Department of Agro-Environmental Sciences, Graduate School of Bioresource and Bioenvironmental Sciences, and Biotron Application Center, Kyushu University, 6-10-1 Hakozaki, Higashi-ku, Fukuoka 812-8581, Japan.
Carbohydr Polym. 2013 Jan 30;92(1):374-9. doi: 10.1016/j.carbpol.2012.09.088. Epub 2012 Oct 5.
Bioactive O-β-d-galactopyranosyl-(1→4)-O-β-d-galactopyranosyl-(1→4)-d-glucopyranose (4'-galactosyl lactose) was site-selectively modified at a reducing end with thiosemicarbazide (TSC). As-synthesized 4'-galactosyl lactose-TSC was immobilized on a gold substrate with cellobiose-TSC as a spacer through spontaneous self-assembly chemisorption via SAu bonding. Quartz crystal microbalance analysis suggested the successful formation of self-assembled monolayers (SAMs) of 4'-galactosyl lactose-TSC and/or cellobiose-TSC. Galactose-binding lectin exhibited the highest affinity for hybrid SAMs with an equimolar ratio of the two oligosaccharide-TSCs, while glucose-binding lectin showed decreasing adsorption with a decrease in cellobiose-TSC ratios. Human hepatocellular carcinoma cells, which recognize galactose residues, efficiently adhered to the hybrid SAMs. Higher enzymatic deethoxylation of ethoxyresorufin via cytochrome P450 appeared on hybrid SAMs. These results suggested that clustering of the bioactive sugars was involved in the cellular responses, possibly via biological carbohydrate-protein interactions. This approach to designing carbohydrate-based scaffolds should provide a basis for the functional development of glyco-decorated biointerfaces for cell culture applications.
生物活性 O-β-D-吡喃半乳糖基-(1→4)-O-β-D-吡喃半乳糖基-(1→4)-D-吡喃葡萄糖(4'-半乳糖乳糖)在还原端被硫代卡巴肼(TSC)选择性修饰。合成的 4'-半乳糖乳糖-TSC 通过自组装化学吸附通过 SAu 键与纤维二糖-TSC 作为间隔物固定在金基底上。石英晶体微天平分析表明成功形成了 4'-半乳糖乳糖-TSC 和/或纤维二糖-TSC 的自组装单层(SAMs)。半乳糖结合凝集素对两种低聚糖-TSC 等摩尔比的杂交 SAM 表现出最高的亲和力,而葡萄糖结合凝集素的吸附则随着纤维二糖-TSC 比例的降低而降低。能够识别半乳糖残基的人肝癌细胞有效地黏附在杂交 SAMs 上。通过细胞色素 P450,乙氧基荧光素的脱乙氧基化反应更高。这些结果表明,生物活性糖的聚集参与了细胞反应,可能通过生物碳水化合物-蛋白质相互作用。这种设计基于碳水化合物的支架的方法应为糖基化生物界面的功能开发提供基础,用于细胞培养应用。