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Combining optical trapping, fluorescence microscopy and micro-fluidics for single molecule studies of DNA-protein interactions

机译:结合光学捕获,荧光显微镜和微流控技术对DNA-蛋白质相互作用进行单分子研究

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摘要

Complexity and heterogeneity are common denominators of the many molecular events taking place inside the cell. Single-molecule techniques are important tools to quantify the actions of biomolecules. Heterogeneous interactions between multiple proteins, however, are difficult to study with these technologies. One solution is to integrate optical trapping with micro-fluidics and single-molecule fluorescence microscopy. This combination opens the possibility to study heterogeneous/complex protein interactions with unprecedented levels of precision and control. It is particularly powerful for the study of DNA-protein interactions as it allows manipulating the DNA while at the same time, individual proteins binding to it can be visualized. In this work, we aim to illustrate several published and unpublished key results employing the combination of fluorescence microscopy and optical tweezers. Examples are recent studies of the structural properties of DNA and DNA-protein complexes, the molecular mechanisms of nucleo-protein filament assembly on DNA and the motion of DNA-bound proteins. In addition, we present new results demonstrating that single, fluorescently labeled proteins bound to individual, optically trapped DNA molecules can already be tracked with localization accuracy in the sub-10 nm range at tensions above 1 pN. These experiments by us and others demonstrate the enormous potential of this combination of single-molecule techniques for the investigation of complex DNA-protein interactions.
机译:复杂性和异质性是细胞内发生的许多分子事件的共同特征。单分子技术是量化生物分子作用的重要工具。但是,使用这些技术很难研究多种蛋白质之间的异质相互作用。一种解决方案是将光阱与微流控和单分子荧光显微镜相集成。这种结合为研究异质/复杂蛋白质相互作用提供了可能性,具有前所未有的精确度和控制水平。它对DNA-蛋白质相互作用的研究特别强大,因为它可以操纵DNA,同时可以看到与其结合的单个蛋白质。在这项工作中,我们旨在说明结合荧光显微镜和光学镊子的几种已发表和未发表的关键结果。例如,有关DNA和DNA-蛋白质复合物的结构特性,DNA上核蛋白丝组装的分子机制以及DNA结合蛋白的运动的最新研究。此外,我们提供了新的结果,证明与单个光学捕获的DNA分子结合的单个荧光标记蛋白已经可以以高于10 pN的张力在10 nm以下的范围内以定位精度进行追踪。我们和其他人的这些实验证明了这种单分子技术组合的巨大潜力,可用于研究复杂的DNA-蛋白质相互作用。

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