首页> 美国卫生研究院文献>Biophysical Journal >Unique Properties of Purine/Pyrimidine Asymmetric PNA·DNA Duplexes: Differential Stabilization of PNA·DNA Duplexes by Purines in the PNA Strand
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Unique Properties of Purine/Pyrimidine Asymmetric PNA·DNA Duplexes: Differential Stabilization of PNA·DNA Duplexes by Purines in the PNA Strand

机译:嘌呤/嘧啶不对称PNA·DNA双链体的独特性质:嘌呤在PNA链中对PNA·DNA双链体的差异稳定作用

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摘要

PNA·DNA duplexes are significantly stabilized by purine nucleobases in the PNA strand. To elucidate and understand the effect of switching the backbone in a nucleic acid duplex, we now report a thermodynamics study along with a solution conformations study of two purine/pyrimidine strand asymmetric duplexes and a strand symmetrical control by comparing the behavior of all four possible PNA/DNA combinations. In essence, we are comparing an identical basepair stack connected by either an aminoethyl glycine PNA or a deoxyribose DNA backbone. We show that the PNA·DNA duplexes containing purine-rich PNA strands are stabilized with regard to the thermal melting temperature and free energy as well as enthalpy (and concomitantly relatively less entropically disfavored). Based on our data, we find it unlikely that differences in counterion binding (identical ionic-strength dependence was observed), hydration (identical and insignificant water release was observed), or single-strand conformation can be responsible for the difference in duplex stability. The only consistent difference observed between the purine-rich PNA versus the pyrimidine-rich PNA in isosequential PNA·DNA duplexes is the significant increase in both binding enthalpy and entropy for the PNA·DNA duplexes containing pyrimidine-rich PNA in organic solvent, which would indicate that these duplexes are relatively enthalpically disfavored in water. Although our results so far do not allow us to identify the origin of the different stabilities of homopurine/homopyrimidine PNA·DNA duplexes, the evidence does point to a significant structural component, which involves enthalpic contributions both within the duplex structure and also from bound water molecules.
机译:PNA·DNA双链体被PNA链中的嘌呤核碱基显着稳定。为了阐明和理解在核酸双链体中切换骨架的影响,我们现在通过比较所有四个可能的PNA的行为,报告了热力学研究以及两个嘌呤/嘧啶链不对称双链体和链对称对照的溶液构象研究/ DNA组合。本质上,我们正在比较通过氨乙基甘氨酸PNA或脱氧核糖DNA主链连接的相同碱基对堆栈。我们显示,含有富含嘌呤的PNA链的PNA·DNA双链体在热解链温度和自由能以及焓方面都相对稳定(并因此在熵方面相对较少)。根据我们的数据,我们发现抗衡离子结合(观察到相同的离子强度依赖性),水合(观察到相同和不明显的水释放)或单链构象的差异不太可能造成双链体稳定性的差异。在等序PNA·DNA双链体中,富含嘌呤的PNA与富含嘧啶的PNA之间观察到的唯一一致差异是,有机溶剂中含有富含嘧啶的PNA的PNA·DNA双链体的结合焓和熵均显着增加。表示这些双链体在水中相对焓弱。尽管到目前为止,我们的结果仍无法确定高嘌呤/高嘧啶PNA·DNA双链体不同稳定性的起源,但证据的确指向了一个重要的结构成分,该结构涉及双链结构内以及结合水中的焓贡献。分子。

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