Xia Yu, Xu Tiantian, Wang Changbing, Li Yinghua, Lin Zhengfang, Zhao Mingqi, Zhu Bing
Central Laboratory, Guangzhou Women and Children's Medical Center, Guangzhou Medical University, Guangzhou, People's Republic of China.
Int J Nanomedicine. 2017 Dec 22;13:143-159. doi: 10.2147/IJN.S148960. eCollection 2018.
Human homeobox protein (Nanog) is highly expressed in most cancer cells and has gradually emerged as an excellent target in cancer therapy, owing to its regulation of cancer cell proliferation, metastasis and apoptosis. In this study, we prepared tumor-targeting functionalized selenium nanoparticles (RGDfC-SeNPs) to load chemotherapeutic doxorubicin (DOX) and Nanog siRNA. Herein, RGDfC peptide was used as a tumor-targeting moiety which could specifically bind to αβ integrins overexpressed on various cancer cells. The sizes of RGDfC-SeNPs@DOX nanoparticles (~12 nm) were confirmed by both dynamic light scattering and transmission electron microscopy. The chemical structure of RGDfC-SeNPs@DOX was characterized via Fourier-transform infrared spectroscopy. The RGDfC-SeNPs@DOX was compacted with siRNA (anti-Nanog) by electrostatic interaction to fabricate the RGDfC-SeNPs@DOX/siRNA complex. The RGDfC-SeNPs@DOX/siRNA complex nanoparticles could efficiently enter into HepG2 cells via clathrin-associated endocytosis, and showed high gene transfection efficiency that resulted in enhanced gene silencing. The in vivo biodistribution experiment indicated that RGDfC-SeNPs@DOX/siRNA nanoparticles were capable of specifically accumulating in the tumor site. Furthermore, treatment with RGDfC-SeNPs@DOX/siRNA resulted in a more significant anticancer activity than the free DOX, RGDfC-SeNPs@DOX or RGDfC-SeNPs/siRNA in vitro and in vivo. In summary, this study shows a novel type of DOX and siRNA co-delivery system, thereby providing an alternative route for cancer treatment.
人类同源盒蛋白(Nanog)在大多数癌细胞中高表达,由于其对癌细胞增殖、转移和凋亡的调控作用,已逐渐成为癌症治疗中的一个优良靶点。在本研究中,我们制备了肿瘤靶向功能化硒纳米颗粒(RGDfC-SeNPs)来负载化疗药物阿霉素(DOX)和Nanog小干扰RNA(siRNA)。在此,RGDfC肽用作肿瘤靶向部分,它可以特异性结合在各种癌细胞上过度表达的αβ整合素。通过动态光散射和透射电子显微镜确定了RGDfC-SeNPs@DOX纳米颗粒的尺寸(约12纳米)。通过傅里叶变换红外光谱对RGDfC-SeNPs@DOX的化学结构进行了表征。RGDfC-SeNPs@DOX通过静电相互作用与siRNA(抗Nanog)结合以制备RGDfC-SeNPs@DOX/siRNA复合物。RGDfC-SeNPs@DOX/siRNA复合纳米颗粒可通过网格蛋白相关的内吞作用有效进入HepG2细胞,并显示出高基因转染效率,从而导致基因沉默增强。体内生物分布实验表明,RGDfC-SeNPs@DOX/siRNA纳米颗粒能够特异性地在肿瘤部位积累。此外,在体外和体内,用RGDfC-SeNPs@DOX/siRNA进行治疗比游离DOX、RGDfC-SeNPs@DOX或RGDfC-SeNPs/siRNA具有更显著的抗癌活性。总之,本研究展示了一种新型的DOX和siRNA共递送系统,从而为癌症治疗提供了一条替代途径。