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番茄果实与齐整小核菌互作的蛋白质代谢组学研究揭示了病害发展过程中的新型蛋白质网络。

Proteometabolomic Study of Compatible Interaction in Tomato Fruit Challenged with Sclerotinia rolfsii Illustrates Novel Protein Network during Disease Progression.

作者信息

Ghosh Sudip, Narula Kanika, Sinha Arunima, Ghosh Rajgourab, Jawa Priyanka, Chakraborty Niranjan, Chakraborty Subhra

机构信息

National Institute of Plant Genome Research New Delhi, India.

出版信息

Front Plant Sci. 2016 Jul 26;7:1034. doi: 10.3389/fpls.2016.01034. eCollection 2016.

Abstract

Fruit is an assimilator of metabolites, nutrients, and signaling molecules, thus considered as potential target for pathogen attack. In response to patho-stress, such as fungal invasion, plants reorganize their proteome, and reconfigure their physiology in the infected organ. This remodeling is coordinated by a poorly understood signal transduction network, hormonal cascades, and metabolite reallocation. The aim of the study was to explore organ-based proteomic alterations in the susceptibility of heterotrophic fruit to necrotrophic fungal attack. We conducted time-series protein profiling of Sclerotinia rolfsii invaded tomato (Solanum lycopersicum) fruit. The differential display of proteome revealed 216 patho-stress responsive proteins (PSRPs) that change their abundance by more than 2.5-fold. Mass spectrometric analyses led to the identification of 56 PSRPs presumably involved in disease progression; regulating diverse functions viz. metabolism, signaling, redox homeostasis, transport, stress-response, protein folding, modification and degradation, development. Metabolome study indicated differential regulation of organic acid, amino acids, and carbohydrates paralleling with the proteomics analysis. Further, we interrogated the proteome data using network analysis that identified two significant functional protein hubs centered around malate dehydrogenase, T-complex protein 1 subunit gamma, and ATP synthase beta. This study reports, for the first-time, kinetically controlled patho-stress responsive protein network during post-harvest storage in a sink tissue, particularly fruit and constitute the basis toward understanding the onset and context of disease signaling and metabolic pathway alterations. The network representation may facilitate the prioritization of candidate proteins for quality improvement in storage organ.

摘要

果实是代谢物、营养物质和信号分子的同化者,因此被视为病原体攻击的潜在目标。响应诸如真菌入侵等病理胁迫,植物会重组其蛋白质组,并在受感染器官中重新配置其生理状态。这种重塑由一个尚不清楚的信号转导网络、激素级联反应和代谢物重新分配来协调。本研究的目的是探索异养果实对坏死性真菌攻击易感性的基于器官的蛋白质组学变化。我们对核盘菌侵染的番茄(茄属番茄)果实进行了时间序列蛋白质谱分析。蛋白质组的差异显示揭示了216种病理胁迫响应蛋白(PSRPs),其丰度变化超过2.5倍。质谱分析鉴定出56种可能参与疾病进展的PSRPs;它们调节多种功能,即代谢、信号传导、氧化还原稳态、运输、应激反应、蛋白质折叠、修饰和降解、发育。代谢组学研究表明,有机酸、氨基酸和碳水化合物的差异调节与蛋白质组学分析平行。此外,我们使用网络分析对蛋白质组数据进行了研究,确定了两个以苹果酸脱氢酶、T复合体蛋白1亚基γ和ATP合酶β为中心的重要功能蛋白枢纽。本研究首次报道了在收获后贮藏期间,在库组织(特别是果实)中动力学控制的病理胁迫响应蛋白网络,并构成了理解疾病信号和代谢途径改变的起始和背景的基础。网络表示可能有助于确定用于改善贮藏器官品质的候选蛋白的优先级。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dcec/4960257/1fead05ad964/fpls-07-01034-g0001.jpg

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