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无约束宽场比率荧光分子单分子跟踪。

Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules.

机构信息

Biological Physics Research Group, Clarendon Laboratory, Department of Physics, University of Oxford, Oxford, United Kingdom.

Biological Physics Research Group, Clarendon Laboratory, Department of Physics, University of Oxford, Oxford, United Kingdom.

出版信息

Biophys J. 2019 Dec 3;117(11):2141-2153. doi: 10.1016/j.bpj.2019.10.033. Epub 2019 Oct 31.

Abstract

Single-molecule fluorescence has been highly instrumental in elucidating interactions and dynamics of biological molecules in the past two decades. Single-molecule fluorescence experiments usually rely on one of two detection geometries, either confocal point-detection or wide-field area detection, typically in a total internal reflection fluorescence (TIRF) format. However, each of these techniques suffers from fundamental drawbacks that limit their application. In this work, we present a new technique, solution wide-field imaging (SWiFi) of diffusing molecules, as an alternative to the existing methods. SWiFi is a simple extension to existing objective-type TIRF microscopes that allows wide-field observations of fast-diffusing molecules down to single fluorophores without the need of tethering the molecules to the surface. We demonstrate that SWiFi enables high-throughput ratiometric measurements with several thousands of individual data points per minute on double-stranded DNA standard (dsDNA) samples containing Förster resonance energy transfer pairs. We further display the capabilities of SWiFi by reporting on mobility and ratiometric characterization of fluorescent nanodiamonds, DNA Holliday junctions, and protein-DNA interactions. The ability of SWiFi for high-throughput, ratiometric measurements of fast-diffusing species renders it a valuable tool for the single-molecule research community by bridging between confocal and TIRF detection geometries in a simple and efficient way.

摘要

单分子荧光技术在过去二十年中对于阐明生物分子的相互作用和动力学过程起到了至关重要的作用。单分子荧光实验通常依赖于两种检测几何结构中的一种,即共焦点探测或全内反射荧光(TIRF)格式的宽场区域探测。然而,这些技术中的每一种都存在着限制其应用的固有缺陷。在这项工作中,我们提出了一种新的技术,即扩散分子的溶液宽场成像(SWiFi),作为现有方法的替代方法。SWiFi 是对现有物镜型 TIRF 显微镜的简单扩展,允许对快速扩散的分子进行宽场观察,即使不将分子固定在表面上,也可以达到单荧光团的水平。我们证明了 SWiFi 能够实现高通量的比率测量,每分钟对包含Förster 共振能量转移对的双链 DNA 标准(dsDNA)样品进行几千个单独数据点的测量。我们进一步通过报告荧光纳米金刚石、DNA 霍利迪结和蛋白质-DNA 相互作用的迁移率和比率特征来展示 SWiFi 的能力。SWiFi 具有高通量、快速扩散物种比率测量的能力,通过简单高效的方式在共焦和 TIRF 检测几何结构之间架起了桥梁,因此成为单分子研究界的一种有价值的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6b2/6895709/ca3ef7d49fd2/gr1.jpg

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