Rhizosphere‐associated Pseudomonas induce systemic resistance to herbivores at the cost of susceptibility to bacterial pathogens

生物 根际 丁香假单胞菌 假单胞菌 毛毛虫 茉莉酸 微生物学 水杨酸 拟南芥 假单胞菌科 病菌 卷心菜活套 系统获得性抵抗 假单胞菌 植物 细菌 遗传学 基因 突变体 有害生物分析 夜蛾科
作者
Cara H. Haney,Christina L. Wiesmann,Lori R. Shapiro,Ryan A. Melnyk,Lucy R. O’Sullivan,Sophie Khorasani,Li Xiao,Jiatong Han,Jenifer Bush,Juli Carrillo,Naomi E. Pierce,Frederick M. Ausubel
出处
期刊:Molecular Ecology [Wiley]
卷期号:27 (8): 1833-1847 被引量:69
标识
DOI:10.1111/mec.14400
摘要

Abstract Plant‐associated soil microbes are important mediators of plant defence responses to diverse above‐ground pathogen and insect challengers. For example, closely related strains of beneficial rhizosphere Pseudomonas spp. can induce systemic resistance ( ISR ), systemic susceptibility ( ISS ) or neither against the bacterial foliar pathogen Pseudomonas syringae pv. tomato DC 3000 ( Pto DC 3000). Using a model system composed of root‐associated Pseudomonas spp. strains, the foliar pathogen Pto DC 3000 and the herbivore Trichoplusia ni (cabbage looper), we found that rhizosphere‐associated Pseudomonas spp. that induce either ISS and ISR against Pto DC 3000 all increased resistance to herbivory by T. ni . We found that resistance to T. ni and resistance to Pto DC 3000 are quantitative metrics of the jasmonic acid ( JA )/salicylic acid ( SA ) trade‐off and distinct strains of rhizosphere‐associated Pseudomonas spp. have distinct effects on the JA / SA trade‐off. Using genetic analysis and transcriptional profiling, we provide evidence that treatment of Arabidopsis with Pseudomonas sp. CH 267, which induces ISS against bacterial pathogens, tips the JA / SA trade‐off towards JA ‐dependent defences against herbivores at the cost of a subset of SA ‐mediated defences against bacterial pathogens. In contrast, treatment of Arabidopsis with the ISR strain Pseudomonas sp. WCS 417 disrupts JA / SA antagonism and simultaneously primes plants for both JA ‐ and SA ‐mediated defences. Our findings show that ISS against the bacterial foliar pathogens triggered by Pseudomonas sp. CH 267 , which is a seemingly deleterious phenotype, may in fact be an adaptive consequence of increased resistance to herbivory. Our work shows that pleiotropic effects of microbiome modulation of plant defences are important to consider when using microbes to modify plant traits in agriculture.
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