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应用于DNA复制研究的索烃的几何学与物理学

Geometry and physics of catenanes applied to the study of DNA replication.

作者信息

Laurie B, Katritch V, Sogo J, Koller T, Dubochet J, Stasiak A

机构信息

A. L. Digital, London, England.

出版信息

Biophys J. 1998 Jun;74(6):2815-22. doi: 10.1016/S0006-3495(98)77988-3.

Abstract

The concept of ideal geometric configurations was recently applied to the classification and characterization of various knots. Different knots in their ideal form (i.e., the one requiring the shortest length of a constant-diameter tube to form a given knot) were shown to have an overall compactness proportional to the time-averaged compactness of thermally agitated knotted polymers forming corresponding knots. This was useful for predicting the relative speed of electrophoretic migration of different DNA knots. Here we characterize the ideal geometric configurations of catenanes (called links by mathematicians), i.e., closed curves in space that are topologically linked to each other. We demonstrate that the ideal configurations of different catenanes show interrelations very similar to those observed in the ideal configurations of knots. By analyzing literature data on electrophoretic separations of the torus-type of DNA catenanes with increasing complexity, we observed that their electrophoretic migration is roughly proportional to the overall compactness of ideal representations of the corresponding catenanes. This correlation does not apply, however, to electrophoretic migration of certain replication intermediates, believed up to now to represent the simplest torus-type catenanes. We propose, therefore, that freshly replicated circular DNA molecules, in addition to forming regular catenanes, may also form hemicatenanes.

摘要

理想几何构型的概念最近被应用于各种纽结的分类和表征。研究表明,不同纽结的理想形式(即形成给定纽结所需恒定直径管的最短长度的那种形式)的整体紧凑性与形成相应纽结的热搅动纽结聚合物的时间平均紧凑性成正比。这对于预测不同DNA纽结的电泳迁移相对速度很有用。在这里,我们表征了连环体(数学家称为链环)的理想几何构型,即空间中拓扑相互连接的封闭曲线。我们证明,不同连环体的理想构型显示出与纽结理想构型中观察到的非常相似的相互关系。通过分析关于随着复杂度增加的环形DNA连环体电泳分离的文献数据,我们观察到它们的电泳迁移大致与相应连环体理想表示的整体紧凑性成正比。然而,这种相关性不适用于某些复制中间体的电泳迁移,直到现在人们还认为这些复制中间体代表最简单的环形连环体。因此,我们提出,新复制的环状DNA分子,除了形成规则的连环体之外,还可能形成半连环体。

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本文引用的文献

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