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金和银纳米球的宽场和高分辨率反射成像。

Widefield and high-resolution reflectance imaging of gold and silver nanospheres.

作者信息

Nitin Nitin, Javier David J, Roblyer Darren M, Richards-Kortum Rebecca

机构信息

Rice University, Department of Bioengineering, 6100 Main Street, Keck Hall, Suite 116, Houston, Texas 77005, USA.

出版信息

J Biomed Opt. 2007 Sep-Oct;12(5):051505. doi: 10.1117/1.2800314.

Abstract

Metallic nanoparticles have unique optical properties that can be exploited for molecular imaging in tissue. Image contrast depends on the nature of the particles, properties of the target tissue, and the imaging system. Maximizing image contrast for a particular application requires an understanding of the interplay of these factors. We demonstrate an approach that integrates the use of reflectance spectroscopy and imaging of particles in water and various tissue phantoms to evaluate the expected image contrast. We illustrate the application of this methodology for gold and silver nanospheres targeted against a biomarker expressed in epithelial tissue; predictions of contrast properties using diffuse reflectance spectroscopy were compared with widefield and high-resolution images of labeled tissue phantoms. The results show that the predicted image contrast based on spectroscopy agrees well with widefield and high-resolution imaging, and illustrate that gold and silver nanospheres at subnanomolar concentration are sufficient to produce contrast in both imaging modes. However, the effective contrast achieved with a particular type of nanoparticle can differ dramatically depending on the imaging modality. The ability to predict and optimize image contrast properties is a crucial step in the effective use of these nanomaterials for biomedical imaging applications.

摘要

金属纳米颗粒具有独特的光学特性,可用于组织中的分子成像。图像对比度取决于颗粒的性质、目标组织的特性以及成像系统。对于特定应用,要使图像对比度最大化,需要了解这些因素之间的相互作用。我们展示了一种方法,该方法整合了反射光谱法以及对水中和各种组织模型中颗粒的成像,以评估预期的图像对比度。我们举例说明了这种方法在针对上皮组织中表达的生物标志物的金和银纳米球上的应用;使用漫反射光谱法对对比度特性的预测与标记组织模型的宽视野和高分辨率图像进行了比较。结果表明,基于光谱法预测的图像对比度与宽视野和高分辨率成像结果吻合良好,并表明亚纳摩尔浓度的金和银纳米球足以在两种成像模式下产生对比度。然而,特定类型的纳米颗粒所实现的有效对比度会因成像方式的不同而有显著差异。预测和优化图像对比度特性的能力是有效利用这些纳米材料进行生物医学成像应用的关键一步。

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