Department of Biochemistry, Molecular Biology, Entomology and Plant Pathology, Mississippi State University, Starkville, MS, United States.
Department of Biochemistry, Molecular Biology, Entomology and Plant Pathology, Mississippi State University, Starkville, MS, United States; Provincial Key Laboratory of Agrobiology, Institute of Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing, Jiangsu, China.
Biochim Biophys Acta Proteins Proteom. 2018 Mar;1866(3):451-463. doi: 10.1016/j.bbapap.2017.12.001. Epub 2017 Dec 5.
Protein lysine acetylation is a highly conserved post-translational modification with various biological functions. However, only a limited number of acetylation sites have been reported in plants, especially in cereals, and the function of non-histone protein acetylation is still largely unknown. In this report, we identified 1003 lysine acetylation sites in 692 proteins of developing rice seeds, which greatly extended the number of known acetylated sites in plants. Seven distinguished motifs were detected flanking acetylated lysines. Functional annotation analyses indicated diverse biological processes and pathways engaged in lysine acetylation. Remarkably, we found that several key enzymes in storage starch synthesis pathway and the main storage proteins were heavily acetylated. A comprehensive comparison of the rice acetylome, succinylome, ubiquitome and phosphorylome with available published data was conducted. A large number of proteins carrying multiple kinds of modifications were identified and many of these proteins are known to be key enzymes of vital metabolic pathways. Our study provides extending knowledge of protein acetylation. It will have critical reference value for understanding the mechanisms underlying PTM mediated multiple signal integration in the regulation of metabolism and development in plants.
蛋白质赖氨酸乙酰化是一种高度保守的翻译后修饰,具有多种生物学功能。然而,在植物中,特别是在谷物中,只有有限数量的乙酰化位点被报道,而非组蛋白蛋白乙酰化的功能在很大程度上仍然未知。在本报告中,我们在发育中的水稻种子的 692 种蛋白质中鉴定了 1003 个赖氨酸乙酰化位点,这大大扩展了植物中已知乙酰化位点的数量。在乙酰化赖氨酸的侧翼检测到七个独特的模体。功能注释分析表明赖氨酸乙酰化参与了多种生物过程和途径。值得注意的是,我们发现储存淀粉合成途径中的几个关键酶和主要储存蛋白被高度乙酰化。对现有的水稻乙酰化组、琥珀酰化组、泛素化组和磷酸化组与已发表数据进行了全面比较。鉴定了大量携带多种修饰的蛋白质,其中许多蛋白质是已知的重要代谢途径的关键酶。我们的研究提供了对蛋白质乙酰化的扩展认识。它将对理解 PTM 介导的多种信号整合在植物代谢和发育调控中的机制具有重要的参考价值。