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Capture of a Transition State Using Molecular Dynamics: Creation of an Intercalation Site in dsDNA with Ethidium Cation

机译:使用分子动力学捕获过渡态:带有Ethidium阳离子的dsDNA中插入位点的创建

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摘要

The mechanism of intercalation and the ability of double stranded DNA (dsDNA) to accommodate a variety of ligands in this manner has been well studied. Proposed mechanistic steps along this pathway for the classical intercalator ethidium have been discussed in the literature. Some previous studies indicate that the creation of an intercalation site may occur spontaneously, with the energy for this interaction arising either from solvent collisions or soliton propagation along the helical axis. A subsequent 1D diffusional search by the ligand along the helical axis of the DNA will allow the ligand entry to this intercalation site from its external, electrostatically stabilized position. Other mechanistic studies show that ethidium cation participates in the creation of the site, as a ligand interacting closely with the external surface of the DNA can cause unfavorable steric interactions depending on the ligands' orientation, which are relaxed during the creation of an intercalation site. Briefly, such a site is created by the lengthening of the DNA molecule via bond rotation between the sugars and phosphates along the DNA backbone, causing an unwinding of the dsDNA itself and separation between the adjacent base pairs local to the position of the ligand, which becomes the intercalation site. Previous experimental measurements of this interaction measure the enthalpic cost of this part of the mechanism to be about −8 kcal/mol. This paper reports the observation, during a computational study, of the spontaneous opening of an intercalation site in response to the presence of a single ethidium cation molecule in an externally bound configuration. The concerted motions between this ligand and the host, a dsDNA decamer, are clear. The dsDNA decamer AGGATGCCTG was studied; the central …GATG… site was the intercalation site.
机译:插入机制和双链DNA(dsDNA)以这种方式适应各种配体的能力已得到很好的研究。文献中已经讨论了经典嵌入剂沿该途径的拟议机械步骤。先前的一些研究表明,插入位置的创建可能是自发发生的,这种相互作用的能量可能是由于溶剂碰撞或孤子沿螺旋轴传播而产生的。配体随后沿DNA的螺旋轴进行一维扩散搜索,将使配体从其外部的,静电稳定的位置进入该嵌入位点。其他机理研究表明,乙锭阳离子参与位点的形成,因为与DNA外表面紧密相互作用的配体会引起不利的空间相互作用,具体取决于配体的方向,而在插入位点的形成过程中,这种相互作用会放松。简而言之,这种位点是通过糖分子和磷酸盐之间沿着DNA主链的键旋转而延长DNA分子的长度而形成的,从而导致dsDNA自身解开并在配体位置局部的相邻碱基对之间分离,从而成为插入位置。以前对该相互作用的实验测量结果表明,该机理这一部分的焓耗约为-8kkcal / mol。本文报告了在计算研究期间观察到的一个插入位点自发打开的观察结果,该插入位点是响应单个以外部结合构型存在的吡啶阳离子分子的存在而产生的。该配体与宿主(dsDNA decamer)之间的协调运动是清楚的。研究了双链DNA decamer AGGATGCCTG。 …GATG…中心是插入位置。

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    Monaco, Regina R.;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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