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DNA 三螺旋与构象锁定糖瓦解为双螺旋:分子模拟的见解。

DNA triplex with conformationally locked sugar disintegrates to duplex: Insights from molecular simulations.

机构信息

Department of Chemistry, Indian Institute of Technology Delhi, India.

Department of Biosciences, University of Helsinki, Finland.

出版信息

Biochem Biophys Res Commun. 2020 Nov 19;532(4):662-667. doi: 10.1016/j.bbrc.2020.08.097. Epub 2020 Sep 6.

Abstract

DNA triplex is a popular, higher-order structural arrangement with several biological importance. In the present article, we examined the impact of replacing regular deoxyribose sugar by conformationally locked sugar on the structure/stability of a DNA triplex. We individually modified single strands of DNA triplex (3'-5' strand/5'-3' strand) and observed the consequences in terms of the overall structural integrity and energetics using all-atom explicit-solvent Gaussian accelerated molecular dynamics simulations at biological salt concentration. As anticipated, the control DNA triplex maintained the structural integrity throughout the simulations. However, it is striking to note that a duplex evolved from both the modified systems (3'-5' modified triplex as well as 5'-3' modified triplex). The resultant duplexes in both cases contain a modified strand and a regular strand, whereas the third strand (regular ssDNA) left the binding site entirely. We observed that the modified ssDNA binds to the regular ssDNA with high affinities in both the hybrid duplexes (∼-64 kcal/mol), significantly higher than the regular ssDNA - regular ssDNA interaction (∼-52 kcal/mol). The remarkable binding of modified ssDNA to regular ssDNA can be utilized to design new antisense oligonucleotides, and the role of such modified oligonucleotides in anticancer therapy is foreseen.

摘要

DNA 三链体是一种具有多种生物学重要性的流行的高级结构排列。在本文中,我们研究了通过改变构象锁定糖取代常规脱氧核糖糖对 DNA 三链体结构/稳定性的影响。我们分别修饰了 DNA 三链体的单链(3'-5'链/5'-3'链),并使用全原子显式溶剂高斯加速分子动力学模拟在生物盐浓度下观察了整体结构完整性和能量方面的后果。正如预期的那样,对照 DNA 三链体在整个模拟过程中保持了结构完整性。然而,值得注意的是,从两个修饰系统(3'-5'修饰三链体和 5'-3'修饰三链体)中都进化出了一个双链体。在这两种情况下,产生的双链体都包含一个修饰链和一个常规链,而第三个链(常规 ssDNA)完全离开结合位点。我们观察到,修饰的 ssDNA 在两个杂交双链体中与常规 ssDNA 具有高亲和力结合(∼-64 kcal/mol),明显高于常规 ssDNA-常规 ssDNA 相互作用(∼-52 kcal/mol)。修饰的 ssDNA 与常规 ssDNA 的显著结合可用于设计新的反义寡核苷酸,并预见了此类修饰寡核苷酸在癌症治疗中的作用。

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