Pseudomonas volatiles shape the root transcriptome and microbiome to promote plant growth under drought

根际 生物 拟南芥 微生物群 假单胞菌 植物 转录组 非生物胁迫 芸苔属 拟南芥 根际细菌 非生物成分 生物量(生态学) 土壤微生物学 丁香假单胞菌 无菌的 根毛 细菌 大块土 植物生理学 稳定同位素探测 代谢组学 侧根 微生物种群生物学 代谢组 叶圈 微生物 营养物 荧光假单胞菌 四氢嘧啶
作者
Zulema Carracedo Lorenzo,Muhammad Syamsu Rizaludin,Jielin Wang,Roland Berdaguer,Cristina Brito-Lopez,Carlos Sanchez-Arcos,Paolina Garbeva,Corné M. J. Pieterse,Marcel Dicke,Christa Testerink,Karen J. Kloth,Rumyana Karlova
出处
期刊:New Phytologist [Wiley]
卷期号:251 (1): 405-423
标识
DOI:10.1111/nph.71203
摘要

Volatile organic compounds (VOCs) emitted by soil bacteria influence interactions with other soil microbes and plants. While their potential as plant growth promoters is well recognized, their role in promoting plant resilience to abiotic stress and the underlying molecular mechanisms remain poorly understood. Here, we investigate the role of Pseudomonas VOCs in enhancing plant resilience to drought stress Arabidopsis seedlings were exposed to VOCs emitted by Pseudomonas strains under control and osmotic stress conditions. Plant biomass and root architecture were evaluated. Root transcriptomics analysis was performed and validated using Arabidopsis mutants and metabolomics. Volatile organic compounds effects were also tested on soil-grown Brassica oleracea and on its rhizosphere microbiome. Pseudomonas VOCs promoted plant growth under both axenic and soil conditions in A. thaliana and in B. oleracea, and under control and drought conditions. Transcriptomics, metabolomics, and functional analysis revealed interactions between Pseudomonas VOCs, glucosinolates, and ABA signalling, as well as a positive association between VOC exposure and coumarin biosynthesis. VOC treatment also reshaped the rhizosphere microbiome under drought, leading to a community composition more similar to that of well-watered plants. Overall, Pseudomonas VOCs promote plant growth under drought conditions, linked to root transcriptional reprogramming and direct or indirect microbiome modulation.
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