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Metabolic Profiling to Identify the Latent Infection of Strawberry byBotrytis cinerea

机译:代谢谱分析法鉴定草莓的潜在感染灰葡萄孢

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摘要

In plant-pathogen interaction systems, plant metabolism is usually agitated in the early stages of infection and much before visible symptoms appear. To identify the latent infection of strawberry by Botrytis cinerea by metabolome profiling, a metabolomics method based on gas chromatography and mass spectrometry was applied to identify the affected metabolites and discriminate diseased plants from healthy ones. An orthogonal partial least squares (OPLS) score plot showed that the metabolic profiling well separated B. cinerea-infected strawberry plants at 2, 5, and 7 days after infection from non-infected healthy plants. Combined analysis of variance (ANOVA) and OPLS analysis revealed candidate biomarkers of plant resistance and of infection and expansion of the pathogen in the plants. Among them, hexadecanoic acid, octadecanoic acid, sucrose, β-lyxopyranose, melibiose, and 1,1,4a-Trimethyl-5,6-dimethylenedecahydronaphthalene were closely related to the early stage of disease development when symptoms were not visible. A discrimination method that could distinguish Botrytis gray mold diseased strawberry plants from healthy ones was established based on the partial least squares discriminant analysis (PLS-DA) model with a correctrecognition accuracy of 100%. This research offers a good application ofmetabolome profiling for early diagnosis of plant disease and interactionmechanism exploration.
机译:在植物-病原体相互作用系统中,植物新陈代谢通常在感染的早期并在明显的症状出现之前就被搅动。为了通过代谢组谱分析来鉴定灰葡萄孢对草莓的潜在感染,应用基于气相色谱和质谱的代谢组学方法鉴定受影响的代谢物并将病株与健康植物区分开。正交偏最小二乘(OPLS)评分图显示,代谢图谱在感染后第2、5、7天与未感染的健康植物之间很好地分离了B. cinerea感染的草莓植物。方差分析(ANOVA)和OPLS分析的组合揭示了植物抗性以及植物中病原体的感染和扩展的候选生物标记。其中,十六烷酸,十八烷酸,蔗糖,β-lyyopyranose,melibiose和1,1,4a-Trimethyl-5,6-二甲基二烯氢化萘与症状不明显时的疾病发展早期密切相关。基于偏最小二乘判别分析(PLS-DA)模型,建立了能够正确区分葡萄孢和灰霉病草莓植物的判别方法。识别精度为100%。这项研究为代谢物谱分析,用于植物病害和相互作用的早期诊断机制探索。

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