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Evaluating the Effect of Ionic Strength on Duplex Stability for PNA Having Negatively or Positively Charged Side Chains

机译:评估离子强度上的双面稳定性影响的pNa有正电或负电侧链

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摘要

The enhanced thermodynamic stability of PNA:DNA and PNA:RNA duplexes compared with DNA:DNA and DNA:RNA duplexes has been attributed in part to the lack of electrostatic repulsion between the uncharged PNA backbone and negatively charged DNA or RNA backbone. However, there are no previously reported studies that systematically evaluate the effect of ionic strength on duplex stability for PNA having a charged backbone. Here we investigate the role of charge repulsion in PNA binding by synthesizing PNA strands having negatively or positively charged side chains, then measuring their duplex stability with DNA or RNA at varying salt concentrations. At low salt concentrations, positively charged PNA binds more strongly to DNA and RNA than does negatively charged PNA. However, at medium to high salt concentrations, this trend is reversed, and negatively charged PNA shows higher affinity for DNA and RNA than does positively charged PNA. These results show that charge screening by counterions in solution enables negatively charged side chains to be incorporated into the PNA backbone without reducing duplex stability with DNA and RNA. This research provides new insight into the role of electrostatics in PNA binding, and demonstrates that introduction of negatively charged side chains is not significantly detrimental to PNA binding affinity at physiological ionic strength. The ability to incorporate negative charge without sacrificing binding affinity is anticipated to enable the development of PNA therapeutics that take advantage of both the inherent benefits of PNA and the multitude of charge-based delivery technologies currently being developed for DNA and RNA.
机译:与DNA:DNA和DNA:RNA双链体相比,PNA:DNA和PNA:RNA双链体的热力学稳定性增强,部分原因是未充电的PNA主链与带负电荷的DNA或RNA主链之间缺乏静电排斥。但是,以前没有报道研究系统地评估离子强度对具有带电主链的PNA的双链体稳定性的影响。在这里,我们通过合成具有带负电或正电侧链的PNA链,然后在不同盐浓度下用DNA或RNA测量其双链稳定性,来研究电荷排斥在PNA结合中的作用。在低盐浓度下,带正电的PNA比带负电的PNA更牢固地与DNA和RNA结合。但是,在中等或高盐浓度下,这种趋势会逆转,并且带负电的PNA与带正电的PNA相比,对DNA和RNA的亲和力更高。这些结果表明,通过溶液中抗衡离子的电荷筛选可以使带负电荷的侧链并入PNA主链,而不会降低DNA和RNA的双链体稳定性。这项研究为静电在PNA结合中的作用提供了新的见解,并证明引入带负电的侧链对生理离子强度下的PNA结合亲和力没有明显的损害。预期在不牺牲结合亲和力的情况下掺入负电荷的能力将使得能够开发利用PNA的固有优势以及目前正在为DNA和RNA开发的多种基于电荷的递送技术的PNA治疗剂。

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