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DNA Hairpins Containing the Cytidine Analog Pyrrolo-dC: Structural Thermodynamic and Spectroscopic Studies

机译:包含胞苷类似物Pyrrolo-dC的DNA发夹:结构热力学和光谱学研究

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摘要

Structures formed by single-strand DNA have become increasingly interesting because of their roles in a number of biological processes, particularly transcription and its regulation. Of particular importance is the fact that antitumor drugs such as Actinomycin D can selectively bind DNA hairpins over fully paired, double-strand DNA. A new fluorescent base analog, pyrrolo-deoxycytidine (PdC), can now be routinely incorporated into single-strand DNA. The fluorescence of PdC is particularly useful for studying the formation of single-strand DNA in regions of double-strand DNA. The fluorescence is quenched when PdC is paired with a complementary guanine residue, and thus is greatly enhanced upon formation of single-strand DNA. Hence, any process that results in melting or opening of DNA strands produces an increase in the fluorescence intensity of this base analog. In this study we measured the structural effects of incorporating PdC into DNA hairpins, and the effect of this incorporation on the binding of the hairpins by a fluorescent analog of the drug Actinomycin D. Two hairpin DNAs were used: one with PdC in the stem (basepaired) and one with PdC in the loop (unpaired). The thermal stability, 7-aminoactinomycin D binding, and three-dimensional structures of PdC incorporated into these DNA hairpins were all quite similar as compared to the hairpins containing an unmodified dC residue. Fluorescence lifetime measurements indicate that two lifetimes are present in PdC, and that the increase in fluorescence of the unpaired PdC residue compared to the basepaired PdC is due to an increase in the contribution of the longer lifetime to the average fluorescence lifetime. Our data indicate that PdC can be used effectively to differentiate paired and unpaired bases in DNA hairpin secondary structures, and should be similarly applicable for related structures such as cruciforms and quadruplexes. Further, our data indicate that PdC can act as a fluorescence resonance energy transfer donor for the fluorescent drug 7-aminoactinomycin D.
机译:由于单链DNA在许多生物学过程中的作用,特别是转录及其调控,因此由单链DNA形成的结构变得越来越有趣。特别重要的事实是,抗肿瘤药物(如放线菌素D)可以选择性地结合完全配对的双链DNA上的DNA发夹。现在可以常规地将新的荧光碱基类似物吡咯并脱氧胞苷(PdC)掺入单链DNA中。 PdC的荧光对于研究双链DNA区域中单链DNA的形成特别有用。当PdC与互补的鸟嘌呤残基配对时,荧光会被淬灭,因此在单链DNA形成后会大大增强。因此,任何导致DNA链融化或打开的过程都会增加该碱基类似物的荧光强度。在这项研究中,我们测量了将PdC掺入DNA发夹中的结构效应以及这种掺入对药物放线菌素D的荧光类似物对发夹结合的影响。使用了两种发夹DNA:一个在茎中带有PdC(配对)和一个在循环中带有PdC的配对(未配对)。与包含未经修饰的dC残基的发夹相比,掺入这些DNA发夹中的PdC的热稳定性,7-氨基放线菌素D结合和三维结构都非常相似。荧光寿命测量表明,PdC中存在两个寿命,与碱基配对的PdC相比,未配对的PdC残基的荧光增加是由于更长的寿命对平均荧光寿命的贡献增加。我们的数据表明,PdC可以有效地区分DNA发夹二级结构中的配对碱基和非配对碱基,并且应类似地适用于相关结构,如十字形和四链体。此外,我们的数据表明PdC可以充当荧光药物7-氨基放线菌素D的荧光共振能量转移供体。

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