CIC bioGUNE, Basque Research Technology Alliance, BRTA, Bizkaia Technology Park, Building 800, 48160 Derio, Spain.
Centro de Investigaciones Biológicas Margarita Salas, CSIC, Ramiro de Maeztu 9, 28040 Madrid, Spain.
J Org Chem. 2020 Dec 18;85(24):16072-16081. doi: 10.1021/acs.joc.0c01830. Epub 2020 Dec 1.
Molecular recognition of carbohydrates is a key step in essential biological processes. Carbohydrate receptors can distinguish monosaccharides even if they only differ in a single aspect of the orientation of the hydroxyl groups or harbor subtle chemical modifications. Hydroxyl-by-fluorine substitution has proven its merits for chemically mapping the importance of hydroxyl groups in carbohydrate-receptor interactions. F NMR spectroscopy could thus be adapted to allow contact mapping together with screening in compound mixtures. Using a library of fluorinated glucose (Glc), mannose (Man), and galactose (Gal) derived by systematically exchanging every hydroxyl group by a fluorine atom, we developed a strategy combining chemical mapping and F NMR T filtering-based screening. By testing this strategy on the proof-of-principle level with a library of 13 fluorinated monosaccharides to a set of three carbohydrate receptors of diverse origin, i.e. the human macrophage galactose-type lectin, a plant lectin, agglutinin, and the bacterial Gal-/Glc-binding protein from , it became possible to simultaneously define their monosaccharide selectivity and identify the essential hydroxyls for interaction.
碳水化合物的分子识别是基本生物过程中的关键步骤。碳水化合物受体即使在羟基的取向或细微的化学修饰方面仅存在单一差异的情况下,也能区分单糖。羟基被氟取代已被证明在碳水化合物受体相互作用中对羟基的重要性进行化学作图方面具有优势。因此,可以调整 19 F NMR 光谱法以允许在化合物混合物中进行接触作图和筛选。通过系统地用氟原子取代每个羟基,我们使用由氟化葡萄糖(Glc)、甘露糖(Man)和半乳糖(Gal)组成的文库,开发了一种结合化学作图和基于 F NMR T 过滤的筛选的策略。通过用一组三个来源不同的碳水化合物受体(即人巨噬细胞半乳糖型凝集素、植物凝集素、凝集素和来自 的细菌 Gal-/Glc 结合蛋白)的 13 种氟化单糖文库对该策略进行原理验证水平的测试,我们可以同时定义它们的单糖选择性,并确定相互作用的必需羟基。