Zhao Shuang, Xu Mengmeng, Cao Chengwen, Yu Qianqian, Zhou Yanhui, Liu Jie
Department of Chemistry, Jinan University, Guangzhou 510632, China.
J Mater Chem B. 2017 Sep 7;5(33):6908-6919. doi: 10.1039/c7tb00613f. Epub 2017 Aug 9.
Co-delivery of gene and drug therapies for cancer treatment remains a major goal of nanocarrier research. In this study, mesoporous silica nanoparticles (MSNs) were used to co-deliver siRNA and doxorubicin (Dox) for redox-controlled release. The present nanocarrier (MSNs-SS-siRNA@Dox) has mesoporous silica cores that can be loaded with Dox, while siRNA connects to the core surface by disulfide linkage and plays a gatekeeper role. Disulfide linkages were also utilized to target intracellular GSH, and their cleavage led to the release of Dox and siRNA. Release of siRNA and Dox was correlated with GSH concentrations, and rapid release at 10 mM GSH reflected reductive cleavage of intermediate disulfide linkages. Subsequent experiments using an in vitro Dox delivery and release assay indicated that MSNs-SS-siRNA@Dox significantly enhanced the accumulation of Dox in cells compared with that after treatment with free Dox. Moreover, MSNs-SS-siRNA@Dox has sufficient efficiency to knock down target protein expression. More importantly, MSNs-SS-siRNA@Dox displayed great potential for tumor targeting and achieved satisfactory therapeutic effects on tumor growth inhibition in vivo. In summary, the present nanoparticles may provide an effective strategy for the design and development of controlled release and co-delivery of siRNA and drugs for cancer therapy.
基因与药物联合递送用于癌症治疗仍是纳米载体研究的一个主要目标。在本研究中,介孔二氧化硅纳米颗粒(MSNs)被用于联合递送siRNA和阿霉素(Dox)以实现氧化还原控制释放。当前的纳米载体(MSNs-SS-siRNA@Dox)具有可装载Dox的介孔二氧化硅核心,而siRNA通过二硫键连接到核心表面并起到守门人的作用。二硫键还被用于靶向细胞内的谷胱甘肽(GSH),其断裂导致Dox和siRNA的释放。siRNA和Dox的释放与GSH浓度相关,在10 mM GSH时的快速释放反映了中间二硫键的还原断裂。随后使用体外Dox递送和释放测定的实验表明,与游离Dox处理后相比,MSNs-SS-siRNA@Dox显著增强了Dox在细胞中的积累。此外,MSNs-SS-siRNA@Dox具有足够的效率来敲低靶蛋白表达。更重要的是,MSNs-SS-siRNA@Dox在肿瘤靶向方面显示出巨大潜力,并在体内对肿瘤生长抑制取得了令人满意的治疗效果。总之,当前的纳米颗粒可能为设计和开发用于癌症治疗的siRNA和药物的控释及联合递送提供一种有效策略。