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Next-Generation DNA Curtains for Single-Molecule Studies of Homologous Recombination

机译:用于同源重组的单分子研究的下一代DNA窗帘

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摘要

Homologous recombination (HR) is a universally conserved DNA double-strand break repair pathway. Single-molecule fluorescence imaging approaches have revealed new mechanistic insights into nearly all aspects of HR. These methods are especially suited for studying protein complexes because multicolor fluorescent imaging can parse out subassemblies and transient intermediates that associate with the DNA substrates on the millisecond to hour timescales. However, acquiring single-molecule datasets remains challenging because most of these approaches are designed to measure one molecular reaction at a time. The DNA curtains platform facilitates high-throughput single-molecule imaging by organizing arrays of DNA molecules on the surface of a microfluidic flowcell. Here, we describe a second-generation UV lithography-based protocol for fabricating flowcells for DNA curtains. This protocol greatly reduces the challenges associated with assembling DNA curtains and paves the way for the rapid acquisition of large datasets from individual single-molecule experiments. Drawing on our recent studies of human HR, we also provide an overview of how DNA curtains can be used for observing facilitated protein diffusion, processive enzyme translocation, and nucleoprotein filament dynamics on single-stranded DNA. Together, these protocols and case studies form a comprehensive introduction for other researchers that may want to adapt DNA curtains for high-throughput single-molecule studies of DNA replication, transcription, and repair.
机译:同源重组(HR)是一种普遍保守的DNA双链断裂修复途径。单分子荧光成像方法已经揭示了对HR几乎所有方面的新机制。这些方法特别适合研究蛋白质复合物,因为多色荧光成像可以在毫秒到小时的时间尺度上解析出与DNA底物相关的子组件和瞬时中间体。但是,获取单分子数据集仍然具有挑战性,因为大多数这些方法旨在一次测量一个分子反应。 DNA帘式平台通过组织微流体流通池表面上的DNA分子阵列,促进了高通量单分子成像。在这里,我们描述了用于制造DNA窗帘的流通池的基于第二代UV光刻的协议。该协议极大地减少了组装DNA帘的挑战,并为从单个单分子实验中快速获取大型数据集铺平了道路。借助我们对人类HR的最新研究,我们还概述了如何使用DNA帘观察单链DNA上的促进的蛋白质扩散,过程性酶易位以及核蛋白丝动力学。这些协议和案例研究共同构成了其他研究人员的全面介绍,这些研究人员可能希望将DNA帘幕用于DNA复制,转录和修复的高通量单分子研究。

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