Hu Yue, Wang Yong, Jiang Jianshuai, Han Baosan, Zhang Shengmin, Li Keshi, Ge ShuXiong, Liu Yahui
Ningbo First Hospital, Ningbo Hospital of Zhejiang University, The First Affiliated Hospital of Ningbo Medical College of Ningbo University, Ningbo, Zhejiang 315010, China.
Xin Hua Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai 200000, China.
Biomed Res Int. 2016;2016:6381464. doi: 10.1155/2016/6381464. Epub 2016 Aug 29.
A folate-polyethylene glycol-chitosan derivative was synthesized and its structure was characterized. An optimal perfluorooctyl bromide nanocore template was obtained via utilizing the ultrasonic emulsification method combining with orthogonal design. The targeted nanoparticles containing targeted shell of folate-polyethylene glycol-chitosan derivative and perfluorooctyl bromide nanocore template of ultrasound imaging were prepared successfully by exploiting layer-by-layer self-assembly as contrast agent for ultrasound. Properties of the novel perfluorooctyl bromide nanoparticle were extensively studied by Dynamic Light Scattering and Transmission Electron Microscopy. The targeted nanoparticle diameter, polydispersity, and zeta potential are around 229.5 nm, 0.205, and 44.7 ± 0.6 mV, respectively. The study revealed that spherical core-shell morphology was preserved. Excellent stability of targeted nanoparticle is evidenced by two weeks of room temperature stability tests. The results of the cell viability assay and the hemolysis test confirmed that the targeted nanoparticle has an excellent biocompatibility for using in cell studies and ultrasound imaging in vivo. Most importantly, in vitro cell experiments demonstrated that an increased amount of targeted nanoparticles was accumulated in hepatocellular carcinoma cell line Bel7402 relative to hepatoma cell line L02. And targeted nanoparticles had also shown better ultrasound imaging abilities in vitro. The data suggest that the novel targeted nanoparticle may be applicable to ultrasonic molecular imaging of folate-receptor overexpressed tumor.
合成了一种叶酸 - 聚乙二醇 - 壳聚糖衍生物并对其结构进行了表征。通过结合正交设计的超声乳化法获得了最佳的全氟辛基溴纳米核模板。利用层层自组装成功制备了含有叶酸 - 聚乙二醇 - 壳聚糖衍生物靶向壳和全氟辛基溴纳米核超声成像模板的靶向纳米粒子,作为超声造影剂。通过动态光散射和透射电子显微镜对新型全氟辛基溴纳米粒子的性质进行了广泛研究。靶向纳米粒子的直径、多分散性和zeta电位分别约为229.5nm、0.205和44.7±0.6mV。研究表明保留了球形核壳形态。两周的室温稳定性测试证明了靶向纳米粒子具有出色的稳定性。细胞活力测定和溶血试验结果证实,靶向纳米粒子在细胞研究和体内超声成像中具有出色的生物相容性。最重要的是,体外细胞实验表明,相对于肝癌细胞系L02,靶向纳米粒子在肝癌细胞系Bel7402中的积累量增加。并且靶向纳米粒子在体外也表现出更好的超声成像能力。数据表明,新型靶向纳米粒子可能适用于叶酸受体过表达肿瘤的超声分子成像。