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用于潜在的同时磁靶向和肿瘤成像应用的阿拉伯胶包覆磁性纳米粒子。

Gum arabic-coated magnetic nanoparticles for potential application in simultaneous magnetic targeting and tumor imaging.

机构信息

Tianjin Key Laboratory for Modern Drug Delivery and High Efficiency, Tianjin University, Tianjin, 300072, China.

出版信息

AAPS J. 2009 Dec;11(4):693-9. doi: 10.1208/s12248-009-9151-y. Epub 2009 Oct 20.


DOI:10.1208/s12248-009-9151-y
PMID:19842043
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2782085/
Abstract

Magnetic iron oxide nanoparticles (MNP) coated with gum arabic (GA), a biocompatible phytochemical glycoprotein widely used in the food industry, were successfully synthesized and characterized. GA-coated MNP (GA-MNP) displayed a narrow hydrodynamic particle size distribution averaging about 100 nm; a GA content of 15.6% by dry weight; a saturation magnetization of 93.1 emu/g Fe; and a superparamagnetic behavior essential for most magnetic-mediated applications. The GA coating offers two major benefits: it both enhances colloidal stability and provides reactive functional groups suitable for coupling of bioactive compounds. In vitro results showed that GA-MNP possessed a superior stability upon storage in aqueous media when compared to commercial MNP products currently used in magnetic resonance imaging (MRI). In addition, significant cellular uptake of GA-MNP was evaluated in 9L glioma cells by electron spin resonance (ESR) spectroscopy, fluorescence microscopy, and MRI analyses. Based on these findings, it was hypothesized that GA-MNP might be utilized as a MRI-visible drug carrier in achieving both magnetic tumor targeting and intracellular drug delivery. Indeed, preliminary in vivo investigations validate this clinical potential. MRI visually confirmed the accumulation of GA-MNP at the tumor site following intravenous administration to rats harboring 9L glioma tumors under the application of an external magnetic field. ESR spectroscopy quantitatively revealed a 12-fold increase in GA-MNP accumulation in excised tumors when compared to contralateral normal brain. Overall, the results presented show promise that GA-MNP could potentially be employed to achieve simultaneous tumor imaging and targeted intra-tumoral drug delivery.

摘要

用阿拉伯胶(GA)对磁性氧化铁纳米颗粒(MNP)进行了涂层处理,阿拉伯胶是一种在食品工业中广泛使用的生物相容性植物化学糖蛋白。成功合成并对 GA 涂层的 MNP(GA-MNP)进行了表征。GA-MNP 显示出窄的水动力粒径分布,平均粒径约为 100nm;干重 GA 含量为 15.6%;饱和磁化强度为 93.1emu/gFe;具有超顺磁性,这是大多数磁性介导应用所必需的。GA 涂层提供了两个主要的好处:它既能增强胶体稳定性,又能提供适合偶联生物活性化合物的反应性官能团。体外研究结果表明,与目前用于磁共振成像(MRI)的商业 MNP 产品相比,GA-MNP 在水介质中储存时具有更好的稳定性。此外,通过电子自旋共振(ESR)光谱、荧光显微镜和 MRI 分析评估了 GA-MNP 在 9L 神经胶质瘤细胞中的摄取。基于这些发现,假设 GA-MNP 可作为 MRI 可见的药物载体,实现磁性肿瘤靶向和细胞内药物输送。事实上,初步的体内研究验证了这种临床潜力。MRI 可视化证实,在对携带 9L 神经胶质瘤肿瘤的大鼠静脉注射 GA-MNP 后,在外磁场的应用下,GA-MNP 在肿瘤部位的积累。ESR 光谱定量显示,与对侧正常大脑相比,切除肿瘤中 GA-MNP 的积累增加了 12 倍。总的来说,研究结果表明,GA-MNP 有可能被用于实现同时的肿瘤成像和靶向肿瘤内药物输送。

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本文引用的文献

[1]
Facile synthesis of polymer-enveloped ultrasmall superparamagnetic iron oxide for magnetic resonance imaging.

Nanotechnology. 2007-4-4

[2]
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Nanotechnology. 2008-4

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Nanotechnology. 2008-12-17

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Iron oxide nanoparticles as a drug delivery vehicle for MRI monitored magnetic targeting of brain tumors.

Biomaterials. 2008-2

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Nano Lett. 2007-1

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Adv Drug Deliv Rev. 2006-12-1

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