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肿瘤中金/二氧化硅纳米壳的近红外窄带成像

Near-infrared narrow-band imaging of gold/silica nanoshells in tumors.

作者信息

Puvanakrishnan Priyaveena, Park Jaesook, Diagaradjane Parmeswaran, Schwartz Jon A, Coleman Chris L, Gill-Sharp Kelly L, Sang Kristina L, Payne J Donald, Krishnan Sunil, Tunnell James W

机构信息

The University of Texas at Austin, Department of Biomedical Engineering, 1 University Station C0800, Austin, Texas 78712, USA.

出版信息

J Biomed Opt. 2009 Mar-Apr;14(2):024044. doi: 10.1117/1.3120494.

Abstract

Gold nanoshells (GNS) are a new class of nanoparticles that can be optically tuned to scatter or absorb light from the near-ultraviolet to near-infrared (NIR) region by varying the core (dielectric silica)/shell (gold) ratio. In addition to spectral tunability, GNS are inert and bioconjugatable, making them potential labels for in vivo imaging and therapy of tumors. We report the use of GNS as exogenous contrast agents for enhanced visualization of tumors using narrow-band imaging (NBI). NBI takes advantage of the strong NIR absorption of GNS to distinguish between blood and nanoshells in the tumor by imaging in narrow wavelength bands in the visible and NIR, respectively. Using tissue-simulating phantoms, we determined the optimum wavelengths to enhance contrast between blood and GNS. We then used the optimum wavelengths for ex vivo imaging of tumors extracted from human colon cancer xenograft bearing mice injected with GNS. Systemically delivered GNS accumulated passively in tumor xenografts by the enhanced permeability and retention (EPR) effect. Ex vivo NBI of tumor xenografts demonstrated heterogeneous distribution of GNS with a clear distinction from the tumor vasculature. The results of this study demonstrate the feasibility of using GNS as contrast agents to visualize tumors using NBI.

摘要

金纳米壳(GNS)是一类新型纳米颗粒,通过改变核(介电二氧化硅)/壳(金)比例,可对其进行光学调控,使其在近紫外到近红外(NIR)区域散射或吸收光。除了光谱可调性外,GNS具有惰性且可进行生物共轭,这使其成为肿瘤体内成像和治疗的潜在标记物。我们报告了使用GNS作为外源性造影剂,通过窄带成像(NBI)增强肿瘤可视化。NBI利用GNS强烈的近红外吸收特性,分别在可见光和近红外的窄波段成像,以区分肿瘤中的血液和纳米壳。使用组织模拟体模,我们确定了增强血液与GNS之间对比度的最佳波长。然后,我们将最佳波长用于对从注射了GNS的人结肠癌异种移植小鼠中提取的肿瘤进行离体成像。通过增强的通透性和滞留(EPR)效应,全身递送的GNS被动地在肿瘤异种移植中积累。肿瘤异种移植的离体NBI显示GNS分布不均,与肿瘤血管有明显区别。本研究结果证明了使用GNS作为造影剂通过NBI可视化肿瘤的可行性。

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本文引用的文献

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