Yang Quan, Niu Anqi, Li Shuang, Liu Junang, Zhou Guoying
Key Laboratory of National Forestry and Grassland Administration on Control of Artificial Forest Diseases and Pests in South China, Central South University of Forestry and Technology, Changsha 410004, China.
Hunan Provincial Key Laboratory for Control of Forest Diseases and Pests, Central South University of Forestry and Technology, Changsha 410004, China.
Metabolites. 2024 Nov 21;14(12):646. doi: 10.3390/metabo14120646.
Plant growth-promoting rhizobacteria (PGPR), particularly spp., are pivotal in enhancing plant defense mechanisms against pathogens. This study aims to investigate the metabolic reprogramming of pine needles induced by csuftcsp75 in response to the pathogen P9, evaluating its potential as a sustainable biocontrol agent. Using liquid chromatography-mass spectrometry (LC-MS/MS), we performed a principal component analysis and a cluster analysis to assess the metabolic alterations in treated versus control groups. This study focused on specific metabolites associated with plant defense. Our findings indicate that treatment with csuftcsp75 significantly modifies the metabolic profiles of pine needles, leading to notable increases in metabolites associated with flavonoid biosynthesis, particularly phenylpropanoid metabolism, as well as amino acid metabolism pathways. These metabolic changes indicate enhanced systemic acquired resistance (SAR) and induced systemic resistance (ISR), with treated plants exhibiting elevated levels of defense-related compounds such as 5-hydroxytryptophol and oleanolic acid. This study reveals that csuftcsp75 enhances defense against pathogen P9 by modulating pine needle metabolism and activating key immune pathways, inducing systemic acquired resistance and induced systemic resistance, offering a natural alternative to chemical pesticides in sustainable agriculture.
植物促生根际细菌(PGPR),特别是[具体菌种],在增强植物对病原体的防御机制方面起着关键作用。本研究旨在探究csuftcsp75诱导松针的代谢重编程以应对病原体P9,评估其作为可持续生物防治剂的潜力。我们使用液相色谱 - 质谱联用(LC-MS/MS)技术,进行主成分分析和聚类分析,以评估处理组与对照组的代谢变化。本研究聚焦于与植物防御相关的特定代谢物。我们的研究结果表明,用csuftcsp75处理可显著改变松针的代谢谱,导致与类黄酮生物合成相关的代谢物显著增加,特别是苯丙烷代谢以及氨基酸代谢途径。这些代谢变化表明系统获得性抗性(SAR)和诱导性系统抗性(ISR)增强,处理后的植物表现出防御相关化合物如5 - 羟基色醇和齐墩果酸水平升高。本研究表明,csuftcsp75通过调节松针代谢和激活关键免疫途径来增强对病原体P9的防御,诱导系统获得性抗性和诱导性系统抗性,为可持续农业中的化学农药提供了一种天然替代品。