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银(I)介导的 Hoogsteen 型碱基对。

Silver(I)-mediated Hoogsteen-type base pairs.

机构信息

University of Muenster, Institute for Inorganic and Analytical Chemistry, Corrensstr. 28/30, 48149 Muenster, Germany.

出版信息

J Inorg Biochem. 2011 Nov;105(11):1398-404. doi: 10.1016/j.jinorgbio.2011.07.005. Epub 2011 Jul 31.

Abstract

Metal-mediated Hoogsteen-type base pairs are useful for the construction of DNA duplexes containing contiguous stretches of metal ions along the helical axis. To fine-tune the stability of such base pairs and the selectivity toward different metal ions, the availability of a selection of artificial nucleobases is highly desirable. In this study, we follow a theoretical approach utilizing dispersion-corrected density functional methods to evaluate a variety of artificial nucleobases as candidates for metal-mediated Hoogsteen-type base pairs. We focus on silver(I)-mediated Hoogsteen- and reverse Hoogsteen-type base pairs formed between 1-deaza- and 1,3-dideazapurine-derived nucleobases, respectively, and cytosine. Apart from two coordinative bonds, these base pairs are stabilized by a hydrogen bond. We elucidate the impact of different substituents at the C6 position and the presence or absence of an endocyclic N3 nitrogen atom on the overall stability of a base pair and concomitantly on the strength of the hydrogen and coordinative bonds. All artificial base pairs investigated in this study are less stable than the experimentally established benchmark base pair C-Ag(+)-G. The base pair formed from 1,3-dideaza-6-methoxypurine is isoenergetic to the experimentally observed C-Ag(+)-C base pair. This makes 1,3-dideaza-6-methoxypurine a promising candidate for the use as an artificial nucleobase in DNA.

摘要

金属介导的 Hoogsteen 型碱基对可用于构建沿螺旋轴含有连续金属离子的 DNA 双链。为了微调这些碱基对的稳定性和对不同金属离子的选择性,高度需要有一系列人工碱基可供选择。在这项研究中,我们采用了一种理论方法,利用色散校正密度泛函方法来评估各种人工碱基作为金属介导的 Hoogsteen 型碱基对的候选物。我们专注于银(I)介导的 Hoogsteen 和反向 Hoogsteen 型碱基对,分别由 1-去氮和 1,3-二氮杂嘌呤衍生的碱基与胞嘧啶形成。除了两个配位键外,这些碱基对还通过氢键稳定。我们阐明了 C6 位置的不同取代基以及环内 N3 氮原子的存在与否对碱基对整体稳定性以及氢键和配位键强度的影响。本研究中研究的所有人工碱基对都不如实验确定的基准碱基对 C-Ag(+)-G 稳定。由 1,3-二氮杂-6-甲氧基嘌呤形成的碱基对与实验观察到的 C-Ag(+)-C 碱基对等能量。这使得 1,3-二氮杂-6-甲氧基嘌呤成为 DNA 中人工碱基的有前途的候选物。

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