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多功能稀土自组装纳米系统用于三模式上转换发光/荧光/正电子发射断层成像。

Multifunctional rare-earth self-assembled nanosystem for tri-modal upconversion luminescence /fluorescence /positron emission tomography imaging.

机构信息

Department of Chemistry & Advanced Materials Laboratory, Fudan University, 200433, PR China.

出版信息

Biomaterials. 2011 Nov;32(32):8243-53. doi: 10.1016/j.biomaterials.2011.07.053. Epub 2011 Aug 4.

Abstract

Rare-earth upconversion nanoparticles (UCNP) which can absorb low-energy photons and emit high energy photons have attracted great interest not only because of their unique application in upconversion luminescence imaging, but also because they can be used as ideal building blocks for multimodal bioimaging probes. Improving the water-solubility of UCNP and functionalizing them are as yet unresolved problems. In this present study, a general strategy was developed to achieve these two aims by converting hydrophobic upconversion nanoparticles into hydrophilic ones. This was based on the self-assembly between oleic acid, which is a capping ligand, as the guest molecule, and alpha-cyclodextrin, as the host molecule, no matter what the particle size was (10-400 nm) or what synthesis method (thermal decomposition, hydrothermal, solvothermal) was used. The synthesized hydrophilic nanoparticles can further load hydrophobic molecule, e.g. Os(II) complex. The process of self-assembly and loading was confirmed by transmission electron microscopy, X-ray powder diffraction, (1)H-nuclear magnetic resonance, Fourier transform-infrared and thermogravimetric analysis, upconversion luminescence and fluorescence spectra. Further bioapplication has also been investigated, including cell-labeling, in vivo lymphatic imaging, upconversion luminescence and positron emission tomography imaging of whole-body Kunming mice. The results indicate that this method is a potential candidate for the preparation of hydrophilic UCNP as a multimodal nanoprobe.

摘要

上转换纳米粒子(UCNP)可以吸收低能量光子并发射高能量光子,由于其在上转换发光成像中的独特应用,以及可以用作多模态生物成像探针的理想构建块,引起了极大的关注。提高 UCNP 的水溶性并对其进行功能化是尚未解决的问题。在本研究中,开发了一种通用策略,通过将疏水性上转换纳米粒子转化为亲水性纳米粒子来实现这两个目标。这是基于油酸(作为封端配体的客体分子)与α-环糊精(作为主体分子)之间的自组装,无论颗粒大小(10-400nm)或合成方法(热分解、水热法、溶剂热法)如何。合成的亲水性纳米粒子可以进一步负载疏水分子,例如 Os(II) 配合物。自组装和负载过程通过透射电子显微镜、X 射线粉末衍射、(1)H 核磁共振、傅里叶变换红外和热重分析、上转换发光和荧光光谱进行了确认。进一步的生物应用也进行了研究,包括细胞标记、体内淋巴管成像、昆明小鼠全身的上转换发光和正电子发射断层扫描成像。结果表明,该方法是制备亲水性 UCNP 作为多模态纳米探针的潜在候选方法。

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