Mukhopadhyay C
Distributed Information Center, Bose Institute, Calcutta, India.
Biopolymers. 1998 Mar;45(3):177-90. doi: 10.1002/(SICI)1097-0282(199803)45:3<177::AID-BIP1>3.0.CO;2-O.
Glycoprotein-glycans have recently been implicated to play a variety of functional roles. The same glycan chain have been found complexed with proteins of diverse functions. In this article two such glycan chains found attached to Fc regions of immunoglobulin G and immunoglobulin M have been studied. An extensive simulated annealing procedure have been adopted to arrive at a low-energy minimum of the two oligosaccharides. Molecular dynamics simulations have been performed to study the flexibility of the glycosidic linkages. It was found that both glycan chains can undergo conformational transitions and adopt folded and extended conformations. The two beta (1-2) linkages of complex-type glycan had been found to prefer different conformational regime and the terminal fucose linked to the GlcNAc residue drastically modifies the GlcNAc beta (1-4) GlcNAc linkage conformation. In the high-mannose type glycan chain alpha (1-3) linkages can induce flexibility in addition to the alpha (1-6) linkages. The results have been compared with recent experimental nmr and fluorescence energy transfer data.
糖蛋白聚糖最近被认为发挥着多种功能作用。已发现相同的聚糖链与具有不同功能的蛋白质复合。在本文中,研究了发现附着于免疫球蛋白G和免疫球蛋白M的Fc区域的两种这样的聚糖链。采用了广泛的模拟退火程序来获得这两种寡糖的低能量最小值。进行了分子动力学模拟以研究糖苷键的灵活性。发现两条聚糖链都可以经历构象转变并采用折叠和伸展构象。已发现复杂型聚糖的两个β(1-2)键更喜欢不同的构象状态,并且与GlcNAc残基相连的末端岩藻糖极大地改变了GlcNAcβ(1-4)GlcNAc键的构象。在高甘露糖型聚糖链中,α(1-3)键除了α(1-6)键之外还可以诱导灵活性。已将结果与最近的实验核磁共振和荧光能量转移数据进行了比较。