The fungal pathogen Zymoseptoria tritici is a prominent pathogen of wheat. The reference genome of the isolate IPO323 is one of the best-assembled eukaryotic genomes and encodes more than 10,000 predicted genes. However, a large proportion of the previously annotated gene models are incomplete with either no start or no stop codons. The availability of RNA-seq data allows better predictions of gene structure. We here used two different RNA-seq datasets, de novo transcriptome assemblies, homology-based comparisons, and trained ab initio gene callers to generate a new gene annotation of Z. tritici IPO323. The annotation pipeline was also applied to re-sequenced genomes of three closely related species of Z. tritici: Z. pseudotritici, Z. ardab...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
During host colonization, plant pathogens secrete molecules that enable host colonization —so called...
Transposable elements (TEs) impact genome plasticity, architecture, and evolution in fungal plant pa...
The fungal pathogen Zymoseptoria tritici is a prominent pathogen of wheat. The reference genome of t...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
Host specialization by pathogens requires a repertoire of virulence factors as well as fine-tuned re...
Host specialization by pathogens requires a repertoire of virulence factors as well as fine-tuned re...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
Fungal plant pathogens rapidly evolve virulence on resistant hosts through mutations in genes encodi...
Fungal plant pathogens rapidly evolve virulence on resistant hosts through mutations in genes encodi...
The three closely related plant pathogenic species Zymoseptoria tritici (synonym: Mycosphaerella gra...
Fungal plant pathogens alone have the capacity to expend economically consequential amounts of crop ...
ABSTRACT Fungal plant pathogens rapidly evolve virulence on resistant hosts through mutations in gen...
Zymoseptoria tritici (syn. Mycosphaerella graminicola, Septoria tritici) is a haploid fungus belongi...
Background The gene content of a species largely governs its ecological interactions and adaptive p...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
During host colonization, plant pathogens secrete molecules that enable host colonization —so called...
Transposable elements (TEs) impact genome plasticity, architecture, and evolution in fungal plant pa...
The fungal pathogen Zymoseptoria tritici is a prominent pathogen of wheat. The reference genome of t...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
Host specialization by pathogens requires a repertoire of virulence factors as well as fine-tuned re...
Host specialization by pathogens requires a repertoire of virulence factors as well as fine-tuned re...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
Fungal plant pathogens rapidly evolve virulence on resistant hosts through mutations in genes encodi...
Fungal plant pathogens rapidly evolve virulence on resistant hosts through mutations in genes encodi...
The three closely related plant pathogenic species Zymoseptoria tritici (synonym: Mycosphaerella gra...
Fungal plant pathogens alone have the capacity to expend economically consequential amounts of crop ...
ABSTRACT Fungal plant pathogens rapidly evolve virulence on resistant hosts through mutations in gen...
Zymoseptoria tritici (syn. Mycosphaerella graminicola, Septoria tritici) is a haploid fungus belongi...
Background The gene content of a species largely governs its ecological interactions and adaptive p...
We examine the contribution of next generation sequencing (NGS) to our understanding of the interact...
During host colonization, plant pathogens secrete molecules that enable host colonization —so called...
Transposable elements (TEs) impact genome plasticity, architecture, and evolution in fungal plant pa...