首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Delivery of Doxorubicin Using Double-Layered Core-Shell Nanocarrier Based on Magnetic Fe3O4 Core and Salep Shells
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Delivery of Doxorubicin Using Double-Layered Core-Shell Nanocarrier Based on Magnetic Fe3O4 Core and Salep Shells

机译:基于磁FE3O4核心和盐壳的双层芯 - 壳纳米载波输送多柔比星

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摘要

Herein, we developed a magnetic drug delivery system based on magnetic Fe3O4 nanoparticles with double shells of modified salep polysaccharide for the delivery of doxorubicin (Dox). The drug-loaded nanocarrier was synthesized in an easy way, and large amounts of drug molecules were loaded into the nanocarrier. The drug-loaded nanocarrier showed excellent pH responsibility in vitro, and large amounts of Dox were released at lower pH (60% release), whereas the nanocarrier was stable at neutral pH. The hemolysis assay results showed that the nanocarrier has negligible hemolytic effects on human red blood cells and showed good biocompatibility. Moreover, the result of coagulation assays showed that the nanocarrier was not active in any coagulation pathways. Cytotoxicity assays of nanocarrier and drug-loaded nanocarrier toward HeLa cells demonstrated that the nanocarrier has negligible toxicity, whereas the drug-loaded nanocarrier kills more than 90% of cells during 48 h. The flow cytometry analysis also showed that the uptake of drug-loaded nanocarrier into the cancerous cells is time-dependent and higher concentrations of drug internalized into the cells at longer incubation time. On the basis of the results, we suggest that the present nanocarrier can be applicable for in vivo drug delivery as an easy-made and cheap nanocarrier.
机译:在此,我们开发了一种基于磁性Fe3O4纳米颗粒的磁性药物输送系统,其具有双壳改性盐酸多糖,用于递送多柔比星(DOX)。以容易的方式合成药物负载的纳米载体,将大量的药物分子加载到纳米载体中。药物负载的纳米载体在体外显示出优异的pH责任,并且在较低的pH(60%释放)下释放大量DOX,而纳米载体在中性pH下稳定。溶血测定结果表明,纳米载体对人红细胞的溶血作用可忽略不计,并显示出良好的生物相容性。此外,凝固测定的结果表明,纳米载体在任何凝血途径中未活性。纳米载波和药物负载纳米载体的细胞毒性测定朝向HeLa细胞显示纳米载体的毒性可忽略不计,而药物负载的纳米载体在48小时期间杀死超过90%的细胞。流式细胞术分析还表明,将药物负载纳米载体进入癌细胞的吸收是在较长孵育时间内内化到细胞中的时间依赖性和更高浓度的药物。在结果的基础上,我们建议本纳米载波可适用于体内药物递送,作为一种易制造和廉价的纳米载体。

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