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Multimodal assessment of SERS nanoparticle biodistribution post ingestion reveals new potential for clinical translation of Raman imaging.摄入后对表面增强拉曼散射(SERS)纳米颗粒生物分布的多模态评估揭示了拉曼成像临床转化的新潜力。
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Clinically Approved Nanoparticle Imaging Agents.临床批准的纳米颗粒成像剂。
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Bayesian exponential random graph modeling of whole-brain structural networks across lifespan.全生命周期全脑结构网络的贝叶斯指数随机图模型
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Gadolinium-based contrast agent toxicity: a review of known and proposed mechanisms.钆基造影剂毒性:已知及推测机制的综述
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Comparison of Deconvolution Filters for Photoacoustic Tomography.用于光声断层成像的反卷积滤波器比较
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Nanomaterials. Controlled interaction of nanoparticles with cells.纳米材料。纳米颗粒与细胞的可控相互作用。
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Plaque-associated lipids in Alzheimer's diseased brain tissue visualized by nonlinear microscopy.通过非线性显微镜观察阿尔茨海默病脑组织中与斑块相关的脂质。
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Iron Oxide Based Nanoparticles for Multimodal Imaging and Magnetoresponsive Therapy.用于多模态成像和磁响应治疗的氧化铁基纳米颗粒
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10
High-Speed Coherent Raman Fingerprint Imaging of Biological Tissues.生物组织的高速相干拉曼指纹成像
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智能尘埃-纳米花用于增强内源性拉曼信号、光声成象对比度及磁共振 T2 缩短。

Smart-Dust-Nanorice for Enhancement of Endogenous Raman Signal, Contrast in Photoacoustic Imaging, and T2-Shortening in Magnetic Resonance Imaging.

机构信息

Department of Radiology, Stanford School of Medicine, Clark Center E150, 318 Campus Drive, Stanford, CA, 94303, USA.

Department of Pediatrics, Stanford School of Medicine, Clark Center E150, 318 Campus Drive, Stanford, CA, 94303, USA.

出版信息

Small. 2018 May;14(19):e1703683. doi: 10.1002/smll.201703683. Epub 2018 Apr 10.

DOI:10.1002/smll.201703683
PMID:29635739
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6200319/
Abstract

Raman microspectroscopy provides chemo-selective image contrast, sub-micrometer resolution, and multiplexing capabilities. However, it suffers from weak signals resulting in image-acquisition times of up to several hours. Surface-enhanced Raman scattering (SERS) can dramatically enhance signals of molecules in close vicinity of metallic surfaces and overcome this limitation. Multimodal, SERS-active nanoparticles are usually labeled with Raman marker molecules, limiting SERS to the coating material. In order to realize multimodal imaging while acquiring the rich endogenous vibronic information of the specimen, a core-shell particle based on "Nanorice", where a spindle-shaped iron oxide core is encapsulated by a closed gold shell, is developed. An ultrathin layer of silica prevents agglomeration and unwanted chemical interaction with the specimen. This approach provides Raman signal enhancement due to plasmon resonance effects of the shell while the optical absorption in the near-infrared spectral region provides contrast in photoacoustic tomography. Finally, T2-relaxation of a magnetic resonance imaging (MRI) experiment is altered by taking advantage of the iron oxide core. The feasibility for Raman imaging is evaluated by nearfield simulations and experimental studies on the primate cell line COS1. MRI and photoacoustics are demonstrated in agarose phantoms illustrating the promising translational nature of this strategy for clinical applications in radiology.

摘要

拉曼微光谱提供了化学选择性的图像对比、亚微米分辨率和多重成像能力。然而,它的信号较弱,导致图像采集时间长达数小时。表面增强拉曼散射(SERS)可以显著增强金属表面附近分子的信号,克服这一限制。多模态、SERS 活性纳米粒子通常用拉曼标记分子标记,这将 SERS 限制在涂层材料上。为了在获取标本丰富的内源性振动信息的同时实现多模态成像,开发了一种基于“Nanorice”的核壳粒子,其中一个纺锤形的氧化铁核被一个封闭的金壳包裹。一层超薄的二氧化硅可以防止颗粒团聚和与标本发生不必要的化学相互作用。这种方法利用壳的等离子体共振效应提供了拉曼信号增强,而近红外光谱区域的光吸收提供了光声断层扫描的对比。最后,利用氧化铁核改变磁共振成像(MRI)实验中的 T2 弛豫。通过近场模拟和对灵长类细胞系 COS1 的实验研究评估了拉曼成像的可行性。在琼脂糖体模中证明了 MRI 和光声的可行性,说明了该策略在放射学临床应用中的转化潜力。

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