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How topoisomerase IV can efficiently unknot and decatenate negatively supercoiled DNA molecules without causing their torsional relaxation.

机译:拓扑异构酶IV如何能够有效地使负超螺旋DNA分子解链和解链,而不会引起其扭转松弛。

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摘要

Freshly replicated DNA molecules initially form multiply interlinked right-handed catenanes. In bacteria, these catenated molecules become supercoiled by DNA gyrase before they undergo a complete decatenation by topoisomerase IV (Topo IV). Topo IV is also involved in the unknotting of supercoiled DNA molecules. Using Metropolis Monte Carlo simulations, we investigate the shapes of supercoiled DNA molecules that are either knotted or catenated. We are especially interested in understanding how Topo IV can unknot right-handed knots and decatenate right-handed catenanes without acting on right-handed plectonemes in negatively supercoiled DNA molecules. To this end, we investigate how the topological consequences of intersegmental passages depend on the geometry of the DNA-DNA juxtapositions at which these passages occur. We observe that there are interesting differences between the geometries of DNA-DNA juxtapositions in the interwound portions and in the knotted or catenated portions of the studied molecules. In particular, in negatively supercoiled, multiply interlinked, right-handed catenanes, we detect specific regions where DNA segments belonging to two freshly replicated sister DNA molecules form left-handed crossings. We propose that, due to its geometrical preference to act on left-handed crossings, Topo IV can specifically unknot supercoiled DNA, as well as decatenate postreplicative catenanes, without causing their torsional relaxation.
机译:新鲜复制的DNA分子最初形成多个相互连接的右手连环链。在细菌中,这些链状分子在通过拓扑异构酶IV(Topo IV)完全脱脂之前就被DNA回旋酶超螺旋。 Topo IV也参与超螺旋DNA分子的未知。使用Metropolis Monte Carlo模拟,我们研究了打结或链状的超螺旋DNA分子的形状。我们特别感兴趣的是了解Topo IV如何在不对负超螺旋DNA分子的右手翼琴素起作用的情况下解开右手打结并划定右手连环。为此,我们研究了节间通道的拓扑后果如何取决于这些通道发生的DNA-DNA并置的几何形状。我们观察到在被研究分子的交缠部分和打结或加链部分中,DNA-DNA并列的几何结构之间存在有趣的差异。特别是,在负超螺旋,多重互连,右手连环中,我们检测到属于两个新复制的姐妹DNA分子的DNA片段形成左手交叉的特定区域。我们建议,由于其几何形状倾向于作用于左撇子,Topo IV可以特异性地解开超螺旋的DNA,以及确定复制后的联链,而不会引起其扭转松弛。

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