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蛋黄壳结构纳米材料:一种实现磁-等离子体杂化诊疗平台协同一体化的理想结构

Yolk-Shell Nanostructure: An Ideal Architecture to Achieve Harmonious Integration of Magnetic-Plasmonic Hybrid Theranostic Platform.

机构信息

The Key Lab of Analysis and Detection Technology for Food Safety of the MOE, College of Chemistry, Fuzhou University, Fuzhou, 350108, China.

Laboratory of Molecular Imaging and Nanomedicine (LOMIN), National Institute of Biomedical Imaging and Bioengineering (NIBIB), National Institutes of Health (NIH), Bethesda, MD, 20892, USA.

出版信息

Adv Mater. 2017 Jun;29(21). doi: 10.1002/adma.201606681. Epub 2017 Mar 22.

Abstract

Magnetic-plasmonic hybrid nanoparticles (MPHNs) have attracted great interest in cancer theranostics. However, the relaxivity of the magnetic component is typically reduced by the plasmonic component in conventional core-shell structured MPHNs, due to the presence of a water-impenetrable coating which severely restricts the proximity of protons to the magnetic portion. To circumvent this issue, yolk-shell structured MPHNs comprising a Fe O core within a hollow cavity encircled by a porous Au outer shell are designed. As expected, the introduction of hollow cavity between the magnetic and plasmonic portions significantly prevents the decline in relaxivity of the Fe O core caused by the Au layer. Moreover, in addition to conferring high near-infrared absorption to plasmonic component, the hollow cavity and the pores in the outer shell can also provide a large storage space and release channels for anticancer drugs. Furthermore, the multicomponent nanoparticles (NPs) still have a compact size of less than 100 nm to ensure efficient tumor accumulation. Taken together, the yolk-shell Fe O @Au NPs can be regarded as an ideal magnetic-plasmonic theranostic platform for magnetic resonance/photoacoustic/positron emission tomography multimodal imaging and light-activated chemothermal synergistic therapy.

摘要

磁等离子体混合纳米粒子(MPHNs)在癌症治疗学中引起了极大的兴趣。然而,在传统的核壳结构 MPHNs 中,由于存在水不可渗透的涂层,等离子体部分会降低磁性部分的弛豫率,这严重限制了质子接近磁性部分。为了解决这个问题,设计了由 FeO 核内的空心腔和多孔 Au 外壳包围的蛋黄壳结构的 MPHNs。正如预期的那样,磁性和等离子体部分之间的空心腔的引入显著防止了 Au 层引起的 FeO 核弛豫率下降。此外,除了赋予等离子体部分高近红外吸收之外,外壳中的空心腔和孔还可以为抗癌药物提供大的储存空间和释放通道。此外,多组分纳米粒子(NPs)仍然具有小于 100nm 的紧凑尺寸,以确保有效的肿瘤积累。总之,蛋黄壳结构的 FeO@Au NPs 可以被视为磁共振/光声/正电子发射断层扫描多模态成像和光激活化学热协同治疗的理想的磁-等离子体治疗学平台。

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