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用于生物医学成像和癌症治疗的近红外一区到近红外二区荧光纳米材料。

NIR-I-to-NIR-II fluorescent nanomaterials for biomedical imaging and cancer therapy.

作者信息

Zhao Jingya, Zhong Dian, Zhou Shaobing

机构信息

Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, P. R. China.

出版信息

J Mater Chem B. 2018 Jan 21;6(3):349-365. doi: 10.1039/c7tb02573d. Epub 2017 Dec 6.

Abstract

Near-infrared (NIR) fluorescence imaging, which affords high imaging resolution owing to deep tissue penetration of NIR photons, is an attractive imaging modality for both biomedical research and clinical applications. To further improve the image contrast at increased tissue depth, recently much attention has been focused on the development of NIR-I-to-NIR-II fluorescence imaging, which can remarkably reduce the interference from photon absorption, scattering and tissue autofluorescence with excitation in the 700-950 nm NIR-I window and emission in the 1000-1700 nm NIR-II window. In this review, we highlight recently developed NIR-I-to-NIR-II fluorescent nanomaterials, including silver chalcogenide quantum dots, single-walled carbon nanotubes and polymer nanoparticles. We discuss the advantages of these nanomaterials as fluorescent tags in deep tissue imaging by comparing them with conventional fluorophores, and then survey the implementation of NIR fluorescence imaging with these nanomaterials, including instrumentation, data analysis and surface biofunctionalization of the nanomaterials. Finally, we discuss recent applications of NIR-I-to-NIR-II fluorescent nanomaterials in the biomedical imaging field, with an emphasis on how to use them to achieve simultaneous cancer diagnosis and therapy.

摘要

近红外(NIR)荧光成像由于近红外光子能够穿透深层组织,从而提供了高成像分辨率,是一种在生物医学研究和临床应用中都颇具吸引力的成像方式。为了在增加组织深度的情况下进一步提高图像对比度,近来人们将大量注意力集中在近红外一区到近红外二区荧光成像的发展上,这种成像方式在700 - 950 nm的近红外一区窗口激发并在1000 - 1700 nm的近红外二区窗口发射,能够显著减少光子吸收、散射和组织自发荧光的干扰。在这篇综述中,我们重点介绍了近来开发的近红外一区到近红外二区荧光纳米材料,包括硫族化银量子点、单壁碳纳米管和聚合物纳米颗粒。通过将这些纳米材料与传统荧光团进行比较,我们讨论了它们作为深层组织成像荧光标记的优势,然后考察了使用这些纳米材料进行近红外荧光成像的实施情况,包括仪器设备、数据分析以及纳米材料的表面生物功能化。最后,我们讨论了近红外一区到近红外二区荧光纳米材料在生物医学成像领域的近期应用,重点在于如何利用它们实现癌症的同步诊断和治疗。

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