基于功能化介孔硅材料的二茂铁羧酸的 pH 响应型载药基质的细胞毒性实时分析。
Real-time cell analysis of the cytotoxicity of a pH-responsive drug-delivery matrix based on mesoporous silica materials functionalized with ferrocenecarboxylic acid.
机构信息
School of Public Health, Nanjing Medical University, Nanjing, 211166, China.
School of Pharmacy, Nanjing Medical University, Nanjing, 211166, China.
出版信息
Anal Chim Acta. 2019 Mar 21;1051:138-146. doi: 10.1016/j.aca.2018.11.017. Epub 2018 Nov 10.
During the past decade, accumulating studies have been conducted on the mesoporous silica materials as the matrix of controlled drug-delivery, in which the complicated post-synthesis procedures are often involved with the molecular design to achieve the efficacy. In this study, a simplified drug delivery system of anti-cancer drug of doxorubicin (DOX) based on mesoporous SBA-15 functionalized with ferrocenecarboxylic acid (FCA) was constructed. Through a combination of physicochemical characterizations, the presence of FCA that was anchored inside the pore wall of amine groups grafted SBA-15 exhibits electron-accessible behavior without affecting the intactness of composite material. The pH-responsive release of drug molecules was achieved through the conjugation of DOX with FCA in the interior channels of mesoporous composites, which also favors the more coverage of DOX. Furthermore, the real-time cell analysis was performed to monitor the release of DOX from the mesopores and resulting cytotoxicity of cancer cell of A549 was evaluated, which results in a calculated IC of 43.8 μg/ml (24 h). The constructed mesoporous FCA-SBA-15 composite material provides an integrated nanoplatform to exert controlled-delivery of anti-cancer drug molecules.
在过去的十年中,人们对介孔硅材料作为控制药物释放的基质进行了大量研究,其中涉及到复杂的合成后处理程序和分子设计以实现疗效。在本研究中,构建了基于介孔 SBA-15 的载阿霉素(DOX)的简化药物输送系统,该 SBA-15 经二茂铁羧酸(FCA)功能化。通过物理化学特性的组合,证明了接枝在胺基孔壁内的 FCA 的存在具有电子可及性,而不会影响复合材料的完整性。通过 DOX 与介孔复合材料内部通道中的 FCA 的结合,实现了药物分子的 pH 响应性释放,这也有利于 DOX 的更多覆盖。此外,进行了实时细胞分析以监测 DOX 从介孔中的释放以及评估肺癌细胞 A549 的细胞毒性,结果计算出的 IC 为 43.8μg/ml(24h)。构建的介孔 FCA-SBA-15 复合材料提供了一个集成的纳米平台,可发挥抗癌药物分子的控制释放作用。