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基于 Eu(iii) 配合物-MnO 纳米片纳米复合材料的双模纳米探针,用于谷胱甘肽的时间门控荧光-磁共振成像的体外和体内研究。

A dual-modal nanoprobe based on Eu(iii) complex-MnO nanosheet nanocomposites for time-gated luminescence-magnetic resonance imaging of glutathione in vitro and in vivo.

机构信息

State Key Laboratory of Fine Chemicals, School of Chemistry, Dalian University of Technology, Dalian 116024, P. R. China.

出版信息

Nanoscale. 2019 Apr 4;11(14):6784-6793. doi: 10.1039/c9nr00838a.

DOI:10.1039/c9nr00838a
PMID:30907913
Abstract

Dual-modal fluorescence-magnetic resonance imaging (MRI) techniques have gained great interest in biomedical research and clinical practice, since they integrate the advantages of both imaging techniques and provide a useful approach to simultaneously investigate both molecular and anatomical information at the same biological structures. Herein, we report the construction of a dual-modal time-gated luminescence (TGL)/MRI nanoprobe, BHHBB-Eu3+@MnO2, for glutathione (GSH) by anchoring luminescent β-diketone-Eu3+ complexes on layered MnO2 nanosheets. The fabricated nanoprobe exhibited very week luminescence and MR signals since the luminescence of the Eu3+ complex was quenched by MnO2 nanosheets and Mn atoms were isolated from water. Upon exposure to GSH, the MnO2 nanosheets were rapidly and selectively reduced to Mn2+ ions, resulting in remarkable enhancements of TGL and MR signals simultaneously. The combination of TGL and MR detection modes enables the nanoprobe to be used for detecting GSH in a wide concentration range (1-1000 μM) and imaging GSH at different resolutions and depths ranging from the subcellular level to the whole body. Furthermore, the as-prepared nanoprobe exhibited a low cytotoxicity and good biocompatibility, rapid response rate, long-lived luminescence, and high sensitivity and selectivity for responding to GSH. These features allowed it to be successfully used for the TGL detection of GSH in human sera, TGL imaging of GSH in living cells and zebrafish, as well as dual-modal TGL/MR imaging of GSH in tumor-bearing mice. All of these results highlighted the applicability and advantages of the nanoprobe for detecting GSH in vitro and in vivo.

摘要

双模荧光-磁共振成像(MRI)技术在生物医学研究和临床实践中引起了极大的兴趣,因为它们集成了两种成像技术的优势,并提供了一种有用的方法来同时研究同一生物结构的分子和解剖学信息。在这里,我们报告了一种双模时间门控发光(TGL)/MRI 纳米探针 BHHBB-Eu3+@MnO2 的构建,用于通过将发光β-二酮-Eu3+配合物锚定在层状 MnO2 纳米片上来检测谷胱甘肽(GSH)。由于 MnO2 纳米片和 Mn 原子将 Eu3+配合物的荧光猝灭并将其与水隔离,因此所制备的纳米探针表现出非常弱的发光和 MR 信号。当暴露于 GSH 时,MnO2 纳米片迅速且选择性地被还原为 Mn2+离子,从而同时显著增强 TGL 和 MR 信号。TGL 和 MR 检测模式的结合使得该纳米探针能够用于检测 1-1000 μM 范围内的 GSH,并以从亚细胞水平到全身的不同分辨率和深度进行 GSH 成像。此外,所制备的纳米探针表现出低细胞毒性和良好的生物相容性、快速响应速率、长寿命发光以及对 GSH 响应的高灵敏度和选择性。这些特性使其能够成功用于人血清中 GSH 的 TGL 检测、活细胞和斑马鱼中 GSH 的 TGL 成像以及荷瘤小鼠中 GSH 的双模 TGL/MR 成像。所有这些结果都突出了该纳米探针在体外和体内检测 GSH 的适用性和优势。

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