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Metal-bipyridine complexes in DNA backbones and effects on thermal stability

机译:DNA骨架中的金属联吡啶配合物及其对热稳定性的影响

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Modified oligonucleotides are showing potential for multiple applications, including drug design, nanoscale building blocks, and biosensors. In an effort to expand the functionality available to DNA, we have placed chelating ligands directly into the backbone of DNA. Between one and three nucleosides were replaced with 2,2′-bipyridine phosphates in 23-mer duplexes of DNA. An array of metal ions were added (Fe~(2+), Co~(2+), Ni ~(2+), Cu~(2+), Zn~(2+), and Pt~(2+)) and the influences on duplex stability were examined by melting temperature studies. Titrations and UV-vis absorption spectroscopy were used to provide insights into the nature of the metal complexes formed. We found that Ni~(2+) binding to 2,2′-bipyridine typically provided the greatest increase in duplex stability relative to the other metal ions examined. For example, addition of Ni~(2+) to one 2,2′-bipyridine-DNA duplex increased the melting temperature by 13 °C, from 65.0 ± 0.3 to 78.4 ± 0.9 °C. These studies show that metal ions and backbone ligands can be used to regulate DNA structure and stability.
机译:修饰的寡核苷酸显示出在多种应用中的潜力,包括药物设计,纳米级构件和生物传感器。为了扩展DNA可用的功能,我们将螯合配体直接置于DNA的骨架中。在DNA的23-mer双链体中,一到三个核苷被2,2'-联吡啶磷酸酯取代。添加了一系列金属离子(Fe〜(2 +),Co〜(2 +),Ni〜(2 +),Cu〜(2 +),Zn〜(2+)和Pt〜(2+) )和对双链体稳定性的影响通过熔融温度研究进行了研究。滴定法和紫外可见吸收光谱法可用于洞悉形成的金属络合物的性质。我们发现,相对于其他检测的金属离子,与2,2'-联吡啶结合的Ni〜(2+)通常提供最大的双链稳定性增加。例如,向一个2,2'-联吡啶-DNA双链体中添加Ni〜(2+)可使熔解温度从65.0±0.3升高到78.4±0.9°C,提高了13°C。这些研究表明,金属离子和主链配体可用于调节DNA结构和稳定性。

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