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系统分析普通小麦赖氨酸丙二酰化组。

Systematic analysis of the lysine malonylome in common wheat.

机构信息

College of Agriculture, Shanxi Agricultural University, Taigu, Shanxi, 030801, China.

Mordern Agriculture Demonstration Farm, Qindao Agricultural University, Qingdao, 266109, China.

出版信息

BMC Genomics. 2018 Mar 20;19(1):209. doi: 10.1186/s12864-018-4535-y.

Abstract

BACKGROUND

Protein lysine malonylation, a newly discovered post-translational modification (PTM), plays an important role in diverse metabolic processes in both eukaryotes and prokaryotes. Common wheat is a major global cereal crop. However, the functions of lysine malonylation are relatively unknown in this crop. Here, a global analysis of lysine malonylation was performed in wheat.

RESULTS

In total, 342 lysine malonylated sites were identified in 233 proteins. Bioinformatics analysis showed that the frequency of arginine (R) in position + 1 was highest, and a modification motif, KR, was identified. The malonylated proteins were located in multiple subcellular compartments, especially in the cytosol (45%) and chloroplast (30%). The identified proteins were found to be involved in diverse pathways, such as carbon metabolism, the Calvin cycle, and the biosynthesis of amino acids, suggesting an important role for lysine malonylation in these processes. Protein interaction network analysis revealed eight highly interconnected clusters of malonylated proteins, and 137 malonylated proteins were mapped to the protein network database. Moreover, five proteins were simultaneously modified by lysine malonylation, acetylation and succinylation, suggesting that these three PTMs may coordinately regulate the function of many proteins in common wheat.

CONCLUSIONS

Our results suggest that lysine malonylation is involved in a variety of biological processes, especially carbon fixation in photosynthetic organisms. These data represent the first report of the lysine malonylome in common wheat and provide an important dataset for further exploring the physiological role of lysine malonylation in wheat and likely all plants.

摘要

背景

蛋白赖氨酸丙二酰化是一种新发现的翻译后修饰(PTM),在真核生物和原核生物的多种代谢过程中发挥着重要作用。普通小麦是一种主要的全球谷类作物。然而,这种作物中赖氨酸丙二酰化的功能相对未知。在这里,我们对小麦中的赖氨酸丙二酰化进行了全面分析。

结果

共鉴定到 233 个蛋白质中的 342 个赖氨酸丙二酰化位点。生物信息学分析显示,位置+1 处精氨酸(R)的频率最高,并且鉴定到一个修饰基序 KR。丙二酰化蛋白位于多个亚细胞区室,特别是细胞质(45%)和叶绿体(30%)。鉴定到的蛋白参与多种途径,如碳代谢、卡尔文循环和氨基酸生物合成,表明赖氨酸丙二酰化在这些过程中具有重要作用。蛋白质相互作用网络分析揭示了八个高度相互关联的丙二酰化蛋白簇,并且 137 个丙二酰化蛋白被映射到蛋白质网络数据库中。此外,有五个蛋白同时被赖氨酸丙二酰化、乙酰化和琥珀酰化修饰,表明这三种 PTM 可能协调调节普通小麦中许多蛋白的功能。

结论

我们的研究结果表明,赖氨酸丙二酰化参与多种生物学过程,特别是光合生物中的碳固定。这些数据代表了普通小麦中赖氨酸丙二酰化组的首次报道,为进一步探索赖氨酸丙二酰化在小麦和可能所有植物中的生理作用提供了重要数据集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d99/5859436/89bdf03a530d/12864_2018_4535_Fig1_HTML.jpg

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