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包载阿霉素的壳交联硬脂酸接枝壳寡糖胶束的细胞摄取及细胞毒性

Cellular uptake and cytotoxicity of shell crosslinked stearic acid-grafted chitosan oligosaccharide micelles encapsulating doxorubicin.

作者信息

Hu Fu-Qiang, Wu Xiu-Ling, Du Yong-Zhong, You Jian, Yuan Hong

机构信息

College of Pharmaceutical Science, Zhejiang University, Hangzhou, PR China.

出版信息

Eur J Pharm Biopharm. 2008 May;69(1):117-25. doi: 10.1016/j.ejpb.2007.09.018. Epub 2007 Oct 5.

DOI:10.1016/j.ejpb.2007.09.018
PMID:17997293
Abstract

Stearic acid-grafted chitosan oligosaccharide (CSO-SA) with 3.48% amino-substituted degree (SD%) was synthesized by coupling reaction. The CSO-SA could self-aggregate to form micelle with a critical micelle concentration (CMC) at 0.035 mg/mL in the aqueous phase. The CSO-SA self-aggregate micelles indicated spatial structure with multi-hydrophobic core. One CSO-SA chain could form 2.8 hydrophobic cores. Cellular uptakes of CSO-SA micelles by using A549, LLC, and SKOV3 cells as model tumor cell lines showed the faster cellular internalization of CSO-SA micelles, and the cellular uptakes on the LLC and SKOV3 cells were higher than that on the A549 cells. Doxorubicin (DOX) was then used as a model drug to incorporate into CSO-SA micelles. To reduce the initial burst drug release from CSO-SA micelles loading DOX (CSO-SA/DOX), the shell of CSO-SA micelles was crosslinked by glutaraldehyde. The shell crosslinking of CSO-SA micelles reduced the micelle size and surface potential, but it did not significantly affect the cellular uptake and drug encapsulation efficiency of CSO-SA micelles. The cellular inhibition experiments demonstrated that the cytotoxicity of DOX was increased by the encapsulation of CSO-SA micelles. CSO-SA/DOX displayed the best antitumor efficacy in SKOV3 cell line due to the higher cellular uptake percentage of CSO-SA micelles and the lower sensitivity of free drug to the cells. The cytotoxicities of shell crosslinked CSO-SA/DOX were highly enhanced in all cell lines than those of unmodified CSO-SA/DOX.

摘要

通过偶联反应合成了氨基取代度(SD%)为3.48%的硬脂酸接枝壳寡糖(CSO-SA)。CSO-SA在水相中能自聚集形成胶束,其临界胶束浓度(CMC)为0.035 mg/mL。CSO-SA自聚集胶束呈现出具有多个疏水核心的空间结构。一条CSO-SA链可形成2.8个疏水核心。以A549、LLC和SKOV3细胞作为模型肿瘤细胞系,对CSO-SA胶束进行细胞摄取实验,结果表明CSO-SA胶束具有更快的细胞内化速度,且在LLC和SKOV3细胞上的摄取量高于A549细胞。随后使用阿霉素(DOX)作为模型药物载入CSO-SA胶束。为减少载有DOX的CSO-SA胶束(CSO-SA/DOX)的初始突释,用戊二醛对CSO-SA胶束的外壳进行交联。CSO-SA胶束的外壳交联降低了胶束尺寸和表面电位,但对CSO-SA胶束的细胞摄取和药物包封效率没有显著影响。细胞抑制实验表明,CSO-SA胶束包封可提高DOX的细胞毒性。由于CSO-SA胶束的细胞摄取率较高且游离药物对细胞的敏感性较低,CSO-SA/DOX在SKOV3细胞系中显示出最佳的抗肿瘤疗效。与未修饰的CSO-SA/DOX相比,外壳交联的CSO-SA/DOX在所有细胞系中的细胞毒性均显著增强。

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