喜树碱通过pH响应性表面连接子从转铁蛋白门控介孔二氧化硅纳米颗粒中释放的动力学及机制
Kinetics and Mechanism of Camptothecin Release from Transferrin-Gated Mesoporous Silica Nanoparticles through a pH-Responsive Surface Linker.
作者信息
Jackson Nicolás, Ortiz Andrea C, Jerez Alejandro, Morales Javier, Arriagada Francisco
机构信息
Institute of Pharmacy, Faculty of Sciences, Universidad Austral de Chile, Valdivia 5090000, Chile.
Facultad de Medicina y Ciencia, Universidad San Sebastián, Lago Panguipulli 1390, Puerto Montt 5501842, Chile.
出版信息
Pharmaceutics. 2023 May 25;15(6):1590. doi: 10.3390/pharmaceutics15061590.
Stimuli-responsive nanomaterials have emerged as a promising strategy for inclusion in anticancer therapy. In particular, pH-responsive silica nanocarriers have been studied to provide controlled drug delivery in acidic tumor microenvironments. However, the intracellular microenvironment that the nanosystem must face has an impact on the anticancer effect; therefore, the design of the nanocarrier and the mechanisms that govern drug release play a crucial role in optimizing efficacy. Here, we synthesized and characterized mesoporous silica nanoparticles with transferrin conjugated on their surface via a pH-sensitive imine bond (MSN-Tf) to assess camptothecin (CPT) loading and release. The results showed that CPT-loaded MSN-Tf (MSN-Tf@CPT) had a size of ca. 90 nm, a zeta potential of -18.9 mV, and a loaded content of 13.4%. The release kinetic data best fit a first-order model, and the predominant mechanism was Fickian diffusion. Additionally, a three-parameter model demonstrated the drug-matrix interaction and impact of transferrin in controlling the release of CPT from the nanocarrier. Taken together, these results provide new insights into the behavior of a hydrophobic drug released from a pH-sensitive nanosystem.
刺激响应性纳米材料已成为一种有前景的抗癌治疗策略。特别是,pH响应性二氧化硅纳米载体已被研究用于在酸性肿瘤微环境中实现可控药物递送。然而,纳米系统必须面对的细胞内微环境会对抗癌效果产生影响;因此,纳米载体的设计以及控制药物释放的机制在优化疗效方面起着至关重要的作用。在此,我们合成并表征了通过pH敏感亚胺键在其表面偶联转铁蛋白的介孔二氧化硅纳米颗粒(MSN-Tf),以评估喜树碱(CPT)的负载和释放情况。结果表明,负载CPT的MSN-Tf(MSN-Tf@CPT)尺寸约为90 nm,zeta电位为-18.9 mV,负载量为13.4%。释放动力学数据最符合一级模型,主要机制为菲克扩散。此外,一个三参数模型证明了药物-基质相互作用以及转铁蛋白在控制CPT从纳米载体释放中的作用。综上所述,这些结果为从pH敏感纳米系统释放的疏水性药物的行为提供了新的见解。