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Fusarium oxysporum mediates systems metabolic reprogramming of chickpea roots as revealed by a combination of proteomics and metabolomics

机译:Fusarium oxysporum介于蛋白质组学和代谢组合的组合揭示的鹰嘴豆毒性的系统代谢重新编程

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Molecular changes elicited by plants in response to fungal attack and how this affects plant-pathogen interaction, including susceptibility or resistance, remain elusive. We studied the dynamics in root metabolism during compatible and incompatible interactions between chickpea and Fusarium oxysporum f. sp. ciceri (Foc), using quantitative label-free proteomics and NMR-based metabolomics. Results demonstrated differential expression of proteins and metabolites upon Foc inoculations in the resistant plants compared with the susceptible ones. Additionally, expression analysis of candidate genes supported the proteomic and metabolic variations in the chickpea roots upon Foc inoculation. In particular, we found that the resistant plants revealed significant increase in the carbon and nitrogen metabolism; generation of reactive oxygen species (ROS), lignification and phytoalexins. The levels of some of the pathogenesis-related proteins were significantly higher upon Foc inoculation in the resistant plant. Interestingly, results also exhibited the crucial role of altered Yang cycle, which contributed in different methylation reactions and unfolded protein response in the chickpea roots against Foc. Overall, the observed modulations in the metabolic flux as outcome of several orchestrated molecular events are determinant of plant's role in chickpea-Foc interactions.
机译:植物引发的分子变化响应于真菌发作以及这影响植物病原体相互作用,包括易感性或抗性,仍然难以捉摸。我们在鹰嘴豆和牡蛎F的相容和不相容的相互作用期间研究了根代谢中的动态。 SP。 Ciceri(Foc),使用无定量的无标记蛋白质组学和基于NMR的代谢组学。结果与易感植物相比,在耐腐蚀植物中的谱系中诱导蛋白质和代谢物的差异表达。另外,候选基因的表达分析支持Chickpea根系的蛋白质组学和代谢变化在Foc接种时。特别是,我们发现抗性植物揭示了碳和氮代谢的显着增加;产生反应性氧气(ROS),荨麻状症和植物脂肪素。在抗性植物中Fec接种后,一些病因相关蛋白质的水平显着较高。有趣的是,结果也表现出改变阳循环的关键作用,这导致了不同的甲基化反应和鹰嘴豆根的蛋白质反应。总体而言,作为几种策划分子事件的结果的代谢通量的观察调试是​​植物在鹰嘴豆杂草相互作用中的作用的决定因素。

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