Wang Jinling, Ma Wenzhuan, Guo Qiang, Li Ying, Hu Zhongdong, Zhu Zhixiang, Wang Xiaohui, Zhao Yunfang, Chai Xingyun, Tu Pengfei
Modern Research Center for Traditional Chinese Medicine.
Modern Research Center for Traditional Chinese Medicine; School of Chinese Materia Medica, Beijing University of Chinese Medicine, Beijing, People's Republic of China.
Int J Nanomedicine. 2016 Nov 7;11:5851-5870. doi: 10.2147/IJN.S113882. eCollection 2016.
Tumor-targeted delivery system has been developed as an attractive strategy for effective tumor therapy. In this study, in order to enhance the antitumor effects of doxorubicin (DOX), amphiphilic hyaluronic acid (HA)-conjugated vitamin E succinate (VES) copolymers (HA-VES) with different degrees of substitution (DS) were prepared with synergistic antitumor effects and active targeting activities, and utilized as nanocarriers for the efficient delivery of DOX. DOX-loaded HA-VES polymeric micelles (HA-VES/DOX) self-assembled from dual-functional HA-VES copolymer and exhibited excellent loading efficiency and superior colloidal stability. In vitro, HA-VES/DOX displayed enhanced cytotoxicity with synergistic anticancer effects of HA-VES copolymer, high apoptosis-inducing activities of tumor cells, and reversal effects of DOX on multidrug resistance, in comparison with DOX. Also, in vitro cellular uptake and subcellular localization studies revealed that HA-VES/DOX could more efficiently internalize into cancer cells and selectively release DOX within lysosomes, thereby enhancing the distribution of DOX in nuclei and facilitating its interactions with DNA. Specifically, HA-VES/DOX decreased the activity of CD44 mRNA and improved the targeting efficiency on MCF-7 cells, based on the active recognition between HA and CD44 receptor. More importantly, HA-VES/DOX displayed better tumor accumulation and targeting, and enhanced antitumor efficacy with reduced systemic toxicity in 4T1 tumor-bearing mice. In summary, the developed HA-VES-based drug delivery system, which increased drug targeting on the tumor site and exhibited preferable anticancer activity, could hold great potential as an effective and promising strategy for efficient tumor therapy.
肿瘤靶向递送系统已被开发为一种有效的肿瘤治疗的有吸引力的策略。在本研究中,为了增强阿霉素(DOX)的抗肿瘤作用,制备了具有不同取代度(DS)的两亲性透明质酸(HA)共轭维生素E琥珀酸酯(VES)共聚物(HA-VES),其具有协同抗肿瘤作用和主动靶向活性,并用作高效递送DOX的纳米载体。由双功能HA-VES共聚物自组装而成的载DOX的HA-VES聚合物胶束(HA-VES/DOX)表现出优异的负载效率和卓越的胶体稳定性。在体外,与DOX相比,HA-VES/DOX表现出增强的细胞毒性、HA-VES共聚物的协同抗癌作用、肿瘤细胞的高凋亡诱导活性以及DOX对多药耐药性的逆转作用。此外,体外细胞摄取和亚细胞定位研究表明,HA-VES/DOX可以更有效地内化到癌细胞中,并在溶酶体内选择性释放DOX,从而增强DOX在细胞核中的分布并促进其与DNA的相互作用。具体而言,基于HA与CD44受体之间的主动识别,HA-VES/DOX降低了CD44 mRNA的活性并提高了对MCF-7细胞的靶向效率。更重要的是,HA-VES/DOX在4T1荷瘤小鼠中表现出更好的肿瘤蓄积和靶向性,并增强了抗肿瘤功效,同时降低了全身毒性。总之,所开发的基于HA-VES的药物递送系统增加了药物在肿瘤部位的靶向性,并表现出较好的抗癌活性,作为一种有效且有前景的高效肿瘤治疗策略具有巨大潜力。