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Synthesis, characterization, and in vitro evaluation of two synergistic anticancer drug-containing hepatoma-targeting micelles formed from amphiphilic random copolymer

机译:两亲无规共聚物形成的两种含协同抗癌药的靶向肝癌的胶束的合成,表征和体外评价

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摘要

In this study we fabricated and characterized novel galactose-functionalized multidrug-containing nano-particles, and in vitro evaluated their enhanced anti-tumorous cell cytotoxicity and hepatoma-targeting ability for the controlled delivery of two synergistic anticancer drugs. A chemo-enzymatic synthesis strategy was used to prepare a galactose-functionalized amphiphilic random copolymer containing cytarabine (Ara-C) and fluorodeoxyuridine (FUDR). The formed nanoparticles were characterized for their critical aggregation concentration (CAC), morphology, cellular uptake, cell cytotoxicity, hepatoma targeting ability and controlled drug release. The micellization ability of the galactose-functionalized amphiphilic random copolymer was confirmed. In vitro drug release studies showed that the two anticancer agents could be simultaneously released from the nanoparticles. Cellular uptake assay and cytotoxicity tests demonstrated that these nanoparticles could be effectively internalized by HepG2 cells and had an evident targeting function through the selective recognition of galactose pendants of the copolymer by ASGP-R of HepG2 cells. Furthermore, the enhanced anti-tumorous cell cytotoxicity indicated the combination of Ara-C, FUDR and D-galactose in one copolymer may have a better synergistic effect. This encouraging finding illustrated that the D-galactose functionalized nanoparticles could be used as a novel potential hepatoma-targeting multidrug delivery vehicle.
机译:在这项研究中,我们制作并表征了新型半乳糖功能化的含多药纳米颗粒,并在体外评估了它们增强的抗肿瘤细胞毒性和靶向两种协同抗癌药物的肝癌靶向能力。使用化学酶促合成策略来制备含有阿糖胞苷(Ara-C)和氟脱氧尿苷(FUDR)的半乳糖官能化两亲无规共聚物。所形成的纳米颗粒的特征在于其临界聚集浓度(CAC),形态,细胞摄取,细胞毒性,肝癌靶向能力和可控药物释放。证实了半乳糖官能化的两亲无规共聚物的胶束化能力。体外药物释放研究表明,两种抗癌剂可以同时从纳米颗粒中释放出来。细胞摄取测定法和细胞毒性测试表明,这些纳米粒子可以被HepG2细胞有效内在化,并通过ASGP-R对HepG2细胞的选择性识别,使共聚物的半乳糖侧基具有明显的靶向功能。此外,增强的抗肿瘤细胞毒性表明一种共聚物中Ara-C,FUDR和D-半乳糖的组合可能具有更好的协同作用。这一令人鼓舞的发现表明,D-半乳糖功能化的纳米颗粒可以用作新型潜在的靶向肝癌的多药递送载体。

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