Cho Ik Sung, Ooya Tooru
a Department of Chemical Science and Engineering, Graduate School of Engineering , Kobe University , Kobe , Japan.
J Biomater Sci Polym Ed. 2018 Feb;29(2):145-159. doi: 10.1080/09205063.2017.1405573. Epub 2017 Nov 20.
A dynamic hydrogel formulated by mixing a glycol chitosan (GC) and an oxidized dextran (Odex) were studied for protein-controlled release in conjunction with the hydrogel fragmentation. A series of injectable dynamic hydrogels were derived from GC and Odex upon simple mixing without the addition of chemical crosslinking agents. The gelation readily took place at physiological pH and temperature. The influence of the concentration of GC and Odex on the gelation time, mechanical properties, water content, in vitro degradation were investigated. The Odex/GC hydrogels showed good self-healing ability under physiological conditions and kept the dynamic Schiff-base linkage at over 2 wt %. The release kinetics of a model protein (bovine serum albumin) was found to be controlled by changing the needle size upon injection, attributed to modulation of apparent size and shape of the fragmented hydrogels even in the self-healed state. Therefore, the GC-based injectable and dynamic hydrogels are expected to be a promising platform for protein delivery system and various biomedical applications.
研究了通过混合乙二醇壳聚糖(GC)和氧化葡聚糖(Odex)配制的动态水凝胶,用于结合水凝胶破碎进行蛋白质控释。一系列可注射的动态水凝胶由GC和Odex在简单混合时衍生而来,无需添加化学交联剂。凝胶化在生理pH值和温度下容易发生。研究了GC和Odex浓度对凝胶化时间、力学性能、含水量、体外降解的影响。Odex/GC水凝胶在生理条件下表现出良好的自愈能力,并且在超过2 wt%时保持动态席夫碱键。发现模型蛋白(牛血清白蛋白)的释放动力学可通过注射时改变针头尺寸来控制,这归因于即使在自愈状态下破碎水凝胶的表观尺寸和形状的调节。因此,基于GC的可注射动态水凝胶有望成为蛋白质递送系统和各种生物医学应用的有前途的平台。