Pharmaceutical Research Laboratories, Nippon Kayaku Co., Ltd., Tokyo 115-8588, Japan.
J Phys Chem B. 2009 Nov 19;113(46):15181-8. doi: 10.1021/jp906155z.
An all-atom molecular dynamics simulation of a spherical micelle composed of amphiphilic N-acetylated poly(ethylene glycol)-poly(gamma-benzyl L-glutamate) (PEG-PBLG-Ac) block copolymers was performed in aqueous solution at 298.15 K and 1 atm. Such copolymers have received considerable attention as carriers in drug delivery systems. In this study, we used copolymers consisting of 11 EG units and 9 BLG units as models. Starting from the copolymers arranged spherically, the calculation predicted an equilibrium state consisting of a slightly elliptical micelle structure with a hydrophobic PBLG inner core and a hydrophilic PEG outer shell. The micelle structure was dynamically stable during the simulation, with the PEG blocks showing a compact helical conformation and the PBLG blocks an alpha-helix form. Multiple hydrogen bonds with solvent water molecules stabilized the helical conformation of the PEG blocks, leading to their hydration as shown by longer residence times of water molecules near the PEG ether oxygen atoms compared with that of bulk water. Some water molecules have also been found distributed within the hydrophobic core; they showed continuous exchange with bulk water during the simulation. Those molecules existed mostly as a cluster in spaces between the copolymers, forming hydrogen bonds among themselves as well as with the hydrophobic core through hydrophilic groups such as esters and amides. The water molecules forming hydrogen bonds with the micelle may play an important role in the stabilization of the micelle structure.
采用全原子分子动力学模拟方法,在 298.15 K 和 1 atm 条件下研究了两亲性 N-乙酰化聚乙二醇-聚(γ-苄基 L-谷氨酸酯)(PEG-PBLG-Ac)嵌段共聚物在水溶液中形成的球形胶束。此类共聚物因其在药物传递系统中载体的应用而受到广泛关注。在本研究中,我们以由 11 个 EG 单元和 9 个 BLG 单元组成的共聚物作为模型。模拟从球状排列的共聚物开始,预测了一个平衡状态,该状态下胶束结构略呈椭圆形,具有疏水性 PBLG 内核和亲水性 PEG 外壳。在模拟过程中,胶束结构具有动力学稳定性,PEG 链段呈紧凑的螺旋构象,PBLG 链段呈α-螺旋构象。与溶剂水分子形成的多个氢键稳定了 PEG 链段的螺旋构象,导致水分子在靠近 PEG 醚氧原子处的停留时间比在本体水中的停留时间更长,从而实现了 PEG 链段的水合作用。还发现一些水分子分布在疏水性内核内;在模拟过程中,它们与本体水连续交换。这些水分子主要以聚合物之间空间的团簇形式存在,通过酯基和酰胺基等亲水基团与自身以及与疏水核形成氢键。与胶束形成氢键的水分子可能在稳定胶束结构方面发挥重要作用。