首页> 美国卫生研究院文献>Nucleic Acids Research >Real-time imaging of the reorientation mechanisms of YOYO-labelled DNA molecules during 90 degrees and 120 degrees pulsed field gel electrophoresis.
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Real-time imaging of the reorientation mechanisms of YOYO-labelled DNA molecules during 90 degrees and 120 degrees pulsed field gel electrophoresis.

机译:实时成像的YOYO标记的DNA分子在90度和120度脉冲场凝胶电泳过程中的重新定向机制。

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摘要

Pulsed field gel electrophoresis (PFGE) techniques have been developed to overcome the limitations of conventional electrophoresis and to increase the separation to DNA chromosomes of few megabase pairs in size. Despite of the large success of these techniques, the various separation protocols employed for PFGE experiments have been determined empirically. However, a deep understanding of the molecular mechanisms of motion responsible for DNA separation becomes necessary for the rational optimization of these techniques. This paper shows the first clear observations of individual molecules of DNA during the reorientation process in 90 degrees PFGE and 120 degrees PFGE. Real-time visualization of the DNA dynamics during PFGE was possible with the use of an epi-illumination fluorescence microscope specifically equipped to run these experiments and by staining the DNA with YOYO-1 (1,1'-(4,4,7,7-tetramethyl-4,7-diazaundecamethylene)-bis-4-[3-meth yl -2,3-dihydro-(benzo-1,3-oxazole)-2-methyl-idene]-quinolinium tetraiodide). This dye forms a very stable, highly fluorescent complex with double-stranded DNA and dramatically improves the quality of the DNA images. The results of computer simulations used to reproduce the molecular mechanisms of motion as well as the DNA separation features are also discussed.
机译:已经开发了脉冲场凝胶电泳(PFGE)技术,以克服常规电泳的局限性并增加对几兆碱基对的DNA染色体的分离。尽管这些技术取得了巨大的成功,但根据经验已确定了用于PFGE实验的各种分离方案。但是,对于合理地优化这些技术,深入了解导致DNA分离的运动分子机制变得十分必要。本文显示了在90度PFGE和120度PFGE的重新定向过程中对单个DNA分子的首次清晰观察。 PFGE过程中DNA动力学的实时可视化可以通过使用装备有专门用于进行这些实验的落射照明荧光显微镜以及用YOYO-1(1,1'-(4,4,7, 7-四甲基-4,7-二氮杂十二碳烯基)-双-4- [3-甲基-2,3-二氢-(苯并-1,3-恶唑)-2-甲基亚基]-喹啉四碘化物)。这种染料与双链DNA形成非常稳定的高荧光复合物,并显着提高了DNA图像的质量。还讨论了用于重现运动的分子机制以及DNA分离特征的计算机仿真结果。

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