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Updated: Sep 21, 2025

Genome-wide Analysis of Histone Modifications Distribution using the Chromatin Immunoprecipitation Sequencing Method in Magnaporthe oryzae
Published on: June 2, 2021
MoWhi2 Mediates Mitophagy to Regulate Conidiation and Pathogenesis in Magnaporthe oryzae
Shuai Meng1,2, Jane Sadhna Jagernath1, Chaoxi Luo2
1State Key Lab of Rice Biology, China National Rice Research Institute, Hangzhou 311400, China.
Abstract:
Mitophagy refers to the specific process of degrading mitochondria, which is an important physiological process to maintain the balance of mitochondrial quantity and quality in cells. At present, the mechanisms of mitophagy in pathogenic fungi remain unclear. Magnaporthe oryzae (Syn. Pyricularia oryzae), the causal agent of rice blast disease, is responsible for the most serious disease of rice. In M. oryzae, mitophagy occurs in the foot cells and invasive hyphae to promote conidiation and infection. In this study, fluorescent observations and immunoblot analyses showed that general stress response protein MoWhi2 is required for mitophagy in M. oryzae. In addition, the activation of the autophagy, pexophagy and cytoplasm-to-vacuole targeting (CVT) pathway upon nitrogen starvation was determined using the GFP-MoATG8, GFP-SRL and MoAPE1-GFP strains and the ΔMowhi2 mutant in these backgrounds. The results indicated that MoWhi2 is specifically required for mitophagy in M. oryzae. Further studies showed that mitophagy in the foot cells and invasive hyphae of the ΔMowhi2 was interrupted, leading to reduced conidiation and virulence in the ΔMowhi2 mutant. Taken together, we found that MoWhi2 contributes to conidiation and invasive growth by regulating mitophagy in M. oryzae.
Insights
The stress response protein MoWhi2 is essential for mitophagy in Magnaporthe oryzae, a fungus causing rice blast disease. This protein regulates mitochondrial quality, impacting fungal development and infection.
Area of Science:
- Cell Biology
- Mycology
- Plant Pathology
Background:
- Mitophagy is crucial for maintaining mitochondrial homeostasis in cells.
- Mechanisms of mitophagy in pathogenic fungi, like Magnaporthe oryzae, are not well understood.
- M. oryzae causes significant rice blast disease, impacting global food security.
Purpose of the Study:
- To investigate the role of the stress response protein MoWhi2 in mitophagy in Magnaporthe oryzae.
- To elucidate the specific function of MoWhi2 in fungal development and pathogenicity.
Main Methods:
- Fluorescent observations and immunoblot analyses were employed.
- Utilized GFP-tagged strains (GFP-MoATG8, GFP-SRL, MoAPE1-GFP) to track autophagy pathways.
- Generated and analyzed a ΔMowhi2 mutant to assess mitophagy defects.
Main Results:
- MoWhi2 was identified as a protein specifically required for mitophagy in M. oryzae.
- Mitophagy was impaired in the ΔMowhi2 mutant, particularly in foot cells and invasive hyphae.
- The absence of MoWhi2 led to reduced conidiation and virulence.
Conclusions:
- MoWhi2 plays a critical role in regulating mitophagy in M. oryzae.
- MoWhi2 contributes to fungal conidiation and invasive growth by controlling mitochondrial quality.
- Understanding MoWhi2's function offers potential targets for managing rice blast disease.
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