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首页> 外文期刊>Journal of Molecular Biology >DNA minor groove induced dimerization of heterocyclic cations: compound structure, binding affinity, and specificity for a TTAA site.
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DNA minor groove induced dimerization of heterocyclic cations: compound structure, binding affinity, and specificity for a TTAA site.

机译:DNA小沟诱导的杂环阳离子二聚化:化合物结构,结合亲和力和TTAA位点的特异性。

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摘要

With the increasing number and variations of genome sequences available, control of gene expression with synthetic, cell-permeable molecules is within reach. The variety of sequence-specific binding agents is, however, still quite limited. Many minor groove binding agents selectivity recognize AT over GC sequences but have less ability to distinguish among different AT sequences. The goal with this article is to develop compounds that can bind selectively to different AT sequences. A number of studies indicate that AATT and TTAA sequences have significantly different physical and interaction properties and different requirements for minor groove recognition. Although it has been difficult to get minor groove binding at TTAA, DB293, a phenyl-furan-benzimidazole diamidine, was found to bind as a strong, cooperative dimer at TTAA but with no selectivity over AATT. In order to improve selectivity, we made modifications to each unit of DB293. Binding affinities and stoichiometries obtained from biosensor-surface plasmon resonance experiments show that DB1003, a furan-furan-benzimidazole diamidine, binds strongly to TTAA as a dimer and has selectivity (K(TTAA)/K(AATT)=6). CD and DNase I footprinting studies confirmed the preference of this compound for TTAA. In summary, (i) a favorable stacking surface provided by the pi system, (ii) H-bond donors to interact with TA base pairs at the floor of the groove provided by a benzimidazole (or indole) -NH and amidines, and (iii) appropriate curvature of the dimer complex to match the curvature of the minor groove play important roles in differentiating the TTAA and AATT minor grooves.
机译:随着可用的基因组序列数目的增加和变化,利用合成的,细胞可渗透的分子控制基因表达已成为可能。但是,序列特异性结合剂的种类仍然非常有限。许多次要的沟结合剂选择性识别AT相对于GC序列,但区分不同AT序列的能力较小。本文的目的是开发可以选择性结合不同AT序列的化合物。大量研究表明,AATT和TTAA序列具有显着不同的物理和相互作用特性,对小沟识别的要求也不同。尽管很难在TTAA上获得较小的凹槽结合力,但是发现DB293(一种苯基呋喃-苯并咪唑二am二胺)在TTAA上以一种强力的协同二聚体结合,但对AATT的选择性不高。为了提高选择性,我们对DB293的每个单元进行了修改。从生物传感器表面等离振子共振实验获得的结合亲和力和化学计量比表明,呋喃-呋喃-苯并咪唑二DBDB1003作为二聚体与TTAA牢固结合,并具有选择性(K(TTAA)/ K(AATT)= 6)。 CD和DNase I足迹研究证实了该化合物对TTAA的偏爱。总之,(i)由pi系统提供的良好堆积表面,(ii)H-键供体与苯并咪唑(或吲哚)-NH和am提供的凹槽底部的TA碱基对相互作用,以及( iii)二聚物配合物的适当曲率以匹配小凹槽的曲率在区分TTAA和AATT小凹槽中起重要作用。

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