Pangenome graph analysis reveals extensive effector copy-number variation in spinach downy mildew

Publication date

2024-10-25

Authors

Skiadas, PetrosISNI 0000000512623325
Vidal, Sofía Riera
Dommisse, Joris
Mendel, Melanie N
Elberse, JoyceISNI 0000000393528893
van den Ackerveken, G.ORCID 0000-0002-0183-8978ISNI 0000000446388098
de Jonge, RonnieORCID 0000-0001-5065-8538ISNI 0000000389492170
Seidl, MichaelISNI 0000000419459866

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Document Type

Article
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Abstract

Plant pathogens adapt at speeds that challenge contemporary disease management strategies like the deployment of disease resistance genes. The strong evolutionary pressure to adapt, shapes pathogens' genomes, and comparative genomics has been instrumental in characterizing this process. With the aim to capture genomic variation at high resolution and study the processes contributing to adaptation, we here leverage an innovative, multi-genome method to construct and annotate the first pangenome graph of an oomycete plant pathogen. We expand on this approach by analysing the graph and creating synteny based single-copy orthogroups for all genes. We generated telomere-to-telomere genome assemblies of six genetically diverse isolates of the oomycete pathogen Peronospora effusa, the economically most important disease in cultivated spinach worldwide. The pangenome graph demonstrates that P. effusa genomes are highly conserved, both in chromosomal structure and gene content, and revealed the continued activity of transposable elements which are directly responsible for 80% of the observed variation between the isolates. While most genes are generally conserved, virulence related genes are highly variable between the isolates. Most of the variation is found in large gene clusters resulting from extensive copy-number expansion. Pangenome graph-based discovery can thus be effectively used to capture genomic variation at exceptional resolution, thereby providing a framework to study the biology and evolution of plant pathogens.

Keywords

Ecology, Evolution, Behavior and Systematics, Molecular Biology, Genetics, Genetics(clinical), Cancer Research, SDG 3 - Good Health and Well-being

Citation

Skiadas, P, Vidal, S R, Dommisse, J, Mendel, M N, Elberse, J, Van den Ackerveken, G, de Jonge, R & Seidl, M F 2024, 'Pangenome graph analysis reveals extensive effector copy-number variation in spinach downy mildew', PLoS Genetics, vol. 20, no. 10 October, e1011452. https://doi.org/10.1371/journal.pgen.1011452