Kumar Yashwant, Zhang Limin, Panigrahi Priyabrata, Dholakia Bhushan B, Dewangan Veena, Chavan Sachin G, Kunjir Shrikant M, Wu Xiangyu, Li Ning, Rajmohanan Pattuparambil R, Kadoo Narendra Y, Giri Ashok P, Tang Huiru, Gupta Vidya S
Division of Biochemical Sciences, CSIR-National Chemical Laboratory, Pune, India.
Key Laboratory of Magnetic Resonance in Biological Systems, National Centre for Magnetic Resonance in Wuhan, Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences, Wuhan, China.
Plant Biotechnol J. 2016 Jul;14(7):1589-603. doi: 10.1111/pbi.12522. Epub 2016 Jan 23.
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.
植物对真菌攻击所引发的分子变化以及这如何影响植物与病原体的相互作用,包括易感性或抗性,仍然不清楚。我们利用无标记定量蛋白质组学和基于核磁共振的代谢组学,研究了鹰嘴豆与尖孢镰刀菌(Fusarium oxysporum f. sp. ciceri,Foc)之间亲和性和非亲和性相互作用过程中根系代谢的动态变化。结果表明,与感病植株相比,Foc接种后抗性植株中蛋白质和代谢物存在差异表达。此外,候选基因的表达分析支持了Foc接种后鹰嘴豆根系中的蛋白质组和代谢变化。特别是,我们发现抗性植株在碳和氮代谢、活性氧(ROS)生成、木质化和植保素方面有显著增加。在抗性植株中,Foc接种后一些病程相关蛋白的水平显著升高。有趣的是,结果还显示了改变的杨循环的关键作用,它在鹰嘴豆根系抵抗Foc的不同甲基化反应和未折叠蛋白反应中发挥作用。总体而言,作为几个精心编排的分子事件的结果,所观察到的代谢通量调节是鹰嘴豆与Foc相互作用中植物作用的决定因素。