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Updated: Dec 22, 2025

Purification of High Molecular Weight Genomic DNA from Powdery Mildew for Long-Read Sequencing
Published on: March 31, 2017
Ultraviolet Mutagenesis Coupled with Next-Generation Sequencing as a Method for Functional Interrogation of Powdery
Mirna Barsoum1, Stefan Kusch1, Lamprinos Frantzeskakis1
1RWTH Aachen University, Institute for Biology I, Unit of Plant Molecular Cell Biology, Worringerweg 1, 52056 Aachen, Germany.
Abstract:
Powdery mildews are obligate biotrophic fungal pathogens causing important diseases of plants worldwide. Very little is known about the requirements for their pathogenicity at the molecular level. This is largely due to the inability to culture these organisms in vitro or to modify them genetically. Here, we describe a mutagenesis procedure based on ultraviolet (UV) irradiation to accumulate mutations in the haploid genome of the barley powdery mildew pathogen Blumeria graminis f. sp. hordei. Exposure of B. graminis f. sp. hordei conidia to different durations of UV-C radiation (10 s to 12 min) resulted in a reduced number of macroscopically visible fungal colonies. B. graminis f. sp. hordei colony number was negatively correlated with exposure time and the total number of consecutive cycles of UV irradiation. Dark incubation following UV exposure further reduced fungal viability, implying that photoreactivation is an important component of DNA repair in B. graminis f. sp. hordei. After several rounds of UV mutagenesis, we selected two mutant isolates in addition to the parental B. graminis f. sp. hordei K1 isolate for whole-genome resequencing. By combining automated prediction of sequence variants and their manual validation, we identified unique UV-induced mutations in the genomes of the two isolates. Most of these mutations were in the up- or downstream regions of genes or in the intergenic space. Some of the variants detected in genes led to predicted missense mutations. As an additional insight, our bioinformatic analyses revealed a complex population structure within supposedly clonal B. graminis f. sp. hordei isolates.
Insights
Researchers developed a UV mutagenesis method for barley powdery mildew (Blumeria graminis f. sp. hordei). This technique identified UV-induced mutations and revealed complex population structures in this important plant pathogen.
Area of Science:
- Plant Pathology
- Mycology
- Genetics
Background:
- Powdery mildews are significant plant pathogens globally.
- Understanding their pathogenicity requires molecular insights, but in vitro culture and genetic modification are challenging.
- Blumeria graminis f. sp. hordei causes barley powdery mildew, a major agricultural disease.
Purpose of the Study:
- To establish a mutagenesis procedure for Blumeria graminis f. sp. hordei using ultraviolet (UV) irradiation.
- To identify UV-induced mutations in the pathogen's genome.
- To investigate the population structure of B. graminis f. sp. hordei.
Main Methods:
- UV-C irradiation of Blumeria graminis f. sp. hordei conidia.
- Serial cycles of UV mutagenesis and colony selection.
- Whole-genome resequencing of parental and mutant isolates.
- Bioinformatic analysis of sequence variants and population structure.
Main Results:
- UV-C exposure reduced fungal colony numbers, correlated with exposure time and cycles.
- Dark incubation enhanced UV-induced lethality, suggesting photoreactivation DNA repair.
- UV mutagenesis identified unique mutations, primarily in intergenic and regulatory regions, with some missense mutations.
- Bioinformatic analysis indicated a complex population structure in supposedly clonal isolates.
Conclusions:
- UV mutagenesis is a viable method to induce and identify mutations in Blumeria graminis f. sp. hordei.
- Photoreactivation plays a role in DNA repair for this fungus.
- The study identified novel genetic variations and uncovered unexpected population complexity in barley powdery mildew.
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