Zhang Heng, Jiang Yu, Ni XiaoLing, Chen LongXia, Wu Min, Liu Jing, Yang Bo, Shan Xu, Yang LingLin, Fan Juan, Chen Yue, Wu JingBo, Fu ShaoZhi
J Biomed Nanotechnol. 2018 Jan 1;14(1):114-126. doi: 10.1166/jbn.2018.2467.
Norcantharidin (NCTD), the demethylated analogue of cantharidin, has been confirmed to have a good anti-tumor effect against hepatocellular carcinoma (HCC). However, its use is limited by its poor water solubility and low tumortargeting efficacy. In the present study, an active-targeted drug delivery nanoplatform was designed to deliver NCTD using a glycyrrhetinic acid (GA)-decorated copolymer (mPEG-PCL-PEI-GA, MPG). The NCTD-loaded polymeric nanoparticles (MPG/NCTD) formed by self-assembly in water exhibited a mean hydrodynamic diameter of roughly 89 nm. In vitro studies revealed that GA-conjugated nanoparticles (AT NPs) had superior cytotoxicity and higher targeting efficacy on HepG2 cells compared to non-conjugated nanoparticles (Non-AT NPs, NAT NPs). Determination of cell apoptosis and cell cycle phase showed that AT NPs resulted in increased cell apoptosis and a distinct increase in the G2 phase (65.30 ± 3.52%, P < 0.01) and S phase (46.39 ± 1.39%, P < 0.01). Evaluation of in vivo anti-tumor activity showed that the AT NPs significantly inhibited tumor growth and prolonged survival of tumor-bearing mice. The expression of Ki-67 and CD31 revealed that AT NPs inhibited cell proliferation and resulted in a decreased microvessel density (MVD). The results indicated that NCTD-loaded GA-modified nanoparticles may have great potential in HCC-targeted therapy.
去甲斑蝥素(NCTD)是斑蝥素的去甲基类似物,已被证实对肝细胞癌(HCC)具有良好的抗肿瘤作用。然而,其应用受到水溶性差和肿瘤靶向疗效低的限制。在本研究中,设计了一种主动靶向药物递送纳米平台,使用甘草次酸(GA)修饰的共聚物(mPEG-PCL-PEI-GA,MPG)来递送NCTD。在水中自组装形成的负载NCTD的聚合物纳米颗粒(MPG/NCTD)的平均流体动力学直径约为89nm。体外研究表明,与未共轭纳米颗粒(非主动靶向纳米颗粒,NAT NPs)相比,GA共轭纳米颗粒(主动靶向纳米颗粒,AT NPs)对HepG2细胞具有更高的细胞毒性和靶向疗效。细胞凋亡和细胞周期阶段的测定表明,AT NPs导致细胞凋亡增加,G2期(65.30±3.52%,P<0.01)和S期(46.39±1.39%,P<0.01)明显增加。体内抗肿瘤活性评估表明,AT NPs显著抑制肿瘤生长并延长荷瘤小鼠的生存期。Ki-67和CD31的表达表明,AT NPs抑制细胞增殖并导致微血管密度(MVD)降低。结果表明,负载NCTD的GA修饰纳米颗粒在HCC靶向治疗中可能具有巨大潜力。