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    Please use this identifier to cite or link to this item: https://ir.csmu.edu.tw:8080/ir/handle/310902500/15893


    Title: Sodium Dodecyl Sulfate-Modified Doxorubicin-Loaded Chitosan-Lipid Nanocarrier with Multi Polysaccharide-Lecithin Nanoarchitecture for Augmented Bioavailability and Stability of Oral Administration In Vitro and In Vivo
    Authors: CW, Su
    MY, Chiang
    YL, Lin
    NM, Tsai
    YP, Chen
    WM, Li
    CH, Hsu
    SY, Chen
    Contributors: 中山醫學大學
    Keywords: BIOAVAILABILITY;CACO-2 CELL MONOLAYERS;INTESTINAL ABSORPTION;ORAL DELIVERY;TRIGLYCERIDE
    Date: 2016
    Issue Date: 2016-09-05T06:57:58Z (UTC)
    ISSN: 1550-7033
    Abstract: For oral anti-cancer drug delivery, a new chitosan-lipid nanoparticle with sodium dodecyl sulfate modification was designed and synthesized using a double emulsification. TEM examination showed that the DOX-loaded nanoparticles, termed D-PL/TG NPs, exhibited a unique core–shell configuration composed of multiple amphiphilic chitosan-lecithin reverse micelles as the core and a triglyceride shell as a physical barrier to improve the encapsulation efficiency and reduce the drug leakage. In addition, the D-PL/TG NPs with sodium dodecyl sulfate modification on the surface have enhanced stability in the GI tract and increased oral bioavailability of doxorubicin. In vitro transport studies performed on Caco-2 monolayers indicated that the D-PL/TG NPs enhanced the permeability of DOX in the Caco-2 monolayers by altering the transport pathway from passive diffusion to transcytosis. The in vivo intestinal absorption assay suggested that the D-PL/TG NPs were preferentially absorbed through the specialized membranous epithelial cells (M cells) of the Peyer's patches, resulting in a significant improvement (8-fold) in oral bioavailability compared to that of free DOX. The experimental outcomes in this work demonstrate that the D-PL/TG NPs provide an exciting opportunity for advances in the oral administration of drugs with poor bioavailability that are usually used in treating tough and chronic diseases.
    URI: http://dx.doi.org/10.1166/jbn.2016.2227
    https://ir.csmu.edu.tw:8080/ir/handle/310902500/15893
    Relation: J Biomed Nanotechnol. 2016 May;12(5):962-72
    Appears in Collections:[醫學檢驗暨生物技術學系暨碩士班] 期刊論文

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