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Highly water-soluble magnetic iron oxide (Fe3O4) nanoparticles for drug delivery: enhanced in vitro therapeutic efficacy of doxorubicin and MION conjugates

机译:高度水溶性的磁性氧化铁(Fe3O4)纳米颗粒用于药物输送:阿霉素和MION缀合物的体外治疗功效增强

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摘要

We report a simple one step protocol for the preparation of fairly monodisperse and highly water-soluble magnetic iron oxide nanoparticles (MIONs) through a co-precipitation method using a novel multifunctional, biocompatible and water-soluble polymer ligand dodecanethiol-polymethacrylic acid (DDT-PMAA). DDT-PMAA owing to its several intrinsic properties, not only efficiently controls the size of the MIONs but also gives them excellent water solubility, long time stability against aggregation and oxidation, biocompatibility and multifunctional surface rich in thioether and carboxylic acid groups. The molecular weight and concentration of the polymer ligand were optimized to produce ultrasmall (4.6 +/- 0.7 nm) MIONs with high magnetization (50 emu g(-1)). The MIONs obtained with 1.5 mM DDT-PMAA (5330 g mol(-1)) are highly stable in solution as well as in dry powder form for an extended period of time. These MIONs show a high degree of monodispersity and are superparamagnetic at room temperature. The polymer ligand and MIONs@Polymer were characterized by GPC, H-1 NMR, DLS, TEM, FTIR-Raman, XRD, TGA and VSM. In order to demonstrate the bio-applications of these magnetic nanoparticles (NPs), their toxicity was determined by MTT assay and they were found to be non-toxic and biocompatible. Finally, MIONs were conjugated with the anti-cancer drug doxorubicin (DOX) and its efficacy, as a model drug delivery system, was determined using HepG2 cells. The efficiency of the drug-NP conjugates i.e., covalently bound DOX-MIONs and electrostatically loaded DOX/MIONs, was found to be significantly higher than that of the free drug (DOX).
机译:我们报告了一个简单的一步协议,通过使用新的多功能,生物相容性和水溶性聚合物配体十二烷硫醇-聚甲基丙烯酸(DDT-)的共沉淀方法,制备了相当单分散和高度水溶性的磁性氧化铁纳米颗粒(MIONs) PMAA)。 DDT-PMAA由于具有多种固有特性,不仅可以有效控制MION的大小,而且还具有出色的水溶性,对聚集和氧化的长期稳定性,生物相容性以及富含硫醚和羧酸基团的多功能表面。优化了聚合物配体的分子量和浓度,以产生具有高磁化强度(50 emu g(-1))的超小(4.6 +/- 0.7 nm)MION。用1.5 mM DDT-PMAA(5330 g mol(-1))获得的MION在溶液以及干粉形式中都具有很高的稳定性,可延长使用时间。这些MIONs表现出高度的单分散性,并且在室温下是超顺磁性的。通过GPC,H-1 NMR,DLS,TEM,FTIR-Raman,XRD,TGA和VSM对聚合物配体和MIONs @ Polymer进行了表征。为了证明这些磁性纳米颗粒(NPs)的生物应用,通过MTT分析确定了它们的毒性,发现它们是无毒的并且具有生物相容性。最后,将MION与抗癌药物阿霉素(DOX)偶联,并使用HepG2细胞确定其作为模型药物递送系统的功效。发现药物-NP缀合物即共价结合的DOX-MION和静电加载的DOX / MION的效率显着高于游离药物(DOX)的效率。

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