Xie Yixuan, Chen Siyu, Alvarez Michael Russelle, Sheng Ying, Li Qiongyu, Maverakis Emanual, Lebrilla Carlito B
Department of Chemistry, University of California, Davis Davis California USA
Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine St. Louis Missouri 63110 USA.
Chem Sci. 2024 Mar 11;15(14):5256-5267. doi: 10.1039/d3sc06432h. eCollection 2024 Apr 3.
Cell membrane glycoproteins are generally highly fucosylated and sialylated, and post-translational modifications play important roles in the proteins' functions of signaling, binding and cellular processing. For these reasons, methods for measuring sialic acid-mediated protein-protein interactions have been developed. However, determining the role of fucose in these interactions has been limited by technological barriers that have thus far hindered the ability to characterize and observe fucose-mediated protein-protein interactions. Herein, we describe a method to metabolically label mammalian cells with modified fucose, which incorporates a bioorthogonal group into cell membrane glycoproteins thereby enabling the characterization of cell-surface fucose interactome. Copper-catalyzed click chemistry was used to conjugate a proximity labeling probe, azido-FeBABE. Following the addition of hydrogen peroxide (HO), the fucose-azido-FeBABE catalyzed the formation of hydroxyl radicals, which in turn oxidized the amino acids in the proximity of the labeled fucose residue. The oxidized peptides were identified using liquid chromatography coupled with tandem mass spectrometry (LC-MS/MS). Variations in degree of protein oxidation were obtained with different HO reaction times yielding the acquisition of spatial information of the fucose-interacting proteins. In addition, specific glycoprotein-protein interactions were constructed for Galectin-3 (LEG3) and Galectin-3-binding protein (LG3BP) illustrating the further utility of the method. This method identifies new fucose binding partners thereby enhancing our understanding of the cell glycocalyx.
细胞膜糖蛋白通常高度岩藻糖基化和唾液酸化,翻译后修饰在蛋白质的信号传导、结合和细胞加工功能中发挥重要作用。基于这些原因,已开发出测量唾液酸介导的蛋白质-蛋白质相互作用的方法。然而,确定岩藻糖在这些相互作用中的作用受到技术障碍的限制,这些障碍迄今为止阻碍了表征和观察岩藻糖介导的蛋白质-蛋白质相互作用的能力。在此,我们描述了一种用修饰的岩藻糖对哺乳动物细胞进行代谢标记的方法,该方法将一个生物正交基团引入细胞膜糖蛋白,从而能够表征细胞表面岩藻糖相互作用组。使用铜催化的点击化学将邻近标记探针叠氮基-FeBABE进行偶联。加入过氧化氢(HO)后,岩藻糖-叠氮基-FeBABE催化形成羟基自由基,进而氧化标记岩藻糖残基附近的氨基酸。使用液相色谱与串联质谱(LC-MS/MS)联用鉴定氧化的肽段。通过不同的HO反应时间获得蛋白质氧化程度的变化,从而获取岩藻糖相互作用蛋白的空间信息。此外,构建了针对半乳糖凝集素-3(LEG3)和半乳糖凝集素-3结合蛋白(LG3BP)的特异性糖蛋白-蛋白质相互作用,说明了该方法的进一步实用性。该方法鉴定了新的岩藻糖结合伴侣,从而加深了我们对细胞糖萼的理解。