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Automated System for Single Molecule Fluorescence Measurements of Surface-immobilized Biomolecules

机译:表面固定化生物分子单分子荧光测量的自动化系统

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摘要

Fluorescence Resonance Energy Transfer (FRET) microscopy has been widely used to study the structure and dynamics of molecules of biological interest, such as nucleic acids and proteins. Single molecule FRET (sm-FRET) measurements on immobilized molecules permit long observations of the system -effectively until both dyes photobleach- resulting in time-traces that report on biomolecular dynamics with a broad range of timescales from milliseconds to minutes. To facilitate the acquisition of large number of traces for statistical analyses, the process must be automated and the sample environment should be tightly controlled over the entire measurement time (~12 hours). This is accomplished using an automated scanning confocal microscope that allows the interrogation of thousands of single molecules overnight, and a microfluidic cell that permits the controlled exchange of buffer, with restricted oxygen content and maintains a constant temperature throughout the entire measuring period. Here we show how to assemble the microfluidic device and how to activate its surface for DNA immobilization. Then we explain how to prepare a buffer to maximize the photostability and lifetime of the fluorophores. Finally, we show the steps involved in preparing the setup for the automated acquisition of time-resolved single molecule FRET traces of DNA molecules.
机译:荧光共振能量转移(FRET)显微镜已广泛用于研究具有生物学意义的分子(例如核酸和蛋白质)的结构和动力学。固定分子上的单分子FRET(sm-FRET)测量允许对系统进行长时间观察-有效地直到两种染料都发生光漂白-导致时间迹线报告了从几毫秒到几分钟的大范围的生物分子动力学。为了便于获取大量痕迹以进行统计分析,必须使过程自动化,并且在整个测量时间内(〜12小时)应严格控制样品环境。这是使用自动扫描共聚焦显微镜完成的,该显微镜可以在一夜之间询问成千上万的单个分子,而微流控池则可以控制缓冲液的交换,同时限制氧含量,并在整个测量期间保持恒定的温度。在这里,我们展示了如何组装微流体设备以及如何激活其表面以固定DNA。然后,我们解释了如何准备一个缓冲液以最大化荧光团的光稳定性和寿命。最后,我们展示了准备用于自动采集时间分辨的单分子FRET DNA分子痕迹的设置步骤。

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