Scinovex
article Open AccessTop 1% cited

Diverse Lifestyles and Strategies of Plant Pathogenesis Encoded in the Genomes of Eighteen Dothideomycetes Fungi

PLoS Pathogens · 2012 · Vol. 8(12) · pp. e1003037–e1003037
Robin A. OhmNicolas FeauBernard HenrissatConrad L. SchochBenjamin A. HorwitzKerrie BarryBradford CondonAlex CopelandBraham DhillonFabian GlaserCedar HesseIdit KostiKurt LaButtiErika LindquistSusan LucasAsaf SalamovRosie E. BradshawLynda M. CiuffettiRichard C. HamelinG.H.J. KemaChristopher B. LawrenceJames A. ScottJoseph W. SpataforaB. Gillian TurgeonP.J.G.M. de WitShaobin ZhongStephen B. GoodwinIgor V. Grigoriev

Abstract

The class Dothideomycetes is one of the largest groups of fungi with a high level of ecological diversity including many plant pathogens infecting a broad range of hosts. Here, we compare genome features of 18 members of this class, including 6 necrotrophs, 9 (hemi)biotrophs and 3 saprotrophs, to analyze genome structure, evolution, and the diverse strategies of pathogenesis. The Dothideomycetes most likely evolved from a common ancestor more than 280 million years ago. The 18 genome sequences differ dramatically in size due to variation in repetitive content, but show much less variation in number of (core) genes. Gene order appears to have been rearranged mostly within chromosomal boundaries by multiple inversions, in extant genomes frequently demarcated by adjacent simple repeats. Several Dothideomycetes contain one or more gene-poor, transposable element (TE)-rich putatively dispensable chromosomes of unknown function. The 18 Dothideomycetes offer an extensive catalogue of genes involved in cellulose degradation, proteolysis, secondary metabolism, and cysteine-rich small secreted proteins. Ancestors of the two major orders of plant pathogens in the Dothideomycetes, the Capnodiales and Pleosporales, may have had different modes of pathogenesis, with the former having fewer of these genes than the latter. Many of these genes are enriched in proximity to transposable elements, suggesting faster evolution because of the effects of repeat induced point (RIP) mutations. A syntenic block of genes, including oxidoreductases, is conserved in most Dothideomycetes and upregulated during infection in L. maculans, suggesting a possible function in response to oxidative stress.

Plant Pathogens and Fungal DiseasesMycorrhizal Fungi and Plant InteractionsPlant-Microbe Interactions and ImmunityDothideomycetesBiologyGenomeGeneticsTransposable elementGeneSyntenyGenome evolutionEvolutionary biologyGene family

MeSH terms

AscomycotaDNA Transposable ElementsGenes, FungalPlant DiseasesChromosomes, FungalPoint MutationOxidative StressEvolution, Molecular

Funding

  • U.S. Department of Energy
  • U.S. Department of Agriculture
  • Joint Genome Institute
  • National Institutes of Health
  • Office of Science
  • Agricultural Research Service
  • U.S. National Library of Medicine
Citations
638
FWCI
19.01
field-weighted impact
References
137
Percentile
100%
vs. same field & year
Citations per year
Cited by
References
Ab initio Gene Finding in <i>Drosophila</i> Genomic DNA
Genome Research · 2000 · 1,173 citations
RNAmmer: consistent and rapid annotation of ribosomal RNA genes
Nucleic Acids Research · 2007 · 6,242 citations
Basic local alignment search tool
Journal of Molecular Biology · 1990 · 93,570 citations
A unified classification system for eukaryotic transposable elements
Nature Reviews Genetics · 2007 · 3,119 citations
Dendroscope: An interactive viewer for large phylogenetic trees
BMC Bioinformatics · 2007 · 1,257 citations
Gene Ontology: tool for the unification of biology
Nature Genetics · 2000 · 43,975 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.