Reading School of Pharmacy, University of Reading, Whiteknights, P.O. Box 224, RG6 6AD Reading, United Kingdom.
Langmuir. 2012 Jan 10;28(1):299-306. doi: 10.1021/la2038735. Epub 2011 Dec 14.
PEGylated organosilica nanoparticles have been synthesized through self-condensation of (3-mercaptopropyl)trimethoxysilane in dimethyl sulfoxide into thiolated nanoparticles with their subsequent reaction with methoxypoly(ethylene glycol) maleimide. The PEGylated nanoparticles showed excellent colloidal stability over a wide range of pH in contrast to the parent thiolated nanoparticles, which have a tendency to aggregate irreversibly under acidic conditions (pH < 3.0). Due to the presence of a poly(ethylene glycol)-based corona, the PEGylated nanoparticles are capable of forming hydrogen-bonded interpolymer complexes with poly(acrylic acid) in aqueous solutions under acidic conditions, resulting in larger aggregates. The use of hydrogen-bonding interactions allows more efficient attachment of the nanoparticles to surfaces. The alternating deposition of PEGylated nanoparticles and poly(acrylic acid) on silicon wafer surfaces in a layer-by-layer fashion leads to multilayered coatings. The self-assembly of PEGylated nanoparticles with poly(acrylic acid) in aqueous solutions and at solid surfaces was compared to the behavior of linear poly(ethylene glycol). The nanoparticle system creates thicker layers than the poly(ethylene glycol), and a thicker layer is obtained on a poly(acrylic acid) surface than on a silica surface, because of the effects of hydrogen bonding. Some implications of these hydrogen-bonding-driven interactions between PEGylated nanoparticles and poly(acrylic acid) for pharmaceutical formulations are discussed.
聚乙二醇化有机硅纳米粒子是通过(3-巯丙基)三甲氧基硅烷在二甲基亚砜中自缩合生成巯基纳米粒子,然后与甲氧基聚乙二醇马来酰亚胺反应制得。与在酸性条件下(pH < 3.0)容易不可逆聚集的母体巯基纳米粒子相比,聚乙二醇化纳米粒子在很宽的 pH 范围内表现出优异的胶体稳定性。由于存在基于聚乙二醇的冠层,聚乙二醇化纳米粒子能够在酸性条件下与聚丙烯酸在水溶液中形成氢键型互聚物复合物,从而形成更大的聚集体。氢键相互作用的使用允许纳米粒子更有效地附着到表面上。通过层层方式将聚乙二醇化纳米粒子和聚丙烯酸交替沉积在硅晶片表面上,导致多层涂层。在水溶液中和固相中,聚乙二醇化纳米粒子与聚丙烯酸的自组装行为与线性聚乙二醇进行了比较。由于氢键的影响,纳米粒子体系比聚乙二醇形成更厚的层,并且在聚丙烯酸表面上获得的层比在二氧化硅表面上更厚。讨论了聚乙二醇化纳米粒子与聚丙烯酸之间这些氢键驱动相互作用对药物制剂的一些影响。