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II型DNA拓扑异构酶手性作用的计算分析。

Computational analysis of the chiral action of type II DNA topoisomerases.

作者信息

Klenin Konstantin, Langowski Jörg, Vologodskii Alexander

机构信息

Division of Biophysics of Macromolecules, German Cancer Research Center, Im Neuenheimer Feld 280, D-69120 Heidelberg, Germany.

出版信息

J Mol Biol. 2002 Jul 5;320(2):359-67. doi: 10.1016/S0022-2836(02)00447-3.

Abstract

It was found recently that bacterial type II DNA topoisomerase, topo IV, is much more efficient in relaxing (+) DNA supercoiling than (-) supercoiling. This means that the DNA-enzyme complex is chiral. This chirality can appear upon binding the first segment that participates in the strand passing reaction (G segment) or only after the second segment (T segment) joins the complex. The former possibility is analyzed here. We assume that upon binding the enzyme, the G segment forms a part of left-handed helical turn. This model is an extension of the hairpin model introduced earlier to explain simplification of DNA topology by these enzymes. Using statistical-mechanical simulation of DNA properties, we estimated different consequences of the model: (1) relative rates of relaxation of (+) and (-) supercoiling by the enzyme; (2) the distribution of positions of the G segment in supercoiled molecules; (3) steady-state distribution of knots in circular molecules created by the topoisomerase; (4) the variance of topoisomer distribution created by the enzyme; (5) the effect of (+) and (-) supercoiling on the binding topo II with G segment. The simulation results are capable of explaining nearly all available experimental data, at least semiquantitatively. A few predictions obtained in the model analysis can be tested experimentally.

摘要

最近发现,细菌II型DNA拓扑异构酶拓扑异构酶IV在松弛(+)DNA超螺旋方面比(-)超螺旋更有效。这意味着DNA-酶复合物是手性的。这种手性可以在参与链穿越反应的第一段(G段)结合时出现,或者仅在第二段(T段)加入复合物后出现。这里分析前一种可能性。我们假设在酶结合时,G段形成左手螺旋圈的一部分。该模型是先前引入的发夹模型的扩展,用于解释这些酶对DNA拓扑结构的简化。通过对DNA特性进行统计力学模拟,我们估计了该模型的不同结果:(1)酶对(+)和(-)超螺旋的相对松弛速率;(2)超螺旋分子中G段位置的分布;(3)拓扑异构酶在环状分子中产生的结的稳态分布;(4)酶产生的拓扑异构体分布的方差;(5)(+)和(-)超螺旋对拓扑异构酶II与G段结合的影响。模拟结果至少在半定量上能够解释几乎所有现有的实验数据。模型分析中获得的一些预测可以通过实验进行检验。

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