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Role of Protecting Groups in Synthesis and Self-Assembly of Glycopolymers

机译:保护基团在糖聚合物合成和自组装中的作用

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摘要

Protection and deprotection are basic procedures in oligosaccharide synthesis. By taking advantage of the processes of attaching and removing the protecting groups, preparation of oligosaccharides with complex structures can be achieved with relatively high yields. However, the role of protecting groups in solution properties and self-assembly of synthetic glycopolymers has been overlooked in the literature. In this paper, we focused on such effects for well-designed copolymers in which different numbers of benzyl (Bn) groups are installed regioselectively in saccharide rings. Thus, three block copolymers P1, P2, and P3 composed of a common block of PNIPAm and a glycopolymer block with trisaccharide triMan side chains differing in the respective number of Bn (0, 2, and 6) were prepared. The solutions of these block copolymers in water were investigated by dynamic and static light scatting and VT-1H NMR. We found that all of the three copolymers P1, P2, and P3 formed association at room temperature. Particularly, P1 associated loosely due to carbohydrate-carbohydrate interaction (CCI) while P3 formed tight aggregates due to hydrophobic interactions between Bn, and P2 behaved between those of PI and P3. Moreover, upon heating, phase transition of PNIPAm block took place leading to micelle formation. Hydrodynamic radius of P1 and P2 increased significantly as expected, while P3 did not follow this trend, because during heating, collapse and accumulation of the PNIPAm chains would occur within the tight aggregates mainly, so it leads to a little change of the size.
机译:保护和脱保护是寡糖合成的基本程序。通过利用附着和去除保护基团的过程,可以以相对较高的收率实现结构复杂的低聚糖的制备。然而,保护基团在合成糖聚合物的溶液性质和自组装中的作用在文献中被忽视了。在本文中,我们重点研究了设计良好的共聚物的这种影响,其中不同数量的苄基(Bn)基团在糖环中区域选择性地安装。因此,制备了三种嵌段共聚物P1、P2和P3,分别由PNIPAm的公共嵌段和具有三糖triMan侧链的糖聚合物嵌段组成,其Bn的数目分别不同(0、2和6)。通过动态和静态光散射和VT-1H NMR研究了这些嵌段共聚物在水中的溶液。我们发现所有三种共聚物 P1、P2 和 P3 在室温下都形成了缔合。其中,P1由于碳水化合物-碳水化合物相互作用(CCI)而松散地结合,而P3由于Bn之间的疏水相互作用而形成紧密聚集体,而P2则在PI和P3之间表现为紧密聚集体。此外,加热后,PNIPAm嵌段发生相变,导致胶束形成。P1和P2的流体动力学半径如预期的那样显著增加,而P3则没有遵循这一趋势,因为在加热过程中,PNIPAm链的坍塌和积累主要发生在致密聚集体内,因此导致尺寸略有变化。

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