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使用金纳米团簇对血管疾病进行高分辨率短波红外成像。

High-Resolution Shortwave Infrared Imaging of Vascular Disorders Using Gold Nanoclusters.

作者信息

Yu Zhixi, Musnier Benjamin, Wegner K David, Henry Maxime, Chovelon Benoit, Desroches-Castan Agnès, Fertin Arnold, Resch-Genger Ute, Bailly Sabine, Coll Jean-Luc, Usson Yves, Josserand Véronique, Le Guével Xavier

机构信息

Cancer Targets and Experimental Therapeutics, Institute for Advanced Biosciences (IAB), University of Grenoble Alpes (UGA)/ INSERM-U1209/CNRS-UMR 5309, 38700 Grenoble, France.

BAM Federal Institute for Materials Research and Testing, Richard-Willstaetter-Str. 11, 12489 Berlin, Germany.

出版信息

ACS Nano. 2020 Apr 28;14(4):4973-4981. doi: 10.1021/acsnano.0c01174. Epub 2020 Mar 30.

Abstract

We synthesized a generation of water-soluble, atomically precise gold nanoclusters (Au NCs) with anisotropic surface containing a short dithiol pegylated chain (AuMHA/TDT). The AuMHA/TDT exhibit a high brightness (QY ∼ 6%) in the shortwave infrared (SWIR) spectrum with a detection above 1250 nm. Furthermore, they show an extended half-life in blood ( = 19.54 ± 0.05 h) and a very weak accumulation in organs. We also developed a non-invasive, whole-body vascular imaging system in the SWIR window with high-resolution, benefiting from a series of Monte Carlo image processing. The imaging process enabled to improve contrast by 1 order of magnitude and enhance the spatial resolution by 59%. After systemic administration of these nanoprobes in mice, we can quantify vessel complexity in depth (>4 mm), allowing to detect very subtle vascular disorders non-invasively in bone morphogenetic protein 9 ()-deficient mice. The combination of these anisotropic surface charged Au NCs plus an improved SWIR imaging device allows a precise mapping at high-resolution and an in depth understanding of the organization of the vascular network in live animals.

摘要

我们合成了一代具有各向异性表面且含有短二硫醇聚乙二醇化链的水溶性、原子精确的金纳米簇(Au NCs)(AuMHA/TDT)。AuMHA/TDT在短波红外(SWIR)光谱中表现出高亮度(量子产率约为6%),检测波长高于1250nm。此外,它们在血液中的半衰期延长(t1/2 = 19.54 ± 0.05 h),在器官中的积累非常少。我们还利用一系列蒙特卡罗图像处理技术,开发了一种在SWIR窗口中具有高分辨率的非侵入性全身血管成像系统。该成像过程能够将对比度提高1个数量级,并将空间分辨率提高59%。在小鼠全身注射这些纳米探针后,我们可以定量深度大于4mm的血管复杂性,从而能够在骨形态发生蛋白9(BMP9)缺陷小鼠中无创检测非常细微的血管疾病。这些具有各向异性表面电荷的Au NCs与改进的SWIR成像设备相结合,能够在高分辨率下进行精确映射,并深入了解活体动物血管网络的组织情况。

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