Inhibitor of cardiolipin biosynthesis‐related enzyme MoGep4 confers broad‐spectrum anti‐fungal activity

Author:

Sun Peng1ORCID,Zhao Juan1,Sha Gan1,Zhou Yaru1,Zhao Mengfei1,Li Renjian1,Kong Xiaojing1,Sun Qiping1,Li Yun1,Li Ke1,Bi Ruiqing1,Yang Lei1ORCID,Qin Ziting1,Huang Wenzheng1,Wang Yin1,Gao Jie2,Chen Guang2,Zhang Haifeng3,Adnan Muhammad4,Yang Long1,Zheng Lu1ORCID,Chen Xiao‐Lin1,Wang Guanghui5,Ishikawa Toshiki6,Li Qiang2ORCID,Xu Jin‐Rong7,Li Guotian1

Affiliation:

1. National Key Laboratory of Agricultural Microbiology, Hubei Hongshan Laboratory, Hubei Key Laboratory of Plant Pathology, The Center of Crop Nanotechnology Huazhong Agricultural University Wuhan China

2. National Key Laboratory of Crop Genetic Improvement Huazhong Agricultural University Wuhan China

3. Department of Plant Pathology, Key Laboratory of Integrated Management of Crop Diseases and Pests, Ministry of Education, College of Plant Protection Nanjing Agricultural University Nanjing China

4. Institute of Food Crops Yunnan Academy of Agricultural Sciences Kunming China

5. State Key Laboratory of Crop Stress Biology for Arid Areas, College of Plant Protection Northwest A&F University Yangling China

6. Graduate School of Science and Engineering Saitama University Saitama Japan

7. Department of Botany and Plant Pathology Purdue University West Lafayette Indiana USA

Abstract

AbstractPlant pathogens cause devastating diseases, leading to serious losses to agriculture. Mechanistic understanding of pathogenesis of plant pathogens lays the foundation for the development of fungicides for disease control. Mitophagy, a specific form of autophagy, is important for fungal virulence. The role of cardiolipin, mitochondrial signature phospholipid, in mitophagy and pathogenesis is largely unknown in plant pathogenic fungi. The functions of enzymes involved in cardiolipin biosynthesis and relevant inhibitors were assessed using a set of assays, including genetic deletion, plant infection, lipidomics, chemical‐protein interaction, chemical inhibition, and field trials. Our results showed that the cardiolipin biosynthesis‐related gene MoGEP4 of the rice blast fungus Magnaporthe oryzae regulates growth, conidiation, cardiolipin biosynthesis, and virulence. Mechanistically, MoGep4 regulated mitophagy and Mps1‐MAPK phosphorylation, which are required for virulence. Chemical alexidine dihydrochloride (AXD) inhibited the enzyme activity of MoGep4, cardiolipin biosynthesis and mitophagy. Importantly, AXD efficiently inhibited the growth of 10 plant pathogens and controlled rice blast and Fusarium head blight in the field. Our study demonstrated that MoGep4 regulates mitophagy, Mps1 phosphorylation and pathogenesis in M. oryzae. In addition, we found that the MoGep4 inhibitor, AXD, displays broad‐spectrum antifungal activity and is a promising candidate for fungicide development.

Funder

Fundamental Research Funds for the Central Universities

China Postdoctoral Science Foundation

National Natural Science Foundation of China

Publisher

Wiley

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