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Updated: May 18, 2026

Genome-wide Analysis of Histone Modifications Distribution using the Chromatin Immunoprecipitation Sequencing Method in Magnaporthe oryzae
Published on: June 2, 2021
In-depth analysis of the Magnaporthe oryzae conidial proteome
Emine Gokce1, William L Franck, Yeonyee Oh
1W.M. Keck FT-ICR Mass Spectrometry Laboratory, Department of Chemistry, and Center for Integrated Fungal Research, North Carolina State University, Raleigh, North Carolina 27695, United States.
Abstract:
The filamentous fungus Magnaporthe oryzae (M. oryzae) is the causative agent of rice blast disease and presents a significant threat to worldwide rice production. To establish the groundwork for future research on the pathogenic development of M. oryzae, a global proteomic study of conidia was performed. The filter aided sample preparation method (FASP) and anion StageTip fractionation combined with long, optimized shallow 210 min nanoLC gradients prior to mass spectrometry analysis on an Orbitrap XL was applied, which resulted in a doubling of protein identifications in comparison to our previous GeLC analysis. Herein, we report the identification of 2912 conidial proteins at a 1% protein false discovery rate (FDR) and we present the most extensive study performed on M. oryzae conidia to date. A similar distribution between identified proteins and the predicted proteome was observed when subcellular localization analysis was performed, suggesting the detected proteins build a representative portion of the predicted proteome. A higher percentage of cytoplasmic proteins (associated with translation, energy, and metabolism) were observed in the conidial proteome relative to the whole predicted proteome. Conversely, nuclear and extracellular proteins were less well represented in the conidial proteome. Further analysis by gene ontology revealed biological insights into identified proteins important for central metabolic processes and the physiology of conidia.
Insights
This study identified 2912 proteins in Magnaporthe oryzae conidia, offering new insights into rice blast fungus pathogenicity. The findings advance understanding of this major threat to global rice production.
Area of Science:
- * Mycology
- * Plant Pathology
- * Proteomics
Background:
- * Magnaporthe oryzae (M. oryzae) causes rice blast, a major threat to global rice production.
- * Understanding M. oryzae pathogenicity requires detailed knowledge of its conidial proteome.
- * Previous proteomic studies were limited in scope and identification depth.
Purpose of the Study:
- * To perform a global proteomic analysis of M. oryzae conidia.
- * To identify proteins critical for pathogenic development.
- * To establish a foundation for future research on M. oryzae.
Main Methods:
- * Utilized filter-aided sample preparation (FASP) and anion StageTip fractionation.
- * Employed long, optimized 210 min nanoLC gradients.
- * Performed mass spectrometry analysis on an Orbitrap XL.
- * Achieved a 1% protein false discovery rate (FDR).
Main Results:
- * Identified 2912 conidial proteins, doubling previous identifications.
- * Subcellular localization analysis showed a representative portion of the predicted proteome.
- * Identified a higher percentage of cytoplasmic proteins (translation, energy, metabolism) compared to the predicted proteome.
- * Nuclear and extracellular proteins were less represented in conidia.
Conclusions:
- * This is the most extensive proteomic study of M. oryzae conidia to date.
- * The identified proteins provide biological insights into central metabolic processes and conidial physiology.
- * Findings contribute to understanding the pathogenicity of M. oryzae and inform strategies against rice blast disease.
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