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Updated: Oct 6, 2025

Genome-wide Analysis of Histone Modifications Distribution using the Chromatin Immunoprecipitation Sequencing Method in Magnaporthe oryzae
Published on: June 2, 2021
Magnaporthe oryzae Transcription Factor MoBZIP3 Regulates Appressorium Turgor Pressure Formation during Pathogenesis
Chengyu Liu1, Ningning Shen1, Qian Zhang1
1College of Life Science, State Key Laboratory of Ecological Control of Fujian-Taiwan Crop Pests, Key Laboratory of Ministry of Education for Genetics, Breeding and Multiple Utilization of Crops, Plant Immunity Center, Fujian Agriculture and Forestry University, Fuzhou 350002, China.
Abstract:
The devastating fungus Magnaporthe oryzae (M. oryzae) forms a specialized infection structure known as appressorium, which generates enormous turgor, to penetrate the plant cells. However, how M. oryzae regulates the appressorium turgor formation, is not well understood. In this study, we identified MoBZIP3, a bZIP transcription factor that functioned in pathogenesis in M. oryzae. We found that the pathogenicity of the MoBZIP3 knockout strain (Δmobzip3) was significantly reduced, and the defect was restored after re-expression of MoBZIP3, indicating that MoBZIP3 is required for M. oryzae virulence. Further analysis showed that MoBZIP3 functions in utilization of glycogen and lipid droplets for generation of glycerol in appressorium. MoBZIP3 localized in the nucleus and could bind directly to the promoters of the glycerol synthesis-related genes, MoPTH2, MoTGL1 and MoPEX6, and regulate their expression which is critical for glycerol synthesis in the appressorium turgor pressure generation. Furthermore, the critical turgor sensor gene MoSln1 was also down regulated and its subcellular localization was aberrant in Δmobzip3, which leads to a disordered actin assembly in the Δmobzip3 appressorium. Taken together, these results revealed new regulatory functions of the bZIP transcription factor MoBZIP3, in regulating M. oryzae appressorium turgor formation and infection.
Insights
This study identifies MoBZIP3, a bZIP transcription factor essential for Magnaporthe oryzae virulence. MoBZIP3 regulates glycerol synthesis and turgor pressure in appressoria, crucial for plant cell penetration.
Area of Science:
- Plant Pathology
- Molecular Mycology
- Fungal Pathogenesis
Background:
- Magnaporthe oryzae (M. oryzae) causes devastating rice blast disease.
- Appressorium turgor generation is critical for M. oryzae plant cell penetration.
- Regulatory mechanisms of appressorium turgor formation remain largely unknown.
Purpose of the Study:
- To identify key regulators of appressorium turgor formation in M. oryzae.
- To elucidate the function of the bZIP transcription factor MoBZIP3 in M. oryzae pathogenesis.
Main Methods:
- Gene knockout and re-expression of MoBZIP3 in M. oryzae.
- Analysis of glycerol synthesis pathways and gene expression.
- Investigation of turgor sensor gene MoSln1 regulation and actin assembly.
Main Results:
- MoBZIP3 is essential for M. oryzae virulence, with knockout strains showing reduced pathogenicity.
- MoBZIP3 regulates glycerol synthesis by directly binding to promoters of glycerol synthesis genes (MoPTH2, MoTGL1, MoPEX6).
- MoBZIP3 affects the expression and localization of the turgor sensor gene MoSln1, impacting actin assembly.
Conclusions:
- MoBZIP3 plays a critical role in regulating M. oryzae appressorium turgor generation through glycerol synthesis and turgor sensing.
- These findings reveal novel regulatory functions of bZIP transcription factors in fungal-plant interactions.
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