Hane_2007_Plant.Cell_19_3347

Reference

Title : Dothideomycete plant interactions illuminated by genome sequencing and EST analysis of the wheat pathogen Stagonospora nodorum - Hane_2007_Plant.Cell_19_3347
Author(s) : Hane JK , Lowe RG , Solomon PS , Tan KC , Schoch CL , Spatafora JW , Crous PW , Kodira C , Birren BW , Galagan JE , Torriani SF , McDonald BA , Oliver RP
Ref : Plant Cell , 19 :3347 , 2007
Abstract :

Stagonospora nodorum is a major necrotrophic fungal pathogen of wheat (Triticum aestivum) and a member of the Dothideomycetes, a large fungal taxon that includes many important plant pathogens affecting all major crop plant families. Here, we report the acquisition and initial analysis of a draft genome sequence for this fungus. The assembly comprises 37,164,227 bp of nuclear DNA contained in 107 scaffolds. The circular mitochondrial genome comprises 49,761 bp encoding 46 genes, including four that are intron encoded. The nuclear genome assembly contains 26 classes of repetitive DNA, comprising 4.5% of the genome. Some of the repeats show evidence of repeat-induced point mutations consistent with a frequent sexual cycle. ESTs and gene prediction models support a minimum of 10,762 nuclear genes. Extensive orthology was found between the polyketide synthase family in S. nodorum and Cochliobolus heterostrophus, suggesting an ancient origin and conserved functions for these genes. A striking feature of the gene catalog was the large number of genes predicted to encode secreted proteins; the majority has no meaningful similarity to any other known genes. It is likely that genes for host-specific toxins, in addition to ToxA, will be found among this group. ESTs obtained from axenic mycelium grown on oleate (chosen to mimic early infection) and late-stage lesions sporulating on wheat leaves were obtained. Statistical analysis shows that transcripts encoding proteins involved in protein synthesis and in the production of extracellular proteases, cellulases, and xylanases predominate in the infection library. This suggests that the fungus is dependant on the degradation of wheat macromolecular constituents to provide the carbon skeletons and energy for the synthesis of proteins and other components destined for the developing pycnidiospores.

PubMedSearch : Hane_2007_Plant.Cell_19_3347
PubMedID: 18024570
Gene_locus related to this paper: phano-at151 , phano-bst1 , phano-dapb , phano-q0tw42 , phano-q0txi3 , phano-q0tzh6 , phano-q0u0b1 , phano-q0u0e9 , phano-q0u0t5 , phano-q0u1e7 , phano-q0u1v1 , phano-q0u1x4 , phano-q0u2m9 , phano-q0u2y5 , phano-q0u3i1 , phano-q0u5t8 , phano-q0u8z8 , phano-q0u382 , phano-q0u622 , phano-q0u753 , phano-q0uac8 , phano-q0ucn2 , phano-q0udp4 , phano-q0udr2 , phano-q0uem1 , phano-q0uet5 , phano-q0ufs1 , phano-q0ug08 , phano-q0ugf2 , phano-q0uha0 , phano-q0ui22 , phano-q0ukj9 , phano-q0unt6 , phano-q0upq4 , phano-q0uq74 , phano-q0uq76 , phano-q0urz6 , phano-q0uua1 , phano-q0uuc4 , phano-q0uuc6 , phano-q0uup2 , phano-q0uv86 , phano-q0uwb7 , phano-q0uyc1 , phano-q0uyf1 , phano-q0uyi9 , phano-q0v0y6 , phano-q0v1c5 , phano-q0v1s1 , phano-q0v2i6 , phano-q0v4x4 , phano-q0v5x9 , phano-q0v6t6 , phano-q0v6w1 , phano-q0v7e6 , phano-q0v615 , phano-q0uru8 , phano-q0txx8 , phano-q0u4u8 , phano-q0v3l0 , phano-q0ua76 , phano-q0ty51 , phano-q0twk1 , phano-q0v263 , phano-q0uh92 , phano-q0uxx8 , phano-q0v697 , phano-q0ug10 , phano-q0v5u8 , phano-q0u1s8 , phano-q0uy34 , phano-q0twn7 , phano-elca , phano-cbpya , phano-kex1 , phano-q0v778

Related information

Gene_locus phano-at151    phano-bst1    phano-dapb    phano-q0tw42    phano-q0txi3    phano-q0tzh6    phano-q0u0b1    phano-q0u0e9    phano-q0u0t5    phano-q0u1e7    phano-q0u1v1    phano-q0u1x4    phano-q0u2m9    phano-q0u2y5    phano-q0u3i1    phano-q0u5t8    phano-q0u8z8    phano-q0u382    phano-q0u622    phano-q0u753    phano-q0uac8    phano-q0ucn2    phano-q0udp4    phano-q0udr2    phano-q0uem1    phano-q0uet5    phano-q0ufs1    phano-q0ug08    phano-q0ugf2    phano-q0uha0    phano-q0ui22    phano-q0ukj9    phano-q0unt6    phano-q0upq4    phano-q0uq74    phano-q0uq76    phano-q0urz6    phano-q0uua1    phano-q0uuc4    phano-q0uuc6    phano-q0uup2    phano-q0uv86    phano-q0uwb7    phano-q0uyc1    phano-q0uyf1    phano-q0uyi9    phano-q0v0y6    phano-q0v1c5    phano-q0v1s1    phano-q0v2i6    phano-q0v4x4    phano-q0v5x9    phano-q0v6t6    phano-q0v6w1    phano-q0v7e6    phano-q0v615    phano-q0uru8    phano-q0txx8    phano-q0u4u8    phano-q0v3l0    phano-q0ua76    phano-q0ty51    phano-q0twk1    phano-q0v263    phano-q0uh92    phano-q0uxx8    phano-q0v697    phano-q0ug10    phano-q0v5u8    phano-q0u1s8    phano-q0uy34    phano-q0twn7    phano-elca    phano-cbpya    phano-kex1    phano-q0v778
Gene_locus_frgt phano-q0ty09    phano-q0tzk6    phano-q0u517    phano-q0ucs3    phano-q0utr3    phano-q0uui3    phano-q0uvn3    phano-q0v2r3    phano-a9jx87

Citations formats

Hane JK, Lowe RG, Solomon PS, Tan KC, Schoch CL, Spatafora JW, Crous PW, Kodira C, Birren BW, Galagan JE, Torriani SF, McDonald BA, Oliver RP (2007)
Dothideomycete plant interactions illuminated by genome sequencing and EST analysis of the wheat pathogen Stagonospora nodorum
Plant Cell 19 :3347

Hane JK, Lowe RG, Solomon PS, Tan KC, Schoch CL, Spatafora JW, Crous PW, Kodira C, Birren BW, Galagan JE, Torriani SF, McDonald BA, Oliver RP (2007)
Plant Cell 19 :3347