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生防真菌寡雄腐霉挥发性有机化合物促进生姜植株生长和抗病性。

Volatile Organic Compounds Emitted by the Biocontrol Agent Pythium oligandrum Contribute to Ginger Plant Growth and Disease Resistance.

机构信息

Key Lab of Food Quality and Safety of Jiangsu Province-State Key Laboratory Breeding Base, Institute of Plant Protection, Jiangsu Academy of Agricultural Sciences, Nanjing, China.

School of Biosciences, University of Birmingham, Birmingham, United Kingdom.

出版信息

Microbiol Spectr. 2023 Aug 17;11(4):e0151023. doi: 10.1128/spectrum.01510-23. Epub 2023 Aug 3.

Abstract

The oomycete Pythium oligandrum is a potential biocontrol agent to control a wide range of fungal and oomycete-caused diseases, such as Pythium myriotylum-caused rhizome rot in ginger, leading to reduced yields and compromised quality. Previously, has been studied for its plant growth-promoting potential by auxin production and induction of disease resistance by elicitors such as oligandrin. Volatile organic compounds (VOCs) play beneficial roles in sustainable agriculture by enhancing plant growth and resistance. We investigated the contribution of -produced VOCs on plant growth and disease suppression by initially using Nicotiana benthamiana plants for screening. VOCs significantly enhanced tobacco seedling and plant biomass contents. Screening of the individual VOCs showed that 3-octanone and hexadecane promoted the growth of tobacco seedlings. The total VOCs from also enhanced the shoot and root growth of ginger plants. Transcriptomic analysis showed a higher expression of genes related to plant growth hormones and stress responses in the leaves of ginger plants exposed to VOCs. The concentrations of plant growth hormones such as auxin, zeatin, and gibberellic acid were higher in the leaves of ginger plants exposed to VOCs. In a ginger disease biocontrol assay, the VOC-exposed ginger plants infected with had lower levels of disease severity. We conclude that this study contributes to understanding the growth-promoting mechanisms of on ginger and tobacco, priming of ginger plants against various stresses, and the mechanisms of action of as a biocontrol agent. Plant growth promotion plays a vital role in enhancing production of agricultural crops, and Pythium oligandrum is known for its plant growth-promoting potential through production of auxins and induction of resistance by elicitors. This study highlights the significance of -produced VOCs in plant growth promotion and disease resistance. Transcriptomic analyses of leaves of ginger plants exposed to VOCs revealed the upregulation of genes involved in plant growth hormone signaling and stress responses. Moreover, the concentration of growth hormones significantly increased in VOC-exposed ginger plants. Additionally, the disease severity was reduced in -infected ginger plants exposed to VOCs. In ginger, -caused rhizome rot disease results in severe losses, and biocontrol has a role as part of an integrated pest management strategy for rhizome rot disease. Overall, growth enhancement and disease reduction in plants exposed to -produced VOCs contribute to its role as a biocontrol agent.

摘要

卵菌纲水霉属的寡养单胞菌是一种有潜力的生物防治剂,可以控制多种真菌和卵菌引起的疾病,例如由水霉属引起的生姜根茎腐烂,导致产量下降和质量受损。此前,寡养单胞菌已被研究具有植物生长促进潜力,通过产生生长素和诱导寡糖素等激发子来诱导抗病性。挥发性有机化合物(VOCs)通过增强植物生长和抗性,在可持续农业中发挥有益作用。我们最初使用本生烟植物进行筛选,研究了 -产生的 VOCs 对植物生长和疾病抑制的贡献。VOCs 显著增强了烟草幼苗和植物生物量含量。对单个 VOCs 的筛选表明,3-辛酮和十六烷促进了烟草幼苗的生长。寡养单胞菌产生的总 VOCs 也增强了生姜植株的地上部和根生长。生姜叶片的转录组分析显示,暴露于 -VOCs 的生姜叶片中与植物生长激素和应激反应相关的基因表达更高。暴露于 -VOCs 的生姜叶片中生长素、玉米素和赤霉素等植物生长激素的浓度更高。在生姜病害生物防治试验中,暴露于 VOCs 的生姜植株感染后,病情严重程度较低。我们得出结论,这项研究有助于理解寡养单胞菌对生姜和烟草的促生长机制,生姜植株对各种胁迫的启动,以及寡养单胞菌作为生物防治剂的作用机制。植物生长促进在提高农业作物产量方面起着至关重要的作用,而寡养单胞菌通过产生生长素和诱导激发子诱导抗性而被称为具有植物生长促进潜力。本研究强调了 -产生的 VOCs 在植物生长促进和抗病性中的重要性。暴露于 -VOCs 的生姜叶片的转录组分析显示,参与植物生长激素信号转导和应激反应的基因上调。此外,在暴露于 -VOCs 的生姜植株中,生长激素的浓度显著增加。此外,暴露于 -VOCs 的感染生姜植株的病情严重程度降低。在生姜中,由寡养单胞菌引起的根茎腐烂病会造成严重损失,生物防治可以作为根茎腐烂病综合虫害管理策略的一部分。总的来说,暴露于 -产生的 VOCs 的植物的生长增强和疾病减少有助于其作为生物防治剂的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38fb/10433877/003d4a0aa316/spectrum.01510-23-f001.jpg

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