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Published on: September 15, 2023
Identification and characterisation of Mycosphaerella graminicola secreted or surface-associated proteins with
Jason J Rudd1, John Antoniw, Rosalind Marshall
1Centre for Sustainable Pest and Disease Management, Department of Plant Pathology and Microbiology, Rothamsted Research, Harpenden, Herts AL5 2JQ, UK. jason.rudd@bbsrc.ac.uk
Abstract:
Pathogenic micro-organisms have been suggested to vary the number of intragenic repeats present within secreted or cell membrane/cell wall-associated proteins in order to manipulate host immune responses. We have identified a number of genes predicted to encode secreted proteins possessing internal tandem repeats in the genome sequence of Mycosphaerella graminicola (isolate IPO323), a wheat leaf-specific fungal pathogen and causal agent of Septoria tritici blotch disease. Twenty-three M. graminicolaTandem Repeat Proteins (MgTRPs) were subject to further analysis. Many MgTRPs varied in the number of intragenic repeats between isolates and almost all were expressed. Peak gene expression was frequently observed towards the end of the symptomless phase of wheat leaf colonisation which typically lasts for 8-10 days after inoculation. In contrast, with one exception, increased expression of the majority of MgTRPs was not detected during interactions with resistant host genotypes. Repeat number differences detected in genomic DNA were retained in different transcript sizes produced during plant infection by different isolates. One in planta expressed MgTRP was found to reside within a approximately 6 kb region that appears to be absent from a number of tested isolates and also from individual members of a modern field population. Sequence analysis of another in planta expressed MgTRP from six isolates highlighted the potential for structural changes which may occur as a consequence of varying internal repeat numbers and provided support for repeat variation occurring as a consequence of intragenic recombination. These data provide new insights into the genetic variation which exists within M. graminicola populations at the level of in planta expressed secreted/surface-associated proteins which are candidate effectors in the host-pathogen interaction.
Insights
Pathogenic fungi like Mycosphaerella graminicola vary repeat numbers in secreted proteins to affect host immunity. This study reveals genetic diversity in these proteins, impacting wheat disease development.
Area of Science:
- Plant Pathology
- Fungal Genetics
- Molecular Plant-Microbe Interactions
Background:
- Pathogenic microorganisms may alter intragenic repeats in secreted proteins to modulate host immune responses.
- Mycosphaerella graminicola is a significant wheat pathogen causing Septoria tritici blotch.
Purpose of the Study:
- To identify and characterize genes encoding secreted proteins with internal tandem repeats in Mycosphaerella graminicola.
- To investigate the variation and expression of these proteins during wheat infection.
Main Methods:
- Genome sequencing and analysis of Mycosphaerella graminicola (isolate IPO323).
- Identification and characterization of M. graminicola Tandem Repeat Proteins (MgTRPs).
- Gene expression analysis during wheat leaf colonization and in interaction with different host genotypes.
Main Results:
- Twenty-three M. graminicola Tandem Repeat Proteins (MgTRPs) were identified; many showed variation in repeat numbers among isolates.
- Most MgTRPs were expressed, with peak expression during the symptomless phase of infection.
- Repeat number variations in genomic DNA were reflected in transcript sizes during plant infection.
Conclusions:
- Genetic variation exists in M. graminicola populations concerning in planta expressed secreted/surface-associated proteins.
- These variable proteins are candidate effectors involved in host-pathogen interactions.
- Repeat variation, potentially driven by intragenic recombination, contributes to the adaptability of M. graminicola.

