Key Laboratory of Coastal Biology and Bioresource Utilization, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
Mar Drugs. 2023 Dec 27;22(1):18. doi: 10.3390/md22010018.
Three redox-sensitive nanocarriers were rationally designed based on amphiphilic low molecular weight chitosan-cystamine-octylamine/dodecylamin/cetylamine (LC-Cys-OA, LC-Cys-DA, LC-Cys-CA) conjugates containing disulfide linkage for maximizing therapeutic effect by regulating hydrophobic interaction. The resultant spherical micelles had the characteristics of low CMC, suitable size, excellent biosafety and desired stability. The drug-loaded micelles were fabricated by embedding doxorubicin (Dox) into the hydrophobic cores. The effect of hydrophobic chain lengths of amphiphilic conjugates on encapsulation capacity, redox sensitivity, trigger-release behavior, cellular uptake efficacy, antitumor effect and antimigratory activity of Dox-loaded micelles was systematically investigated. Studies found that Dox-loaded LC-Cys-CA micelle had superior loading capacity and enhanced redox sensitivity compared with the other two micelles. Release assay indicated that the three Dox-loaded micelles maintained sufficiently stability in normal blood circulation but rapidly disintegrated in tumor cells. More importantly, the LC-Cys-CA micelle with a longer hydrophobic chain length exhibited a higher accumulative Dox release percentage than the other two micelles. Additionally, an increase in hydrophobic chain lengths of amphiphilic conjugates improved cellular uptake efficiency, antitumor effect and antimigration activity of Dox-loaded micelles, which could be explained by enhanced loading ability and redox sensitivity. Our research was expected to provide a viable platform for achieving a desired therapeutic efficacy via the alteration of hydrophobic interaction.
基于含有二硫键的两亲性低分子量壳聚糖-半胱氨酸-辛胺/十二胺/十六胺(LC-Cys-OA、LC-Cys-DA、LC-Cys-CA)缀合物,设计了三种氧化还原敏感的纳米载体,通过调节疏水相互作用来最大限度地提高治疗效果。所得的球形胶束具有低 CMC、合适的粒径、优异的生物安全性和所需的稳定性等特点。通过将阿霉素(Dox)嵌入疏水性核中制备载药胶束。系统研究了两亲性缀合物的疏水链长度对载药胶束的包封能力、氧化还原敏感性、触发释放行为、细胞摄取效率、抗肿瘤作用和载药胶束的迁移抑制活性的影响。研究发现,与另外两种胶束相比,载 Dox 的 LC-Cys-CA 胶束具有更高的载药能力和增强的氧化还原敏感性。释放实验表明,三种载 Dox 胶束在正常血液循环中保持足够的稳定性,但在肿瘤细胞中迅速崩解。更重要的是,具有较长疏水链长的 LC-Cys-CA 胶束比另外两种胶束表现出更高的累积 Dox 释放百分比。此外,两亲性缀合物的疏水链长度增加提高了载 Dox 胶束的细胞摄取效率、抗肿瘤作用和迁移抑制活性,这可以通过增强载药能力和氧化还原敏感性来解释。我们的研究有望通过改变疏水相互作用提供一个可行的平台,以实现理想的治疗效果。