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横向磁场镊允许在水平伸展的 DNA 上进行共焦荧光显微镜观察。

Transverse Magnetic Tweezers Allowing Coincident Epi-Fluorescence Microscopy on Horizontally Extended DNA.

机构信息

Department of Biology, University of York, York, UK.

出版信息

Methods Mol Biol. 2022;2476:75-93. doi: 10.1007/978-1-0716-2221-6_7.

Abstract

Longitudinal magnetic tweezers (L-MT) have seen wide-scale adoption as the tool of choice for stretching and twisting a single DNA molecule. They are also used to probe topological changes in DNA as a result of protein binding and enzymatic activity. However, in the longitudinal configuration, the DNA molecule is extended perpendicular to the imaging plane. As a result, it is only possible to infer biological activity from the motion of the tethered paramagnetic microsphere. Described here is a "transverse" magnetic tweezers (T-MT) geometry featuring simultaneous control of DNA extension and spatially coincident video-rate epi-fluorescence imaging. Unlike in L-MT, DNA tethers in T-MT are extended parallel to the imaging plane between two micron-sized spheres, and importantly protein targets on the DNA can be localized using fluorescent nanoparticles. The T-MT can manipulate a long DNA construct at molecular extensions approaching the contour length defined by B-DNA helical geometry, and the measured entropic elasticity agrees with the wormlike chain model (force <35 pN). By incorporating a torsionally constrained DNA tether, the T-MT would allow both the relative extension and twist of the tether to be manipulated, while viewing far-red emitting fluorophore-labeled targets. This T-MT design has the potential to enable the study of DNA binding and remodeling processes under conditions of constant force and defined torsional stress.

摘要

纵向磁镊 (L-MT) 已被广泛采用,成为拉伸和扭曲单链 DNA 分子的首选工具。它们还被用于探测由于蛋白质结合和酶活性导致的 DNA 拓扑变化。然而,在纵向构型中,DNA 分子垂直于成像平面延伸。因此,只能从连接的顺磁微球的运动中推断出生物活性。这里描述的是一种“横向”磁镊 (T-MT) 几何结构,其特点是同时控制 DNA 的延伸和空间重合的视频速率荧光显微镜成像。与 L-MT 不同,在 T-MT 中,DNA 系链在两个微米大小的球体之间平行于成像平面延伸,并且重要的是,DNA 上的蛋白质靶标可以使用荧光纳米颗粒进行定位。T-MT 可以在接近 B-DNA 螺旋几何定义的轮廓长度的分子延伸处操纵长 DNA 结构,并且测量的熵弹性与蠕虫链模型一致(力 <35 pN)。通过引入扭转约束的 DNA 系链,T-MT 将允许系链的相对延伸和扭曲都得到操纵,同时观察远红色发射荧光标记的靶标。这种 T-MT 设计有可能在恒定力和定义的扭转应力条件下,实现对 DNA 结合和重塑过程的研究。

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