Xu Shou-Ling, Chalkley Robert J, Maynard Jason C, Wang Wenfei, Ni Weimin, Jiang Xiaoyue, Shin Kihye, Cheng Ling, Savage Dasha, Hühmer Andreas F R, Burlingame Alma L, Wang Zhi-Yong
Department of Plant Biology, Carnegie Institution for Science, Stanford, CA 94305.
Department of Pharmaceutical Chemistry, University of California, San Francisco, CA 94158.
Proc Natl Acad Sci U S A. 2017 Feb 21;114(8):E1536-E1543. doi: 10.1073/pnas.1610452114. Epub 2017 Feb 2.
Genetic studies have shown essential functions of O-linked -acetylglucosamine (O-GlcNAc) modification in plants. However, the proteins and sites subject to this posttranslational modification are largely unknown. Here, we report a large-scale proteomic identification of O-GlcNAc-modified proteins and sites in the model plant Using lectin weak affinity chromatography to enrich modified peptides, followed by mass spectrometry, we identified 971 O-GlcNAc-modified peptides belonging to 262 proteins. The modified proteins are involved in cellular regulatory processes, including transcription, translation, epigenetic gene regulation, and signal transduction. Many proteins have functions in developmental and physiological processes specific to plants, such as hormone responses and flower development. Mass spectrometric analysis of phosphopeptides from the same samples showed that a large number of peptides could be modified by either O-GlcNAcylation or phosphorylation, but cooccurrence of the two modifications in the same peptide molecule was rare. Our study generates a snapshot of the O-GlcNAc modification landscape in plants, indicating functions in many cellular regulation pathways and providing a powerful resource for further dissecting these functions at the molecular level.
遗传学研究表明,O-连接的N-乙酰葡糖胺(O-GlcNAc)修饰在植物中具有重要功能。然而,受这种翻译后修饰的蛋白质和位点在很大程度上尚不清楚。在此,我们报告了模式植物中O-GlcNAc修饰的蛋白质和位点的大规模蛋白质组学鉴定。使用凝集素弱亲和色谱法富集修饰的肽段,随后进行质谱分析,我们鉴定出属于262种蛋白质的971个O-GlcNAc修饰的肽段。这些修饰的蛋白质参与细胞调节过程,包括转录、翻译、表观遗传基因调控和信号转导。许多蛋白质在植物特有的发育和生理过程中发挥作用,如激素反应和花发育。对同一样本中的磷酸肽进行质谱分析表明,大量肽段可能被O-GlcNAc糖基化或磷酸化修饰,但同一肽分子中这两种修饰同时存在的情况很少见。我们的研究呈现了植物中O-GlcNAc修饰图谱的概况,表明其在许多细胞调节途径中的功能,并为在分子水平上进一步剖析这些功能提供了有力资源。