Fusarium graminearum rapid alkalinization factor peptide negatively regulates plant immunity and cell growth via the FERONIA receptor kinase

Author:

Wang Yujie1,Liu Xin12,Yuan Bingqin1,Chen Xue1,Zhao Hanxi1,Ali Qurban1,Zheng Minghong1,Tan Zheng1,Yao Hemin1,Zheng Shuqing1,Wu Jingni1,Xu Jianhong12,Shi Jianrong12,Wu Huijun1,Gao Xuewen1,Gu Qin1ORCID

Affiliation:

1. Department of Plant Pathology, College of Plant Protection Nanjing Agricultural University, Key Laboratory of Monitoring and Management of Crop Diseases and Pest Insects, Ministry of Education Nanjing China

2. Institute of Food Safety and Nutrition Jiangsu Academy of Agricultural Sciences Nanjing China

Abstract

SummaryThe plant rapid alkalinization factor (RALF) peptides function as key regulators in cell growth and immune responses through the receptor kinase FERONIA (FER). In this study, we report that the transcription factor FgPacC binds directly to the promoter of FgRALF gene, which encodes a functional homologue of the plant RALF peptides from the wheat head blight fungus Fusarium graminearum (FgRALF). More importantly, FgPacC promotes fungal infection via host immune suppression by activating the expression of FgRALF. The FgRALF peptide also exhibited typical activities of plant RALF functions, such as inducing plant alkalinization and inhibiting cell growth, including wheat (Triticum aestivum), tomato (Solanum lycopersicum) and Arabidopsis thaliana. We further identified the wheat receptor kinase FERONIA (TaFER), which is capable of restoring the defects of the A. thaliana FER mutant. In addition, we found that FgRALF peptide binds to the extracellular malectin‐like domain (ECD) of TaFER (TaFERECD) to suppress the PAMP‐triggered immunity (PTI) and cell growth. Overexpression of TaFERECD in A. thaliana confers plant resistance to F. graminearum and protects from FgRALF‐induced cell growth inhibition. Collectively, our results demonstrate that the fungal pathogen‐secreted RALF mimic suppresses host immunity and inhibits cell growth via plant FER receptor. This establishes a novel pathway for the development of disease‐resistant crops in the future without compromising their yield potential.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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