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用于磁共振成像和近红外光热治疗的铁/氧化铁核/壳纳米粒子。

Iron/iron oxide core/shell nanoparticles for magnetic targeting MRI and near-infrared photothermal therapy.

机构信息

The Education Ministry Key Lab of Resource Chemistry and Shanghai Key Laboratory of Rare Earth Functional Materials, Shanghai Normal University, Shanghai 200234, China.

The Education Ministry Key Lab of Resource Chemistry and Shanghai Key Laboratory of Rare Earth Functional Materials, Shanghai Normal University, Shanghai 200234, China; The Education Ministry Key Lab of Pesticide & Chemical Biology, South China Agricultural University, Guangzhou 510642, China.

出版信息

Biomaterials. 2014 Aug;35(26):7470-8. doi: 10.1016/j.biomaterials.2014.04.063. Epub 2014 Jun 2.

Abstract

The development of photothermal agents (PTAs) with good stability, low toxicity, highly targeting ability and photothermal conversion efficiency is an essential pre-requisite to near-infrared photothermal therapy (PTT) in vivo. Herein, we report the readily available PEGylated Fe@Fe3O4 NPs, which possess triple functional properties in one entity - targeting, PTT, and imaging. Compared to Au nanorods, they exhibit comparable photothermal conversion efficiency (∼20%), and much higher photothermal stability. They also show a high magnetization value and transverse relaxivity (∼156 mm(-1) s(-1)), which should be applied for magnetic targeting MRI. With the Nd-Fe-B magnet (0.5 T) beside the tumour for 12 h on the xenograft HeLa tumour model, PEGylated Fe@Fe3O4 NPs exhibit an obvious accumulation. In tumour, the intensity of MRI signal is ∼ three folds and the increased temperature is ∼ two times than those without magnetic targeting, indicating the good magnetic targeting ability. Notably, the intrinsic high photothermal conversion efficiency and selective magnetic targeting effect of the NPs in tumour play synergistically in highly efficient ablation of cancer cells in vitro and in vivo.

摘要

光热试剂(PTAs)的发展需要具备良好的稳定性、低毒性、高靶向能力和光热转换效率,这是体内近红外光热治疗(PTT)的必要前提。在此,我们报告了一种易于获得的聚乙二醇化 Fe@Fe3O4 NPs,它具有靶向、PTT 和成像的三重功能特性。与金纳米棒相比,它具有相当的光热转换效率(约 20%)和更高的光热稳定性。它还表现出高磁化值和横向弛豫率(约 156 mm-1 s-1),这应该应用于磁性靶向磁共振成像。在荷瘤裸鼠模型上,用钕铁硼磁体(0.5 T)在肿瘤旁进行 12 h 的磁靶向治疗后,聚乙二醇化 Fe@Fe3O4 NPs 表现出明显的聚集。在肿瘤中,磁共振信号强度增加约 3 倍,温度升高约 2 倍,表明具有良好的磁靶向能力。值得注意的是,NP 内在的高光热转换效率和肿瘤中的选择性磁靶向作用在体外和体内高效消融癌细胞方面具有协同作用。

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