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一种基于不对称方酸菁的可激活探针,通过多光谱光声断层成像(MSOT)响应肿瘤缺氧并结合聚集增强荧光成像来实现淋巴转移成像。

An Unsymmetrical Squaraine-Based Activatable Probe for Imaging Lymphatic Metastasis by Responding to Tumor Hypoxia with MSOT and Aggregation-Enhanced Fluorescent Imaging.

作者信息

Lin Yi, Sun Lihe, Zeng Fang, Wu Shuizhu

机构信息

State Key Laboratory of Luminescent Materials and Devices, Key Laboratory of Luminescence from Molecular Aggregates of, Guangdong Province, College of Materials Science and Engineering, South China University of Technology, Wushan Road 381, Guangzhou, 510640, P. R. China.

出版信息

Chemistry. 2019 Dec 20;25(72):16740-16747. doi: 10.1002/chem.201904675. Epub 2019 Dec 5.

Abstract

Optoacoustic imaging has great potential for preclinical research and clinical practice, and designing robust activatable optoacoustic probes for specific diseases is beneficial for its further development. Herein, an activatable probe has been developed for tumor hypoxia imaging. For this probe, indole and quinoline were linked on each side of an oxocyclobutenolate core to form an unsymmetrical squaraine. A triarylamine group was incorporated to endow the molecule with the aggregation enhanced emission (AEE) properties. In aqueous media, the squaraine chromophore aggregates into the nanoprobe, which specifically responds to nitroreductase and produces strong optoacoustic signals due to its high extinction coefficient, as well as prominent fluorescence emission as a result of its AEE feature. The nanoprobe was used to image tumor metastasis via the lymphatic system both optoacoustically and fluorescently. Moreover, both the fluorescence signals and three-dimensional multispectral optoacoustic tomography signals from the activated nanoprobe allow us to locate the tumor site and to map the metastatic route.

摘要

光声成像在临床前研究和临床实践中具有巨大潜力,设计针对特定疾病的强大可激活光声探针有利于其进一步发展。在此,已开发出一种用于肿瘤缺氧成像的可激活探针。对于该探针,吲哚和喹啉连接在氧代环丁烯酸酯核心的两侧,形成不对称方酸菁。引入三芳基胺基团以使分子具有聚集诱导发光(AEE)特性。在水性介质中,方酸菁发色团聚集形成纳米探针,该纳米探针特异性响应硝基还原酶,并由于其高消光系数而产生强烈的光声信号,同时由于其AEE特性而发出显著的荧光。该纳米探针用于通过淋巴系统对肿瘤转移进行光声和荧光成像。此外,来自激活的纳米探针的荧光信号和三维多光谱光声断层扫描信号都使我们能够定位肿瘤部位并绘制转移路径。

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