Garg Shyam M, Vakili Mohammad Reza, Lavasanifar Afsaneh
Faculty of Pharmacy and Pharmaceutical Sciences, University of Alberta, Edmonton, Alberta T6G 2E1, Canada.
Faculty of Pharmacy and Pharmaceutical Sciences, University of Alberta, Edmonton, Alberta T6G 2E1, Canada; Department of Chemical and Material Engineering, University of Alberta, Edmonton, Alberta T6G 2V4, Canada.
Colloids Surf B Biointerfaces. 2015 Aug 1;132:161-70. doi: 10.1016/j.colsurfb.2015.05.015. Epub 2015 May 16.
A series of block copolymers based on methoxy poly(ethylene oxide)-block-poly(ɛ-caprolactone) (PEO-b-PCL), PEO-b-PCL bearing side groups of benzyl carboxylate (PEO-b-PBCL), or free carboxyl (PEO-b-PCCL) on the PCL backbone with increasing degrees of polymerization of the PCL backbone were synthesized. Prepared block copolymers assembled to polymeric micelles by co-solvent evaporation. The physical stability of prepared micelles was assessed by measuring their tendency toward aggregation over time using dynamic light scattering (DLS). The resistance of micelles against dissociation in the presence of a micelle destabilizing agent, i.e., sodium dodecyl sulfate (SDS), was also investigated using DLS. The rate of micellar core degradation was determined using (1)H NMR for polymer molecular weight measurement upon incubation of micelles in PBS (pH=7.4) at 37°C followed by dialysis of the remaining polymer at different time intervals. The effect of pendent group chemistry in the micellar core on the adsorption of serum proteins to micellar structure was then evaluated using Bradford Protein assay kit. Finally, the effect of micellar core structure on the induction of bone marrow derived dendritic cell (BMDC) maturation and secretion of IL-12 was studied as a measure of micellar immunogenicity. The results showed micelle structures from polymers with higher degree of polymerization in the hydrophobic block and/or those with more hydrophobic substituents on the core-forming block, to be more stable. This was reflected by a decreased tendency for micellar aggregation, reduced dissociation of micelles in the presence of SDS, and diminished core degradation. All micelles were shown to have insignificant adsorption of serum protein suggesting that the hydrophilic PEO shell provided sufficient protection of the core. However, the protein adsorption increased with increase in the hydrophobicity and molecular weight of the core-forming block. Irrespective of the micellar core structure, all tested micelles were found to be non-immunogenic in BMDCs.
合成了一系列基于甲氧基聚(环氧乙烷)-嵌段-聚(ε-己内酯)(PEO-b-PCL)、在PCL主链上带有苄基羧酸盐侧基(PEO-b-PBCL)或游离羧基(PEO-b-PCCL)且PCL主链聚合度不断增加的嵌段共聚物。通过共溶剂蒸发将制备的嵌段共聚物组装成聚合物胶束。使用动态光散射(DLS)测量制备的胶束随时间的聚集趋势,以此评估其物理稳定性。还使用DLS研究了胶束在胶束去稳定剂十二烷基硫酸钠(SDS)存在下的抗解离性。通过在37°C下将胶束在PBS(pH = 7.4)中孵育后用(1)H NMR测定聚合物分子量,然后在不同时间间隔对剩余聚合物进行透析,来确定胶束核心降解的速率。然后使用Bradford蛋白质测定试剂盒评估胶束核心中侧基化学对血清蛋白吸附到胶束结构上的影响。最后,研究了胶束核心结构对骨髓来源的树突状细胞(BMDC)成熟诱导和IL-12分泌的影响,以此作为胶束免疫原性的一种度量。结果表明,疏水嵌段中聚合度较高的聚合物和/或核心形成嵌段上具有更多疏水取代基的聚合物形成的胶束结构更稳定。这表现为胶束聚集趋势降低、在SDS存在下胶束解离减少以及核心降解减少。所有胶束均显示对血清蛋白的吸附不显著,表明亲水性PEO外壳为核心提供了足够的保护。然而,随着核心形成嵌段的疏水性和分子量增加,蛋白质吸附增加。无论胶束核心结构如何,所有测试的胶束在BMDC中均被发现无免疫原性。