a Departamento de Química Orgánica, Facultad de Ciencias Químicas , Universidad de Concepción , Concepción , Chile.
b Departamento de Fisiología, Facultad de Ciencias Biológicas , Universidad de Concepción , Concepción , Chile.
Pharm Dev Technol. 2018 Sep;23(7):689-696. doi: 10.1080/10837450.2017.1315134. Epub 2017 Apr 19.
PEGylated PAMAM-G4 dendrimers with substitution percentages of 50% and intermediate size PEG chains (0.55 and 2.0 kDa) were synthesized and evaluated as solubility enhancers and potential supramolecular carriers for the poorly soluble drug Silybin (SIL). Aqueous solubility profiles revealed that the PEGylated system with 2.0 kDa chains induced a five-fold solubility increase for SIL and the largest drug-loading capacity within the systems under study with an average complex stoichiometry of 71:1 according to the Higuchi-Connors formulation for multiple binding sites. The supramolecular interaction between SIL and PEGylated PAMAM-G4 dendrimers was confirmed by 2D-NOESY experiments, which evidenced the simultaneous complexation of the drug in both PAMAM-G4 branches and outermost PEG chains. In vitro release studies showed that 2.0 kDa PEG chains induced a more extended release time compared with 0.5 kDa PEG chains. This result was attributed to the enhancement of PEG assistance to SIL complexation in systems with longer PEG chains, which are able to self-penetrate into dendrimer cavities and cooperate in the stabilization of SIL complexes, thus delaying the release of SIL from the supramolecular host. These results are valuable for the future design and development of novel PAMAM-based systems for SIL complexation and delivery.
聚乙二醇化 PAMAM-G4 树枝状聚合物取代度为 50%,且具有中等大小的聚乙二醇链(0.55 和 2.0 kDa),被合成并评估为溶解度增强剂和潜在的超分子载体,用于增溶疏水性药物水飞蓟宾(SIL)。水溶解度曲线表明,带有 2.0 kDa 链的聚乙二醇化系统使 SIL 的溶解度增加了五倍,并且在所研究的系统中具有最大的载药量,根据 Higuchi-Connors 多结合位点公式,平均复合物化学计量比为 71:1。通过二维 NOESY 实验证实了 SIL 与聚乙二醇化 PAMAM-G4 树枝状聚合物之间的超分子相互作用,实验证明药物同时结合在 PAMAM-G4 支链和最外层的 PEG 链上。体外释放研究表明,与 0.5 kDa 的 PEG 链相比,2.0 kDa 的 PEG 链诱导了更延长的释放时间。这一结果归因于长 PEG 链的 PEG 辅助 SIL 络合的增强,长 PEG 链能够自渗透到树枝状聚合物空腔中,并协同稳定 SIL 复合物,从而延迟 SIL 从超分子主体中的释放。这些结果对于未来基于 PAMAM 的 SIL 络合和递送的新型系统的设计和开发具有重要价值。