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用于体内成像的纳米材料。

Nanomaterials for In Vivo Imaging.

机构信息

Stanford University , 3155 Porter Drive, #1214, Palo Alto, California 94304-5483, United States.

The James H. Clark Center , 318 Campus Drive, First Floor, E-150A, Stanford, California 94305-5427, United States.

出版信息

Chem Rev. 2017 Feb 8;117(3):901-986. doi: 10.1021/acs.chemrev.6b00073. Epub 2017 Jan 3.

Abstract

In vivo imaging, which enables us to peer deeply within living subjects, is producing tremendous opportunities both for clinical diagnostics and as a research tool. Contrast material is often required to clearly visualize the functional architecture of physiological structures. Recent advances in nanomaterials are becoming pivotal to generate the high-resolution, high-contrast images needed for accurate, precision diagnostics. Nanomaterials are playing major roles in imaging by delivering large imaging payloads, yielding improved sensitivity, multiplexing capacity, and modularity of design. Indeed, for several imaging modalities, nanomaterials are now not simply ancillary contrast entities, but are instead the original and sole source of image signal that make possible the modality's existence. We address the physicochemical makeup/design of nanomaterials through the lens of the physical properties that produce contrast signal for the cognate imaging modality-we stratify nanomaterials on the basis of their (i) magnetic, (ii) optical, (iii) acoustic, and/or (iv) nuclear properties. We evaluate them for their ability to provide relevant information under preclinical and clinical circumstances, their in vivo safety profiles (which are being incorporated into their chemical design), their modularity in being fused to create multimodal nanomaterials (spanning multiple different physical imaging modalities and therapeutic/theranostic capabilities), their key properties, and critically their likelihood to be clinically translated.

摘要

体内成像是一种能够深入活体内部进行观察的技术,它为临床诊断和研究工具带来了巨大的机遇。通常需要对比材料来清晰地可视化生理结构的功能结构。最近纳米材料的进展对于产生高分辨率、高对比度的图像至关重要,这些图像是准确、精密诊断所必需的。纳米材料通过提供大的成像有效载荷、提高灵敏度、增加复用能力和设计的模块化,在成像中发挥着重要作用。事实上,对于几种成像模式,纳米材料现在不仅是辅助对比实体,而且是图像信号的原始和唯一来源,使得该模式成为可能。我们通过产生对应成像模式对比信号的物理特性来研究纳米材料的理化组成/设计——我们根据纳米材料的(i)磁性、(ii)光学、(iii)声学和/或(iv)核性质对其进行分层。我们评估它们在临床前和临床情况下提供相关信息的能力、它们的体内安全概况(这些概况被纳入其化学设计中)、它们在融合以创建多模态纳米材料方面的模块化(跨越多种不同的物理成像模式和治疗/治疗诊断能力)、它们的关键特性,以及它们在临床上转化的可能性。

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