Department of Clinical Biochemistry, Faculty of Medicine, Shahid Sadoughi University of Medical Sciences, Yazd, Iran.
Department of Life Science Engineering, Faculty of New Science and Technology, University of Tehran, Iran.
Int J Biol Macromol. 2020 Dec 15;165(Pt A):1422-1430. doi: 10.1016/j.ijbiomac.2020.09.166. Epub 2020 Sep 25.
Nowadays, nanotechnology contributes diminishing side effects rather than traditional therapeutic methods like chemotherapy. Thus, designing a biocompatible specific targeted nanocarrier with prolonged half-life and enhanced bio-availability using simultaneous cell imaging seems urgent. To meet this demand, 5-fluorouracil-chitosan‑carbon quantum dot-aptamer (5-FU-CS-CQD-Apt) nanoparticle was successfully synthesized for specific targeted delivery of 5-FU anti-cancer drug used in breast cancer treatment and this was done by following facile water-in-oil (W/O) emulsification method. Physicochemical properties were characterized and high drug loading and entrapment efficiency were achieved. The average size and zeta potential of the nanoparticle were 122.7 nm and + 31.2 mV, respectively. According to the in-vitro drug release profile, 5-FU-CS-CQD-Apt released the drug in a controlled manner. MTT assay, flow cytometry, fluorescence microscopy, and gene expression results demonstrated that the blank nanoparticle was biocompatible, and 5-FU-CS-CQD-Apt could kill tumor cells efficiently. Bcl-2/Bax ratio was decreased after 5-FU-CS-CQD-Apt treatment in MCF-7 cells. It was concluded that 5-FU-CS-CQD-Apt could be used as a potential nanocarrier in breast cancer treatment.
如今,纳米技术的副作用比传统的治疗方法(如化疗)更小。因此,设计一种具有生物相容性、特定靶向、长半衰期和增强生物利用度的纳米载体,同时进行细胞成像,似乎迫在眉睫。为了满足这一需求,成功合成了 5-氟尿嘧啶-壳聚糖-碳量子点-适体(5-FU-CS-CQD-Apt)纳米粒子,用于乳腺癌治疗中 5-FU 抗癌药物的特异性靶向递送,这是通过以下简便的水包油(W/O)乳化方法实现的。对物理化学性质进行了表征,并实现了高载药量和包封效率。纳米粒子的平均粒径和 zeta 电位分别为 122.7nm 和+31.2mV。根据体外药物释放曲线,5-FU-CS-CQD-Apt 以控制方式释放药物。MTT 测定、流式细胞术、荧光显微镜和基因表达结果表明,空白纳米粒子具有生物相容性,5-FU-CS-CQD-Apt 能够有效地杀死肿瘤细胞。5-FU-CS-CQD-Apt 处理 MCF-7 细胞后 Bcl-2/Bax 比值降低。综上所述,5-FU-CS-CQD-Apt 可作为乳腺癌治疗的潜在纳米载体。