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一种独特的“整合”策略,用于合理设计光学可调近红外荧光团。

A Unique "Integration" Strategy for the Rational Design of Optically Tunable Near-Infrared Fluorophores.

机构信息

State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University , Changsha, Hunan 410082, P. R. China.

Institute of Fluorescent Probes for Biological Imaging, School of Chemistry and Chemical Engineering, School of Materials Science and Engineering, University of Jinan , Jinan, Shandong 250022, P.R. China.

出版信息

Acc Chem Res. 2017 Jun 20;50(6):1410-1422. doi: 10.1021/acs.accounts.7b00087. Epub 2017 May 11.

Abstract

Fluorescence imaging is a rapidly growing technique for noninvasive imaging of biological molecules and processes with high spatial and temporal resolution. For effective biological imaging, it is essential and important to develop robust fluorescent dyes, in particular, near-infrared (NIR) fluorescent dyes with favorable optical properties. Compared with the visible light emitting dyes, NIR dyes have relatively longer emission wavelengths (650-900 nm) with lower energy and are advantageous as imaging agents owing to the minimum photodamage of NIR light to biological samples, deep penetration into tissues, and low interference from autofluorescence of biomolecules. Although great efforts have been devoted to engineer NIR fluorophores, it is still very challenging to regulate their photophysical properties as they often lack optically tunable mechanisms, and this shortcoming considerably restricts the realization of their full potential. Consequently, the rational design of small-molecule optically tunable NIR fluorophores is of high priority and great value. In general, two key characteristics are indispensable for designing excellent optically tunable NIR fluorescent dyes. First, NIR fluorescent dyes should display the maximal absorption and emission located in the NIR region and also have the prominent properties including excellent fluorescence quantum yields, large Stokes shifts, good chemical stability and photostability, low cytotoxicity, and desirable compatibility with biological systems. Second, in principle, functional NIR dyes should also possess optically tunable groups, which can be easily modified to afford responsive sites for the targets of interest. With these considerations in mind, in this Account, we described a unique "integration" strategy for judicious design of the optically tunable NIR fluorophores, which are an intuitive combination of the traditional NIR dyes and the optically tunable mechanisms in the visible light emissive dyes. Thus, the versatile strategy may allow not only retention of the NIR emission properties of NIR dyes but also inheritance of the optically tunable mechanisms from the visible light emissive dyes. By the unique integration strategy, a built-in optically tunable group is strategically installed into the traditional NIR fluorescent dyes to directly tune their optical properties. Herein, we present a concise review of the rational design strategy and biological applications of small-molecule optically tunable NIR fluorescent dyes via the unique integration strategy, and we focused mainly on our work and some representative examples from other groups based on our NIR platforms. This Account includes the detailed integration strategy of each class of the NIR fluorescent dyes, the development of their derivatives, and their imaging applications in living systems.

摘要

荧光成像是一种快速发展的技术,可用于对具有高时空分辨率的生物分子和过程进行非侵入性成像。为了进行有效的生物成像,开发具有良好光学性质的稳健荧光染料至关重要,特别是近红外(NIR)荧光染料。与可见光发射染料相比,NIR 染料具有相对较长的发射波长(650-900nm)和较低的能量,由于 NIR 光对生物样本的光损伤最小、能够深入组织以及对生物分子的自发荧光干扰较小,因此它们作为成像剂具有优势。尽管已经付出了巨大努力来设计 NIR 荧光团,但由于它们通常缺乏光学可调谐机制,因此仍然很难调节它们的光物理性质,这一缺点极大地限制了它们潜力的充分实现。因此,合理设计小分子光学可调谐 NIR 荧光团具有高度的优先级和重要价值。一般来说,设计优秀的光学可调谐 NIR 荧光染料需要具备两个关键特征。首先,NIR 荧光染料应具有位于 NIR 区域的最大吸收和发射,并且还应具有出色的荧光量子产率、大斯托克斯位移、良好的化学稳定性和光稳定性、低细胞毒性以及与生物系统良好的相容性等突出性能。其次,原则上,功能 NIR 染料还应具有光学可调谐基团,这些基团可以轻松修饰以提供感兴趣的靶标的响应性位点。考虑到这些因素,在本综述中,我们描述了一种用于设计光学可调谐 NIR 荧光团的独特“集成”策略,这是传统 NIR 染料和可见光发射染料中光学可调谐机制的直观组合。因此,这种多功能策略不仅可以保留 NIR 染料的 NIR 发射特性,还可以继承来自可见光发射染料的光学可调谐机制。通过独特的集成策略,将内置的光学可调谐基团战略性地安装到传统的 NIR 荧光染料中,以直接调节它们的光学性质。在此,我们通过独特的集成策略,简要综述了小分子光学可调谐 NIR 荧光染料的合理设计策略和生物应用,并主要集中在我们基于 NIR 平台的工作和其他小组的一些有代表性的例子上。本综述包括每一类 NIR 荧光染料的详细集成策略、它们的衍生物的开发以及它们在活系统中的成像应用。

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