Center for RNA Molecular Biology, Case Western Reserve University School of Medicine,Cleveland, Ohio 44106, USA.
Biochemistry. 2010 Apr 6;49(13):2869-79. doi: 10.1021/bi901866u.
Accurate identification and quantification of metal ion-phosphodiester interactions are essential for understanding the role of metal ions as determinants of three-dimensional folding of large RNAs and as cofactors in the active sites of both RNA and protein phosphodiesterases. Accomplishing this goal is difficult due to the dynamic and complex mixture of direct and indirect interactions formed with nucleic acids and other phosphodiesters in solution. To address this issue, Raman spectroscopy has been used to measure changes in bond vibrational energies due to metal interactions. However, the contributions of inner-sphere, H-bonding, and electrostatic interactions to the Raman spectrum of phosphoryl oxygens have not been analyzed quantitatively. Here, we report that all three forms of metal ion interaction result in attenuation of the Raman signal for the symmetric vibration of the nonbridging phosphate oxygens (nu(s)PO(2)(-)), while only inner-sphere coordination gives rise to an apparent shift of nu(s)PO(2)(-) to higher wavenumbers (nu(s)PO(2)(-)M) in solution. Formation of nu(s)PO(2)(-)M is shown to be both dependent on metal ion identity and an accurate measure of site-specific metal ion binding. In addition, the spectroscopic parameter reflecting the energetic difference between nu(s)PO(2)(-) and nu(s)PO(2)(-)M (DeltanuM) is largely insensitive to changes in phosphodiester structure but strongly dependent on the absolute electronegativity and hardness of the interacting metal ion. Together, these studies provide strong experimental support for the use of nu(s)PO(2)(-)M and DeltanuM as general spectroscopic features for the quantitative analysis of metal binding affinity and the identification of metal ions associated with phosphodiesters in solution.
准确识别和量化金属离子-磷酸二酯键相互作用对于理解金属离子作为决定大型 RNA 三维折叠的因素以及作为 RNA 和蛋白磷酸二酯酶活性部位的辅助因子的作用至关重要。由于金属离子与核酸和溶液中其他磷酸二酯键形成的直接和间接相互作用的动态和复杂混合,实现这一目标具有挑战性。为了解决这个问题,拉曼光谱已被用于测量由于金属相互作用导致的键振动能的变化。然而,内球、氢键和静电相互作用对磷酰氧基拉曼光谱的贡献尚未进行定量分析。在这里,我们报告说,所有三种形式的金属离子相互作用都会导致非桥接磷酸氧基(nu(s)PO(2)(-))的对称振动的拉曼信号衰减,而只有内球配位会导致 nu(s)PO(2)(-)在溶液中向更高的波数(nu(s)PO(2)(-)M)明显移动。nu(s)PO(2)(-)M 的形成不仅取决于金属离子的种类,而且是特定部位金属离子结合的准确测量。此外,反映 nu(s)PO(2)(-)和 nu(s)PO(2)(-)M 之间能量差异的光谱参数(DeltanuM)对磷酸二酯结构的变化基本不敏感,但对相互作用金属离子的绝对电负性和硬度强烈依赖。这些研究为使用 nu(s)PO(2)(-)M 和 DeltanuM 作为定量分析金属结合亲和力和鉴定溶液中与磷酸二酯相关的金属离子的一般光谱特征提供了强有力的实验支持。