青枯病
青枯菌
根际
生物
微生物群
植物抗病性
水杨酸
花生
细菌
基因型
生物技术
枯萎病
产量(工程)
微生物代谢
微生物学
抗性(生态学)
基因
病菌
基因组
农学
雷斯顿
作者
Rui Ren,Li X,Hui Li,Zenghui Cao,Mengtian Hou,Chunlei Zhao,Nan Lou,Sasa Hu,YJ Li,Qian Ma,YJ Li,Yi Fan,Kunkun Zhao,Kai Zhao,Ding Qiu,Fangping Gong,Z Y Li,H J LIU,Xingli Ma,X H Wang
摘要
Bacterial wilt caused by Ralstonia solanacearum compromises the yield and quality of peanut (Arachis hypogaea L.). While rhizosphere microbiome-assisted defense is known, how resistant plant genotypes orchestrate this process remains unclear. Here, we integrate multi-omics analyses of resistant and susceptible peanut genotypes to uncover a genotype-specific defense mechanism. The resistant genotype selectively recruits beneficial bacteria (e.g., Kosakonia and Frankia), which coincides with activated salicylic acid (SA)-dependent systemic acquired resistance (SAR). Crucially, we identify keystone rhizosphere metabolites (including betaine, arginine, and SA) that are positively correlated with both beneficial microbiome assembly and SAR gene expression, establishing a self-reinforcing defense loop. Leveraging these insights, we develop a prebiotic formulation that enhances beneficial microbial recruitment and stimulates SAR. Field trials demonstrate that the prebiotics reduce bacterial wilt incidence from 84.2% to 5.0% and increase yield by 12.9%-20.3%. Collectively, our study reveals a synergistic microbiome-immune co-regulation mechanism in peanut and delivers a translatable solution for sustainable disease management.
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