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用于靶向联合治疗的聚(I:C)修饰的载阿霉素磁性树枝状聚合物纳米颗粒的研发

Development of poly (I:C) modified doxorubicin loaded magnetic dendrimer nanoparticles for targeted combination therapy.

作者信息

Khodadust Rouhollah, Unsoy Gozde, Gunduz Ufuk

机构信息

Middle East Technical University, Department of Biotechnology, 06800 Ankara, Turkey.

Middle East Technical University, Department of Biotechnology, 06800 Ankara, Turkey.

出版信息

Biomed Pharmacother. 2014 Oct;68(8):979-87. doi: 10.1016/j.biopha.2014.10.009. Epub 2014 Oct 30.

Abstract

The objective of this study was to develop and evaluate the anticancer activity and the safety of a combinational drug delivery system using polyamidoamine (PAMAM) dendrimer-coated iron oxide nanoparticles for doxorubicin and poly I:C delivery in vitro. Dendrimer-coated magnetic nanoparticles (DcMNPs) are suitable for drug delivery system as nanocarriers with their following properties, such as surface functional groups, symmetry perfection, internal cavities, nano-size and magnetization. These nanoparticles could be targeted to the tumor site under a magnetic field since they have a magnetic core. DcMNPs were found as a convenient vehicle for targeted doxorubicin delivery in cancer therapy. Poly (I:C) binding on doxorubicin loaded DcMNPs (DcMNPs-Dox) was reported for the first time in the literature. It was also demonstrated that loading of doxorubicin into the cavities of DcMNPs increases the binding efficiency of poly (I:C) to the surface functional groups of dendrimer up to 10 times. When we compare the in vitro cytotoxic properties of doxorubicin, poly (I:C) and poly (I:C) bound doxorubicin loaded DcMNPs (PIC-DcMNPs-Dox), it was observed that PIC-DcMNPs-Dox show the highest cytotoxic effect by passing the cell resistance mechanisms on doxorubicin resistant MCF7 (MCF7/Dox) cells. Results demonstrated that applying PIC-DcMNPs-Dox would improve the efficacy by increasing the biocompatibility of system in blood stream and the toxicity inside tumor cells. These results provide invaluable information and new insight for the design and optimization of a novel combinational drug delivery system for targeted cancer therapy.

摘要

本研究的目的是开发并评估一种组合药物递送系统的抗癌活性和安全性,该系统使用聚酰胺-胺(PAMAM)树枝状大分子包覆的氧化铁纳米颗粒用于体外递送阿霉素和聚肌苷酸-聚胞苷酸(poly I:C)。树枝状大分子包覆的磁性纳米颗粒(DcMNPs)作为纳米载体适用于药物递送系统,具有以下特性,如表面官能团、对称完美性、内部空腔、纳米尺寸和磁性。由于这些纳米颗粒具有磁芯,因此可以在磁场作用下靶向肿瘤部位。DcMNPs被发现是癌症治疗中靶向递送阿霉素的便捷载体。文献中首次报道了聚肌苷酸-聚胞苷酸(poly I:C)与负载阿霉素的DcMNPs(DcMNPs-Dox)的结合。还证明将阿霉素负载到DcMNPs的空腔中可使聚肌苷酸-聚胞苷酸(poly I:C)与树枝状大分子表面官能团的结合效率提高至10倍。当我们比较阿霉素、聚肌苷酸-聚胞苷酸(poly I:C)以及聚肌苷酸-聚胞苷酸结合负载阿霉素的DcMNPs(PIC-DcMNPs-Dox)的体外细胞毒性特性时,观察到PIC-DcMNPs-Dox通过克服阿霉素耐药的MCF7(MCF7/Dox)细胞的耐药机制而表现出最高的细胞毒性作用。结果表明,应用PIC-DcMNPs-Dox可通过提高系统在血流中的生物相容性和肿瘤细胞内的毒性来提高疗效。这些结果为设计和优化用于靶向癌症治疗的新型组合药物递送系统提供了宝贵信息和新见解

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