Department of Physics and Biophysics, School of Medicine, University of Zagreb, 10000 Zagreb, Croatia; Centre of Excellence in Reproductive and Regenerative Medicine, University of Zagreb School of Medicine, 10000 Zagreb, Croatia.
Department of Physics and Biophysics, School of Medicine, University of Zagreb, 10000 Zagreb, Croatia; Centre of Excellence in Reproductive and Regenerative Medicine, University of Zagreb School of Medicine, 10000 Zagreb, Croatia.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 Mar 5;268:120663. doi: 10.1016/j.saa.2021.120663. Epub 2021 Nov 26.
Effects of magnesium (Mg) ions on the stability and structural properties of double-stranded DNA are vitally important for DNA folding and functional behavior. Complementing our previous study on highly hydrated thin films of DNA with sodium counterions, with no buffer (pH ≈ 6) and surrounded with Mg cations, here we use Fourier transform infrared spectroscopy and band shape analysis to explore in detail the vibrational signatures of DNA-magnesium interaction in the case when DNA charges are neutralized solely by Mg cations, hereafter called MgDNA. Ion atmosphere has been controlled by the magnesium to phosphate molar concentration ratio r which varied between 0.0067 and 10. For r = 0 we find that spectral features in the base region remain similar as in DNA, whereas changes in the backbone region indicate that the B conformation becomes fully stabilized. With increasing r a pronounced structural reshaping occurs in the phosphate backbone region indicating a blue shift of the asymmetric band, while the symmetric band does not show any displacement in frequency. The band shape analysis of overlapping peaks in the respective phosphate regions demonstrates that the number of constituent modes as well as their positions in frequency do not change, whereas their intensities and bandwidths display disparate changes. The results reflect a variety of local environments at the DNA backbone due to a heterogeneous ion atmosphere with randomly distributed magnesium ions and local patterns of hydrogen bonds which change with increasing r. Remarkably, after crowded r = 10 ion atmosphere is depleted, Mg induced spectral changes vanish and structural features of MgDNA (r ≈ 0) are fully restored. Overall results strongly suggest that in MgDNA on highly hydrated thin films the hydrogen-base pairing remains preserved and that Mg ions, similar to sodium ions, retain their mobility and interact with double helix via water-mediated electrostatic forces.
镁(Mg)离子对双链 DNA 的稳定性和结构特性的影响对于 DNA 的折叠和功能行为至关重要。在我们之前关于带钠离子反离子的高度水合的 DNA 薄膜的研究中,没有缓冲液(pH≈6),周围环绕着 Mg 阳离子,在这里我们使用傅里叶变换红外光谱和谱带形状分析来详细研究仅由 Mg 阳离子中和 DNA 电荷的情况下 DNA-Mg 相互作用的振动特征,以下称为 MgDNA。通过镁与磷酸摩尔浓度比 r 来控制离子气氛,r 在 0.0067 到 10 之间变化。当 r=0 时,我们发现碱基区域的光谱特征与 DNA 相似,而骨架区域的变化表明 B 构象完全稳定。随着 r 的增加,磷酸骨架区域发生明显的结构重塑,表明不对称带发生蓝移,而对称带在频率上没有任何位移。磷酸区域重叠峰的谱带形状分析表明,构成模式的数量及其在频率中的位置没有变化,但其强度和带宽显示出不同的变化。结果反映了 DNA 骨架中由于离子气氛不均匀,Mg 离子随机分布以及氢键局部模式随 r 变化而发生变化的各种局部环境。值得注意的是,在拥挤的 r=10 离子气氛耗尽后,Mg 诱导的光谱变化消失,MgDNA(r≈0)的结构特征得到完全恢复。总体结果强烈表明,在高度水合的薄膜中的 MgDNA 中,氢键碱基配对仍然保持不变,并且 Mg 离子与钠离子相似,保持其流动性,并通过水介导的静电力与双螺旋相互作用。