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基于荧光共振能量转移的小分子荧光探针:合理设计与生物成像应用。

FRET-based small-molecule fluorescent probes: rational design and bioimaging applications.

机构信息

State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha, Hunan 410082, People's Republic of China.

出版信息

Acc Chem Res. 2013 Jul 16;46(7):1462-73. doi: 10.1021/ar300273v. Epub 2013 Feb 18.

Abstract

Fluorescence imaging has emerged as a powerful tool for monitoring biomolecules within the context of living systems with high spatial and temporal resolution. Researchers have constructed a large number of synthetic intensity-based fluorescent probes for bio-imaging. However, intensity-based fluorescent probes have some limitations: variations in probe concentration, probe environment, and excitation intensity may influence the fluorescence intensity measurements. In principle, the use of ratiometric fluorescent probes can alleviate this shortcoming. Förster resonance energy transfer (FRET) is one of the most widely used sensing mechanisms for ratiometric fluorescent probes. However, the development of synthetic FRET probes with favorable photophysical properties that are also suitable for biological imaging applications remains challenging. In this Account, we review the rational design and biological applications of synthetic FRET probes, focusing primarily on studies from our laboratory. To construct useful FRET probes, it is a pre-requisite to develop a FRET platform with favorable photophysical properties. The design criteria of a FRET platform include (1) well-resolved absorption spectra of the donor and acceptor, (2) well-separated emission spectra of the donor and acceptor, (3) donors and acceptors with comparable brightness, (4) rigid linkers, and (5) near-perfect efficiency in energy transfer. With an efficient FRET platform in hand, it is then necessary to modulate the donor-acceptor distance or spectral overlap integral in an analyte-dependent fashion for development of FRET probes. Herein, we emphasize our most recent progress on the development of FRET probes by spectral overlap integral, in particular by changing the molar absorption coefficient of the donor dyes such as rhodamine dyes, which undergo unique changes in the absorption profiles during the ring-opening and -closing processes. Although partial success has been obtained in design of first-generation rhodamine-based FRET probes via modulation of acceptor molar absorption coefficient, further improvements in terms of versatility, sensitivity, and synthetic accessibility are required. To address these issues with the first-generation rhodamine-based FRET probes, we have proposed a strategy for the design of second-generation probes. As a demonstration, we have developed FRET imaging probes for diverse targets including Cu²⁺, NO, HOCl, cysteine, and H₂O₂. This discussion of the methods for successfully designing synthetic FRET probes underscores the rational basis for further development of new FRET probes as a molecular toolbox for probing and manipulating a wide variety of biomolecules in living systems.

摘要

荧光成像是一种强大的工具,可用于以高时空分辨率监测活系统内的生物分子。研究人员构建了大量用于生物成像的基于强度的合成荧光探针。然而,基于强度的荧光探针存在一些局限性:探针浓度、探针环境和激发强度的变化可能会影响荧光强度测量。原则上,使用比率荧光探针可以缓解这一缺点。Förster 共振能量转移(FRET)是比率荧光探针最广泛使用的传感机制之一。然而,开发具有良好光物理性质且适用于生物成像应用的合成 FRET 探针仍然具有挑战性。在本报告中,我们回顾了合成 FRET 探针的合理设计和生物学应用,主要集中在我们实验室的研究。为了构建有用的 FRET 探针,开发具有良好光物理性质的 FRET 平台是先决条件。FRET 平台的设计标准包括(1)供体和受体具有良好分辨的吸收光谱,(2)供体和受体具有良好分离的发射光谱,(3)供体和受体具有相当的亮度,(4)刚性连接体,以及(5)能量转移的近乎完美效率。有了高效的 FRET 平台,然后有必要以分析物依赖的方式调节供体-受体距离或光谱重叠积分,以开发 FRET 探针。在此,我们强调我们在通过光谱重叠积分,特别是通过改变罗丹明染料等供体染料的摩尔消光系数方面开发 FRET 探针方面的最新进展,罗丹明染料在开环和闭环过程中吸收光谱会发生独特的变化。尽管通过调节受体摩尔消光系数成功设计了第一代基于罗丹明的 FRET 探针,但在多功能性、灵敏度和合成可及性方面还需要进一步改进。为了解决第一代基于罗丹明的 FRET 探针的这些问题,我们提出了设计第二代探针的策略。作为一个演示,我们开发了用于多种靶标的 FRET 成像探针,包括 Cu²⁺、NO、HOCl、半胱氨酸和 H₂O₂。对成功设计合成 FRET 探针方法的讨论突出了进一步开发新的 FRET 探针作为探测和操纵活系统中各种生物分子的分子工具包的合理基础。

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