Multiomics analysis reveals the molecular mechanisms underlying virulence in Rhizoctonia and jasmonic acid-mediated resistance in Tartary buckwheat (Fagopyrum tataricum)

多组学分析揭示了丝核菌的毒力和苦荞麦(Fagopyrum tataricum)中茉莉酸介导的抗性的分子机制

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作者:Yuqi He, Kaixuan Zhang, Shijuan Li, Xiang Lu, Hui Zhao, Chaonan Guan, Xu Huang, Yaliang Shi, Zhen Kang, Yu Fan, Wei Li, Cheng Chen, Guangsheng Li, Ou Long, Yuanyuan Chen, Mang Hu, Jianping Cheng, Bingliang Xu, Mark A Chapman, Milen I Georgiev, Alisdair R Fernie, Meiliang Zhou

Abstract

Rhizoctonia solani is a devastating soil-borne pathogen that seriously threatens the cultivation of economically important crops. Multiple strains with a very broad host range have been identified, but only 1 (AG1-IA, which causes rice sheath blight disease) has been examined in detail. Here, we analyzed AG4-HGI 3 originally isolated from Tartary buckwheat (Fagopyrum tataricum), but with a host range comparable to AG1-IA. Genome comparison reveals abundant pathogenicity genes in this strain. We used multiomic approaches to improve the efficiency of screening for disease resistance genes. Transcriptomes of the plant-fungi interaction identified differentially expressed genes associated with virulence in Rhizoctonia and resistance in Tartary buckwheat. Integration with jasmonate-mediated transcriptome and metabolome changes revealed a negative regulator of jasmonate signaling, cytochrome P450 (FtCYP94C1), as increasing disease resistance probably via accumulation of resistance-related flavonoids. The integration of resistance data for 320 Tartary buckwheat accessions identified a gene homolog to aspartic proteinase (FtASP), with peak expression following R. solani inoculation. FtASP exhibits no proteinase activity but functions as an antibacterial peptide that slows fungal growth. This work reveals a potential mechanism behind pathogen virulence and host resistance, which should accelerate the molecular breeding of resistant varieties in economically essential crops.

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