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基于聚集诱导发光纳米探针的近红外余晖发光用于肿瘤成像和图像引导的肿瘤切除。

Preparation of AIEgen-based near-infrared afterglow luminescence nanoprobes for tumor imaging and image-guided tumor resection.

机构信息

Frontiers Science Center for Cell Responses, State Key Laboratory of Medicinal Chemical Biology, Key Laboratory of Bioactive Materials, Ministry of Education, and College of Life Sciences, Nankai University, Tianjin, China.

State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Luminescence from Molecular Aggregates, School of Materials Science and Engineering, South China University of Technology, Guangzhou, P. R. China.

出版信息

Nat Protoc. 2024 Aug;19(8):2408-2434. doi: 10.1038/s41596-024-00990-4. Epub 2024 Apr 18.

Abstract

Fluorescence imaging represents a vital tool in modern biology, oncology and biomedical applications. Afterglow luminescence (AGL), which circumvents the light scattering and tissue autofluorescence interference associated with real-time excitation source, shows remarkably increased imaging sensitivity and depth. Here we present a protocol for the design and synthesis of AGL nanoprobes with an aggregation-induced emission (AIE) effect to simultaneously red shift and amplify the afterglow signal for tumor imaging and image-guided tumor resection. The nanoprobe (AGL AIE dot) is composed of an enol ether format of Schaap's agent and a near-infrared AIE fluorogen (AIEgen) (tetraphenylethylene-phenyl-dicyanomethylene-4H-chromene, TPE-Ph-DCM) to suppress the nonradiative dissipation pathway. Pre-irradiating AGL AIE dots with white light could generate singlet oxygen to convert Schaap's agent to its 1,2-dioxetane format, thus initializing the AGL process. With the aid of AIEgen, the AGL shows simultaneously red shifted emission maximum (from ~540 nm to ~625 nm) and enhanced intensity (by 3.2-fold), facilitating better signal-to-background ratio, imaging sensitivity and depth. Intriguingly, the activated AGL can last for over 10 days. Compared with conventional approaches, our method provides a new solution to concurrently red shift and amplify afterglow signals for better in vivo imaging outcomes. The preparation of AGL AIE dots takes ~2 days, the in vitro characterization takes ~10 days (less than 1 day if not involving afterglow kinetic profile study) and the tumor imaging and image-guided tumor resection takes ~7 days. These procedures can be easily reproduced and amended after standard laboratory training in chemical synthesis and animal handling.

摘要

荧光成像是现代生物学、肿瘤学和生物医学应用中至关重要的工具。余晖发光(AGL)克服了与实时激发源相关的光散射和组织自发荧光干扰,显示出显著提高的成像灵敏度和深度。在这里,我们提出了一种设计和合成具有聚集诱导发射(AIE)效应的 AGL 纳米探针的方案,该探针可同时红移并放大余晖信号,用于肿瘤成像和图像引导的肿瘤切除。纳米探针(AGL AIE 点)由 Schaap 试剂的烯醇醚形式和近红外 AIE 荧光团(四苯乙烯-苯基-二氰基乙烯-4H-色烯,TPE-Ph-DCM)组成,以抑制非辐射耗散途径。用白光预辐照 AGL AIE 点可以产生单线态氧,将 Schaap 试剂转化为 1,2-二氧杂环乙烷形式,从而启动 AGL 过程。在 AIEgen 的辅助下,AGL 显示出同时红移的发射最大值(从540nm 到625nm)和增强的强度(增加 3.2 倍),有利于更好的信噪比、成像灵敏度和深度。有趣的是,激活的 AGL 可以持续超过 10 天。与传统方法相比,我们的方法为同时红移和放大余晖信号提供了一种新的解决方案,以获得更好的体内成像结果。AGL AIE 点的制备需要2 天,体外表征需要10 天(如果不涉及余晖动力学曲线研究,则不到 1 天),肿瘤成像和图像引导的肿瘤切除需要~7 天。在经过化学合成和动物处理的标准实验室培训后,这些程序可以轻松复制和修改。

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