苯硼酸
自愈水凝胶
抗菌剂
硼酸
多粘菌素B
药物输送
阳离子聚合
化学
组合化学
控制释放
体内
材料科学
高分子化学
纳米技术
生物化学
有机化学
抗生素
催化作用
生物技术
生物
作者
Sybil Obuobi,Zhi Xiang Voo,Mei Wan Joyce Low,Bertrand Czarny,Vanitha Selvarajan,Nor Lizawati Ibrahim,Yi Yan Yang,Pui Lai Rachel Ee
标识
DOI:10.1002/adhm.201701388
摘要
Abstract While physically crosslinked polycarbonate hydrogels are effective drug delivery platforms, their hydrophobic nature and lack of side chain functionality or affinity ligands for controlled release of hydrophilic drugs underscore the importance of their chemical compositions. This study evaluates an array of anionic hydrogel systems of phenylboronic acid functionalized triblock copolymers prepared via reversible physical interactions. Variation of key chemical functionalities while maintaining similar core structural features demonstrates the influence of the substitution position and protection of the boronic acid functionality on gel viscoelasticity and mechanical strength at physiological pH. The optimum gel systems obtained from the meta ‐substituted copolymers (m‐PAP) are stable at physiological pH and nontoxic to mammalian dermal cells. The polymyxin B loaded m‐PAP hydrogels demonstrate controlled in vitro drug release kinetics and in vitro antimicrobial activity against Pseudomonas aeruginosa over 48 h. In vivo antimicrobial efficacy of the drug loaded hydrogels further corroborates the in vitro results, demonstrating sustained antimicrobial activity against P. aeruginosa burn wound infections. The current strategy described in this study demonstrates a straightforward approach in designing physiologically relevant boronic acid hydrogel systems for controlled release of cationic antimicrobials for future clinical applications.
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