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首页> 外文期刊>European Biophysics Journal >Fluorescence-based monitoring of electronic state and ion exchange kinetics with FCS and related techniques: from T-jump measurements to fluorescence fluctuations
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Fluorescence-based monitoring of electronic state and ion exchange kinetics with FCS and related techniques: from T-jump measurements to fluorescence fluctuations

机译:基于荧光的电子状态和离子交换动力学监测与FCS和相关技术:从T跳测量到荧光波动

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In this review, we give a historical view of how our research in the development and use of fluorescence correlation spectroscopy (FCS) and related techniques has its roots and how it originally evolved from the pioneering work of Manfred Eigen, his colleagues, and coworkers. Work on temperature-jump (T-jump) experiments, conducted almost 50?years ago, led on to the development of the FCS technique. The pioneering work in the 1970s, introducing and demonstrating the concept for FCS, in turn formed the basis for the breakthrough use of FCS more than 15?years later. FCS can be used for monitoring reaction kinetics, based on fluctuations at thermodynamic equilibrium, rather than on relaxation measurements following perturbations. In this review, we more specifically discuss FCS measurements on photodynamic, electronic state transitions in fluorophore molecules, and on proton exchange dynamics in solution and on biomembranes. In the latter case, FCS measurements have proven capable of casting new light on the mechanisms of proton exchange at biological membranes, of central importance to bioenergetics and signal transduction. Finally, we describe the transient-state (TRAST) spectroscopy/imaging technique, sharing features with both relaxation (T-jump) and equilibrium fluctuation (FCS) techniques. TRAST is broadly applicable for cellular and molecular studies, and we briefly outline how TRAST can provide unique information from fluorophore blinking kinetics, reflecting e.g., cellular metabolism, rare molecular encounters, and molecular stoichiometries.
机译:在这篇综述中,我们对如何在荧光相关光谱(FCS)和相关技术的开发和使用的研究有关的历史迹象表明,它的根源以及它最初是如何从曼弗雷德·特根,他的同事和同事的开创性工作演变的。在几年前进行的温度跳跃(T-jump)实验的工作,导致FCS技术的开发。在20世纪70年代的开拓工作,介绍和展示FCS的概念,反过来形成了FCS超过15的突破性使用的基础。 FCS可用于监测反应动力学,基于热力学平衡的波动,而不是在扰动后的放松测量。在本次综述中,我们更具体地讨论FCS对荧光团分子中的光动力学,电子状态转变的测量,以及溶液和生物膜上的质子交换动力学。在后一种情况下,FCS测量能够探讨能够对生物膜的质子交换机制施放新光,对生物膜的核心性和信号转导。最后,我们描述了瞬态状态(TRAST)光谱/成像技术,具有弛豫(T-跳跃)和平衡波动(FCS)技术的共享特征。遗传术广义适用于细胞和分子研究,我们简要概述了三曲面如何提供来自荧光团闪烁动力学的独特信息,反映例如细胞代谢,稀有分子遇到和分子化学计量。

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