Transcription, torsional stress and the bending dynamics of DNA

Subhamoy Singha Roy
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Abstract

In this research, we found that the local opening of base pairs induces the formation of kinks which facilitates the bending of double helix. The conformational properties of DNA can be mapped onto the Heisenberg spin system and denaturation occurs through quantum phase transition (QPT) induced by a quench when the temperature effect is incorporated through the quench time. The nonequilibrium effect in QPT introduced through the quench generate defects like kinks end antikinks, the density of which depends on the quench time and hence on temperature. It is here argued that when we transcribe this result in the rod –like-chain (RLC) model of DNA, these defects correspond to bends. The dynamical formation of these bends during local denaturation associated with transcription hinders free rotation of the transcribed DNA and helps the torsional stress to propagate down the DNA. This explains the observed large torsional stress near the point of transcription. We have estimated the bend length which is found to be in good agreement with experiments.
转录,扭转应力和DNA的弯曲动力学
在本研究中,我们发现碱基对的局部开放诱导了扭结的形成,从而促进了双螺旋的弯曲。DNA的构象性质可以映射到海森堡自旋系统,当温度效应通过淬火时间加入时,变性通过猝灭引起的量子相变(QPT)发生。通过淬火引入的非平衡效应会产生扭结和反扭结等缺陷,其密度取决于淬火时间和温度。本文认为,当我们在DNA的棒状链(RLC)模型中转录这一结果时,这些缺陷对应于弯曲。在与转录相关的局部变性过程中,这些弯曲的动态形成阻碍了转录DNA的自由旋转,并有助于扭转应力向下传播DNA。这解释了在转录点附近观察到的大扭转应力。我们对弯曲长度进行了估计,与实验结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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