Palanikumar L, Kim Ho Young, Oh Joon Yong, Thomas Ajesh P, Choi Eun Seong, Jeena M T, Joo Sang Hoon, Ryu Ja-Hyoung
Department of Chemistry, School of Natural Science, and ‡Department of Chemical Engineering, School of Energy and Chemical Engineering, Ulsan National Institutes of Science and Technology (UNIST) , Ulsan 689-798, Korea.
Biomacromolecules. 2015 Sep 14;16(9):2701-14. doi: 10.1021/acs.biomac.5b00589. Epub 2015 Jul 31.
Advances in water-insoluble drug delivery systems are limited by selective delivery, loading capacity, and colloidal and encapsulation stability. We have developed a simple and robust hydrophobic-drug delivery platform with different types of hydrophobic chemotherapeutic agents using a noncovalent gatekeeper's technique with mesoporous silica nanoparticles (MSNs). The unmodified pores offer a large volume of drug loading capacity, and the loaded drug is stably encapsulated until it enters the cancer cells owing to the noncovalently bound polymer gatekeeper. In the presence of polymer gatekeepers, the drug-loaded mesoporous silica nanoparticles showed enhanced colloidal stability. The simplicity of drug encapsulation allows any combination of small chemotherapeutics to be coencapsulated and thus produce synergetic therapeutic effects. The disulfide moiety facilitates decoration of the nanoparticles with cysteine containing ligands through thiol-disulfide chemistry under mild conditions. To show the versatility of drug targeting to cancer cells, we decorated the surface of the shell-cross-linked nanoparticles with two types of peptide ligands, SP94 and RGD. The nanocarriers reported here can release encapsulated drugs inside the reducing microenvironment of cancer cells via degradation of the polymer shell, leading to cell death.
水不溶性药物递送系统的进展受到选择性递送、载药量以及胶体和包封稳定性的限制。我们利用介孔二氧化硅纳米颗粒(MSNs)通过非共价守门人技术,开发了一种简单且稳健的疏水药物递送平台,可用于不同类型的疏水性化疗药物。未修饰的孔提供了大量的载药能力,并且由于非共价结合的聚合物守门人,载入的药物在进入癌细胞之前被稳定包封。在聚合物守门人存在的情况下,载药的介孔二氧化硅纳米颗粒表现出增强的胶体稳定性。药物包封的简单性允许任何小分子化疗药物组合被共包封,从而产生协同治疗效果。二硫键部分便于在温和条件下通过硫醇 - 二硫键化学用含半胱氨酸的配体修饰纳米颗粒。为了展示药物靶向癌细胞的多功能性,我们用两种肽配体SP94和RGD修饰了壳交联纳米颗粒的表面。本文报道的纳米载体可通过聚合物壳的降解在癌细胞的还原微环境中释放包封的药物,导致细胞死亡。