Das Rhiju, Travers Kevin J, Bai Yu, Herschlag Daniel
Department of Physics and Biochemistry, Stanford University, Stanford, CA 94305, USA.
J Am Chem Soc. 2005 Jun 15;127(23):8272-3. doi: 10.1021/ja051422h.
The folding and catalytic function of RNA molecules depend on their interactions with divalent metal ions, such as magnesium. As with every molecular process, the most basic knowledge required for understanding the close relationship of an RNA with its metal ions is the stoichiometry of the interaction. Unfortunately, inventories of the numbers of divalent ions associated with unfolded and folded RNA states have been unattainable. A common approach has been to interpret Hill coefficients fit to folding equilibria as the number of metal ions bound upon folding. However, this approach is vitiated by the presence of diffusely associated divalent ions in a dynamic ion atmosphere and by the likelihood of multiple transitions along a folding pathway. We demonstrate that the use of molar concentrations of background monovalent salt can alleviate these complications. These simplifying solution conditions allow a precise determination of the stoichiometry of the magnesium ions involved in folding the metal ion core of the P4-P6 domain of the Tetrahymena group I ribozyme. Hill analysis of hydroxyl radical footprinting data suggests that the P4-P6 RNA core folds cooperatively upon the association of two metal ions. This unexpectedly small stoichiometry is strongly supported by counting magnesium ions associated with the P4-P6 RNA via fluorescence titration and atomic emission spectroscopy. By pinpointing the metal ion stoichiometry, these measurements provide a critical but previously missing step in the thermodynamic dissection of the coupling between metal ion binding and RNA folding.
RNA分子的折叠和催化功能取决于它们与二价金属离子(如镁离子)的相互作用。与每一个分子过程一样,理解RNA与其金属离子之间密切关系所需的最基本知识是相互作用的化学计量。不幸的是,尚未获得与未折叠和折叠RNA状态相关的二价离子数量清单。一种常见的方法是将拟合折叠平衡的希尔系数解释为折叠时结合的金属离子数量。然而,这种方法因动态离子氛围中存在扩散相关的二价离子以及折叠途径上可能存在多个转变而失效。我们证明,使用背景单价盐的摩尔浓度可以缓解这些复杂性。这些简化的溶液条件允许精确测定参与折叠嗜热四膜虫I组核酶P4 - P6结构域金属离子核心的镁离子化学计量。对羟基自由基足迹数据的希尔分析表明,P4 - P6 RNA核心在两个金属离子结合时协同折叠。通过荧光滴定和原子发射光谱法对与P4 - P6 RNA相关的镁离子进行计数,有力地支持了这一意外小的化学计量。通过确定金属离子化学计量,这些测量为金属离子结合与RNA折叠之间耦合的热力学剖析提供了关键但此前缺失的一步。