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基于壳聚糖 - 二羧酸盐共轭物的新型纳米颗粒,通过与三聚磷酸钠进行串联离子型/共价交联,并随后作为药物递送载体进行评估。

Novel nanoparticles based on chitosan-dicarboxylate conjugates via tandem ionotropic/covalent crosslinking with tripolyphosphate and subsequent evaluation as drug delivery vehicles.

作者信息

Dmour Isra, Taha Mutasem O

机构信息

Facuty of Pharmacy, Al-Ahliyya Amman University, Amman, Jordan.

Department of Pharmaceutical Sciences, Faculty of Pharmacy, University of Jordan, 11942, Amman, Jordan.

出版信息

Int J Pharm. 2017 Aug 30;529(1-2):15-31. doi: 10.1016/j.ijpharm.2017.06.061. Epub 2017 Jun 19.

Abstract

Chitosan-based nanoparticles prepared by ionotropic gelation are prone to stability issues. The aim of this work is to chemically modify chitosan by grafting to succinate, phthalate, glutarate and phenylsuccinate moieties and to investigate the suitability of the resulting polymers as covalently-crosslinked nanocarriers. Corresponding nanoparticles (NPs) were formulated by ionotropic gelation using tripolyphosphate (TPP) anion then they were covalently crosslinked using 1-ethyl-3-(3-dimethylaminopropyl)-carbodiimide (EDC). Infrared and thermal analysis confirmed the formation of phosphoramide bonds within the NPs indicating the involvement of TPP in covalent crosslinking. This is the first time to report phosphormide covalent crosslinking within nanoparticles matrices. The resulting NPs were found to resist drastic pH and calcium ion conditions. Size analysis indicated the NPs to be spherical and less than 500nm in diameter. Loading studies using Safranine O showed enhanced NPs drug loading upon covalent crosslinking compared to ionotropic gelling. Doxorubicin-loaded NPs were of superior cytotoxic properties compared to free doxorubicin.

摘要

通过离子凝胶法制备的壳聚糖基纳米颗粒容易出现稳定性问题。本研究的目的是通过接枝琥珀酸、邻苯二甲酸、戊二酸和苯琥珀酸基团对壳聚糖进行化学改性,并研究所得聚合物作为共价交联纳米载体的适用性。使用三聚磷酸钠(TPP)阴离子通过离子凝胶法制备相应的纳米颗粒(NPs),然后使用1-乙基-3-(3-二甲基氨基丙基)-碳二亚胺(EDC)进行共价交联。红外和热分析证实了NPs中磷酰胺键的形成,表明TPP参与了共价交联。这是首次报道纳米颗粒基质内的磷酰胺共价交联。结果发现所得的NPs能够抵抗剧烈的pH和钙离子条件。尺寸分析表明NPs呈球形,直径小于500nm。使用番红O的负载研究表明,与离子凝胶法相比,共价交联后NPs的药物负载量有所提高。与游离阿霉素相比,负载阿霉素的NPs具有更好的细胞毒性。

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