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连接数拓扑异构体的凝胶迁移率及其对 DNA 螺旋重复和弹性的依赖性。

Gel mobilities of linking-number topoisomers and their dependence on DNA helical repeat and elasticity.

机构信息

Department of Molecular and Cell Biology, University of Texas, Richardson, TX 75083 USA.

出版信息

Biophys Chem. 2010 May;148(1-3):104-11. doi: 10.1016/j.bpc.2010.02.016. Epub 2010 Mar 3.

Abstract

Agarose-gel electrophoresis has been used for more than thirty years to characterize the linking-number (Lk) distribution of closed-circular DNA molecules. Although the physical basis of this technique remains poorly understood, the gel-electrophoretic behavior of covalently closed DNAs has been used to determine the local unwinding of DNA by proteins and small-molecule ligands, characterize supercoiling-dependent conformational transitions in duplex DNA, and to measure helical-repeat changes due to shifts in temperature and ionic strength. Those results have been analyzed by assuming that the absolute mobility of a particular topoisomer is mainly a function of the integral number of superhelical turns, and thus a slowly varying function of plasmid molecular weight. In examining the mobilities of Lk topoisomers for a series of plasmids that differ incrementally in size over more than one helical turn, we found that the size-dependent agarose-gel mobility of individual topoisomers with identical values of Lk (but different values of the excess linking number, DeltaLk) vary dramatically over a duplex turn. Our results suggest that a simple semi-empirical relationship holds between the electrophoretic mobility of linking-number topoisomers and their average writhe in solution.

摘要

琼脂糖凝胶电泳技术已经应用了三十多年,用于研究闭合环状 DNA 分子的连环数(Lk)分布。尽管该技术的物理基础仍未被充分理解,但共价闭合 DNA 的凝胶电泳行为已被用于确定蛋白质和小分子配体对 DNA 的局部解旋、表征双链 DNA 中超螺旋依赖的构象转变,以及测量因温度和离子强度变化而导致的螺旋重复变化。这些结果是通过假设特定拓扑异构体的绝对迁移率主要是超螺旋匝数的整数函数,并且因此是质粒分子量的缓慢变化函数来分析的。在研究一系列大小相差一个以上螺旋匝数的质粒的 Lk 拓扑异构体的迁移率时,我们发现具有相同 Lk 值(但超螺旋数差值,ΔLk 值不同)的单个拓扑异构体的大小依赖性琼脂糖凝胶迁移率在双链 DNA 中会发生剧烈变化。我们的结果表明,在连接数拓扑异构体的电泳迁移率与其在溶液中的平均纽结数之间存在简单的半经验关系。

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