State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, P.R. China.
Chemistry. 2019 Aug 6;25(44):10505-10510. doi: 10.1002/chem.201902113. Epub 2019 Jul 8.
Precision cell-selective surface glycan remodeling is of vital importance for modulation of cell surface dynamics, tissue-specific imaging, and immunotherapy, but remains an unsolved challenge. Herein, we report a switchable enzymatic accessibility (SEA) strategy for highly specific editing of carbohydrate moieties of interest on the target cell surface. We demonstrate the blocking of enzyme in the inaccessible state with a metal-organic framework (MOF) cage and instantaneous switching to the accessible state through disassembly of MOF. We further show that this level of SEA regulation enables initial guided enzyme delivery to the target cell surface for subsequent cell-specific glycan remodeling, thus providing a temporally and spatially controlled tool for tuning the glycosylation architectures. Terminal galactose/N-acetylgalactosamine (Gal/GalNAc) remodeling and terminal sialic acid (Sia) desialylation have been precisely achieved on target cells even with other cell lines in close spatial proximity. The SEA protocol features a modular and generically adaptable design, a very short protocol duration (ca. 30 min or shorter), and a very high spatial resolving power (ability to differentiate immediately neighboring cell lines).
精确的细胞选择性表面糖基化修饰对于调节细胞表面动力学、组织特异性成像和免疫治疗至关重要,但仍然是一个未解决的挑战。在此,我们报告了一种用于高度特异性编辑靶细胞表面上感兴趣的碳水化合物部分的可切换酶可及性(SEA)策略。我们通过金属有机骨架(MOF)笼将酶在不可接近状态下进行阻断,并通过 MOF 的分解瞬时切换到可接近状态。我们进一步表明,这种 SEA 调节水平能够实现初始引导酶递送到靶细胞表面,随后进行细胞特异性糖基化修饰,从而为调节糖基化结构提供了一种时空可控的工具。即使在近距离空间接近的其他细胞系中,也能精确地对靶细胞进行末端半乳糖/ N-乙酰半乳糖胺(Gal/GalNAc)修饰和末端唾液酸(Sia)去唾液酸化。SEA 方案具有模块化和通用适应性设计、非常短的方案持续时间(约 30 分钟或更短)和非常高的空间分辨率(能够立即区分相邻的细胞系)。