Lab of Low-Dimensional Materials Chemistry, Key Laboratory for Ultrafine Materials of Ministry of Education, School of Materials Science and Engineering , East China University of Science and Technology , Shanghai 200237 , China.
State Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics , Chinese Academy of Sciences , Shanghai 200050 , China.
Biomacromolecules. 2018 Jul 9;19(7):2923-2930. doi: 10.1021/acs.biomac.8b00488. Epub 2018 May 30.
A pillar[5]arene-based nonionic polyrotaxane (PR) with star-poly(ε-caprolactone) ( S-PCL) as the axle, pillar[5]arene (DEP5) as the wheel and adamantane as the end-capped group is designed and synthesized. The resulting PR is subsequently assembled with β-cyclodextrin end-capped pH-stimulated poly(acrylic acid) (CD-PAA) via a host-guest interaction to form the supramolecular pseudoblock polymer PR-PAA. This supramolecular pseudoblock polymer could self-assemble in aqueous solution to produce PR-PAA-based supramolecular vesicular nanoparticles (PR-SVNPs), which present significantly enhanced drug loading capacity (DLC, 45.6%) of DOX, much higher than those of superamphiphiles (PCL-PAA, 17.1%). Such a high DLC of PR-SVNPs can be most probably attributed to the greatly decreased crystallinity of PCL in PR. Moreover, the loaded drugs could be selectively released in an acidic microenvironment-responsive manner. Compared to free DOX, the DOX-loaded PR-SVNPs (DOX@PR-SVNPs) shows much enhanced cellular uptake and cytotoxicity against the SMMC-7721. More importantly, thanks to the enhanced permeability and retention (EPR) effect, DOX@PR-SVNPs exhibits appealing features such as extremely low toxicity, highly efficient intratumoral accumulation and substantial antitumor efficacy in vivo.
设计并合成了一种以金刚烷为端基封端的基于柱[5]芳烃的非离子型聚轮烷(PR),以星型聚(ε-己内酯)(S-PCL)为轴,柱[5]芳烃(DEP5)为轮。所得 PR 随后通过主客体相互作用与β-环糊精端封端的 pH 刺激型聚(丙烯酸)(CD-PAA)组装,形成超分子假嵌段聚合物 PR-PAA。这种超分子假嵌段聚合物可以在水溶液中自组装,产生基于 PR-PAA 的超分子囊泡纳米颗粒(PR-SVNPs),其对 DOX 的载药量(DLC,45.6%)显著提高,远高于超两亲物(PCL-PAA,17.1%)。PR-SVNPs 如此高的 DLC 很可能归因于 PR 中 PCL 的结晶度大大降低。此外,负载的药物可以在酸性微环境响应的方式下选择性释放。与游离 DOX 相比,负载 DOX 的 PR-SVNPs(DOX@PR-SVNPs)显示出对 SMMC-7721 更高的细胞摄取和细胞毒性。更重要的是,由于增强的通透性和保留(EPR)效应,DOX@PR-SVNPs 具有极低的毒性、高效的肿瘤内积累和体内显著的抗肿瘤疗效等吸引人的特性。