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双重代谢组学:一种理解植物-病原体相互作用的新方法。

Dual metabolomics: a novel approach to understanding plant-pathogen interactions.

机构信息

Aberystwyth University, IBERS-Institute of Biological, Environmental and Rural Sciences, Aberystwyth, Wales, UK.

出版信息

Phytochemistry. 2010 Apr;71(5-6):590-7. doi: 10.1016/j.phytochem.2010.01.006.

Abstract

One of the most well-characterised plant pathogenic interactions involves Arabidopsis thaliana and the bacteria Pseudomonas syringae pathovar tomato (Pst). The standard Pst inoculation procedure involves infiltration of large populations of bacteria into plant leaves which means that metabolite changes cannot be readily assigned to the host or pathogen. A plant cell-pathogen co-culture based approach has been developed where the plant and pathogen cells are separated after 12h of co-culture via differential filtering and centrifugation. Fourier transform infrared (FT-IR) spectroscopy was employed to assess the intracellular metabolomes (metabolic fingerprints) of both host and pathogen and their extruded (extracellular) metabolites (metabolic footprints) under conditions relevant to disease and resistance. We propose that this system will enable the metabolomic profiling of the separated host and pathogen (i.e. 'dual metabolomics') and will facilitate the modelling of reciprocal responses.

摘要

一种研究最为透彻的植物病原互作涉及拟南芥和丁香假单胞菌番茄亚种(Pst)。标准的 Pst 接种程序涉及将大量细菌渗透到植物叶片中,这意味着代谢物的变化不能轻易地归因于宿主或病原体。本研究开发了一种基于植物细胞-病原体共培养的方法,在共培养 12 小时后,通过差异过滤和离心将植物和病原体细胞分离。傅里叶变换红外(FT-IR)光谱用于评估与疾病和抗性相关条件下宿主和病原体的细胞内代谢组(代谢指纹)及其挤出(细胞外)代谢物(代谢足迹)。我们提出,该系统将能够对分离的宿主和病原体进行代谢组学分析(即“双重代谢组学”),并促进对相互响应的建模。

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