Faculty of Frontiers of Innovative Research in Science and Technology, Konan University, 7-1-20, Minatojima-minamimachi, Chuo-ku, Kobe 650-0047, Japan.
J Phys Chem B. 2012 Jun 28;116(25):7406-15. doi: 10.1021/jp302170f. Epub 2012 Jun 15.
Characterization of metal ion binding to RNA and DNA base pairs is important for understanding their energy contribution to the folding and conformational changes of nucleic acid structures. In this study, we examine the equilibrium shift from the hairpin toward the dimer formation, induced by nonspecifically bound metal ions. The hairpin dimerization is markedly enhanced in the presence of high background concentrations of poly(ethylene glycol) (PEG) and several small organic molecules. The simple volume exclusion effect and the base pair stability cannot entirely account for this increase. We find that the dielectric constant correlates well with the dimerization efficiency in the conditions caused by small alcohol molecules and amide compounds as well as PEG. The hairpin dimerization experiments reveal the potential of PEG for enhancing the binding affinity between nucleic acids and metal ions, by reducing the solution dielectric constant without decreasing the thermodynamic stability of nucleic acid structures. The results presented here contribute to the understanding of nucleic acid folding and its ability to switch between alternative conformations under the condition of limited cation availability and cellular physiology.
研究金属离子与 RNA 和 DNA 碱基对的结合特性对于理解它们在核酸结构折叠和构象变化中的能量贡献非常重要。在这项研究中,我们研究了非特异性结合的金属离子引起的发夹向二聚体形成的平衡移动。在高背景浓度的聚乙二醇(PEG)和几种小分子存在下,发夹二聚体明显增强。简单的体积排除效应和碱基对稳定性不能完全解释这种增加。我们发现介电常数与小分子醇和酰胺化合物以及 PEG 引起的条件下的二聚体效率很好地相关。发夹二聚体实验揭示了 PEG 增强核酸与金属离子之间结合亲和力的潜力,通过降低溶液介电常数而不降低核酸结构的热力学稳定性。这里呈现的结果有助于理解核酸折叠及其在阳离子有限和细胞生理条件下切换到替代构象的能力。