary Topic
Forest Insect Ecology and Management
Type
article
Field-Weighted Citation Impact
0.00

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article

European ash pangenome reveals widespread structural variation and genetic basis of low ash dieback susceptibility

Richard A. Nichols, Daniel P. Wood, Levi Yant, Richard J. A. Buggs et al.
Nature Communications
Forest Insect Ecology and Management
article

European ash pangenome reveals widespread structural variation and genetic basis of low ash dieback susceptibility

Richard A. Nichols, Daniel P. Wood, Levi Yant, Richard J. A. Buggs, Emma V. Curran, Mohammad Vatanparast, Dario Galanti, Laura J. Kelly, Richard Whittet, Katherine Wheeler, Gudgeon Catherine
article en

Abstract

European Ash (Fraxinus excelsior) is a keystone tree species, whose populations are being decimated by ash dieback disease (ADB) - better characterisation of genetic variants associated with low susceptibility to the disease is needed. Here, we develop a F. excelsior pangenome to more fully capture sequence variability within this species compared with a linear reference genome, using a geographically diverse set of fifty F. excelsior samples. We identify 362,965 structural variants (SVs), including 174 Mb of sequence absent from the linear reference genome (22% of the linear reference size), and identify 3,412 high-confidence dispensable genes (those present only in some individuals). We use the pangenome to analyse existing genomic data from over 1,200 individuals, revealing 220 single nucleotide polymorphisms (SNPs) showing consistent allele frequency shifts between healthy individuals and those highly damaged by ADB, across UK seed sources, explicitly demonstrating the existence of a shared genetic component to low ADB susceptibility.

Nature CommunicationsVol. 17(1)
University of Nottingham (GB), Queen Mary University of London (GB), Royal Botanic Gardens, Kew (GB), Swedish University of Agricultural Sciences (SE), Forest Research (GB), University of York (GB), University of Sheffield (GB)
Queen Mary University of London, Government of the United Kingdom, Department for Environment, Food and Rural Affairs, UK Government, Natural Environment Research Council
Life in Land
Openalex Percentile: Top 30%
Forest Insect Ecology and Management
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