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Graf, J. P.

Publications and source records attributed to Graf, J. P..

2 recordsLinked to original sources

Combining pangenomics and population genetics finds chromosomal re-arrangements, accessory-like chromosome segments, copy number variations and transposon polymorphisms in wheat and rye powdery mildew

Grass powdery mildews (Blumeria spp.) include economically important fungal crop pathogens with complex and highly repetitive genomes. To investigate the diversity and genome evolution in Blumeria graminis, we combined population genetic and pangenomic analyses using a worldwide sample of 399 wheat powdery mildew isolates. Additionally, we produced high-quality genome assemblies for seven isolates from wheat and one from rye powdery mildew. Using these, we compiled the first grass powdery mildew pangenome comprising 11 Blumeria graminis isolates. We found multiple chromosomal rearrangements between the isolates that grow on wheat, rye and/or triticale hosts. Interestingly, chr-11 showed some characteristics of accessory chromosomes such as presence/absence of large chromosomal segments and higher sequence diversity. Additionally, we identified nearly 67,000 cases of copy number variations (CNVs), which were highly enriched within effector gene families. Furthermore, we found evidence for recent and high transposable element (TE) activity, such as high numbers of TE insertion polymorphisms. Analyses of TE families showed enrichment 1 kb to 2 kb up- and downstream of effector genes, and we also found high levels of TE insertion polymorphisms between populations. Our results demonstrate that chromosomal variations, gene family expansions and contractions, and TE activity are important sources of genome diversification and diversity in grass powdery mildews. Our findings indicate that a combination of pangenomic and population genetics analyses is needed to understand drivers of evolution in plant pathogenic fungi in a comprehensive way. Author SummaryFungi are a diverse group of organisms, with some of them (e.g. powdery mildews) having at times a devastating impact on important crops like wheat. Studying the genomes of these grass powdery mildew fungi can improve our understanding the pathogens patterns of genome evolution and virulence in order to find more efficient ways to protect crops. Using high quality genomes of a worldwide dataset of wheat and rye powdery mildews, we found multiple re-arrangements in chromosomes, as well as presence and absence of large chromosomal segments in different mildew strains. Along with some genes, important for making these pathogens infectious on various crop lines, some genomic regions may be deleted or duplicated, potentially affecting how the fungus survives and spreads. Additionally, we found that transposable elements are highly active in powdery mildews and that they are enriched near so-called effector genes, which are associated with fungal virulence. Our study shows how powdery mildew genomes have diversified during recent evolution, which has implications for future breeding of crops toward better resistance to fungal diseases.

genomics↗

A reference metagenome sequence of the lichen Cladonia rangiformis

[bullet] Lichens are an ancient symbiosis comprising the thalli of lichen-forming fungi, their photoautotrophic partners and their microbiome. So far, they were poorly studied at the genome sequence level. Here, we present a reference metagenome for the holobiont of Cladonia rangiformis. [bullet]Using long read sequences from an entire symbiotic complex, plus short read libraries from 28 additional diverse European lichen samples, we were able to separate genome sequences of 20 individual species. [bullet]We constructed chromosome-scale assemblies of the C. rangiformis fungus and its trebouxioid green algal photobiont Asterochloris mediterranea. The genome of the fungus comprises [~]22% transposable elements and is highly compartmentalized into genic regions and large TE-derived segments which show extensive signatures of repeat-induced point mutations (RIP). We found that A. mediterranea centromeres are predominantly derived from two interacting retrotransposon families. We also identified strong candidates for genes that were horizontally transferred from bacteria to both alga and fungus. Furthermore, we isolated 18 near-complete bacterial genomes, of which 13 are enriched in the lichen compared to surrounding soil. [bullet]Our study revealed that the thalli of C. rangiformis have a highly complex microbiome, comprising a mix of species that may include opportunists, ecologically obligate symbionts and possibly even lichen-beneficial bacteria.

evolutionary biology↗