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用于时间门控荧光生物传感和成像的响应性金属配合物探针。

Responsive Metal Complex Probes for Time-Gated Luminescence Biosensing and Imaging.

机构信息

Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, St. Lucia, Queensland 4072, Australia.

State Key Laboratory of Fine Chemicals, Department of Chemistry, Dalian University of Technology, Dalian 116024, China.

出版信息

Acc Chem Res. 2020 Jul 21;53(7):1316-1329. doi: 10.1021/acs.accounts.0c00172. Epub 2020 Jun 23.

Abstract

The development of reliable bioanalytical probes for selective and sensitive detection of particular analytes in biological systems is essential for better understanding the roles of the analytes in their native contexts. In the last two decades, luminescent metal complexes have greatly contributed to the development of such probes for biosensing and imaging due to their unique spectral and temporal properties, controllable cell membrane permeability, and cytotoxicity. Conjugating an analyte-activatable moiety to the metal complex luminophores allows the production of responsive metal complex probes for this analyte detection. Owing to their long-lifetime emissions, the responsive metal complex probes are accessible to the technique of time-gated luminescence (TGL) detection and imaging. With a delay time after pulsed excitation, the TGL technique allows for collection of only long-lived luminescence from responsive metal complex probes, while filtering out short-lived background autofluorescence, providing a background-free approach for the detection and imaging of the analyte at subcellular and/or molecular levels. Responsive metal complex probes, therefore, have emerged as complementary sensing and imaging tools of organic dye-based fluorescent probes for the in situ detection of analytes in complicated biological environments.In this Account, we describe the advances in the development of metal complex probes and their applications for TGL bioassays with particular focus on our efforts made in this field. We first introduce the photophysical/-chemical properties of luminescent metal complexes, including lanthanide (europium and terbium) and transition metal (ruthenium and iridium) complexes. The luminescence lifetimes (τ) of lanthanide and transition metal complexes are at micro/millisecond (μs/ms) and hundreds/thousands nanosecond (ns) levels, respectively. The emission lifetimes are significantly longer than the autofluorescence lifetime (τ < 10 ns) of biological samples. Such long-lived luminescence of these metal complexes enables our research on demonstrating responsive probes for background-free TGL detection of some reactive biomolecules, such as reactive oxygen/nitrogen species (ROS/RNS) and biothiols.We conclude this Account by outlining the future directions to further develop new generation responsive TGL probes for promoting their practical applications. The responsive TGL probes are expected to be translated for biomedical and/or (pre)clinical investigations of biomolecules in situ. Reversibility, lower toxicity, ability of excitation at longer wavelength, and potential to be translated are key criteria for the development of next-generation probes. We also anticipate that further development of responsive TGL probes will contribute to the bioassay in more challenging biological systems, such as plants that have significant higher background autofluorescence than animals.

摘要

发展用于在生物系统中选择性和灵敏地检测特定分析物的可靠生物分析探针对于更好地理解分析物在其天然环境中的作用至关重要。在过去的二十年中,由于其独特的光谱和时间特性、可控的细胞膜通透性和细胞毒性,发光金属配合物极大地促进了生物传感和成像中此类探针的发展。将分析物激活部分缀合到金属配合物发光体上,可以制备用于该分析物检测的响应性金属配合物探针。由于其长寿命发射,响应性金属配合物探针可用于时间门控荧光(TGL)检测和成像技术。在脉冲激发后延迟一段时间后,TGL 技术仅允许收集来自响应性金属配合物探针的长寿命荧光,同时滤除短寿命背景自发荧光,为亚细胞和/或分子水平的分析物检测和成像提供无背景的方法。因此,响应性金属配合物探针已成为基于有机染料的荧光探针原位检测复杂生物环境中分析物的互补传感和成像工具。

在本报告中,我们描述了金属配合物探针的发展及其在 TGL 生物测定中的应用方面的进展,特别强调了我们在该领域的努力。我们首先介绍了发光金属配合物的光物理/-化学性质,包括镧系元素(铕和铽)和过渡金属(钌和铱)配合物。镧系元素和过渡金属配合物的荧光寿命(τ)分别为微/毫秒(μs/ms)和数百/数千纳秒(ns)。发射寿命明显长于生物样品的自发荧光寿命(τ<10 ns)。这些金属配合物的长寿命荧光使我们能够研究用于一些反应性生物分子(如活性氧/氮物种(ROS/RNS)和生物硫醇)的无背景 TGL 检测的响应性探针。

我们通过概述进一步开发新一代响应性 TGL 探针以促进其实用化的未来方向来结束本报告。有望将响应性 TGL 探针转化为用于原位检测生物分子的生物医学和/或(临床前)研究。可逆性、低毒性、在较长波长激发的能力和转化的潜力是开发下一代探针的关键标准。我们还预计,响应性 TGL 探针的进一步发展将有助于更具挑战性的生物系统中的生物测定,例如植物的背景自发荧光比动物高得多。

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