Department of Chemistry, Wabash College, Crawfordsville, Indiana 47933, United States.
J Am Chem Soc. 2013 Jun 26;135(25):9391-8. doi: 10.1021/ja4002986. Epub 2013 Jun 11.
We have explored the relationship between conformational energetics and the protonation state of the Schiff base in retinal, the covalently bound ligand responsible for activating the G protein-coupled receptor rhodopsin, using quantum chemical calculations. Guided by experimental structural determinations and large-scale molecular simulations on this system, we examined rotation about each bond in the retinal polyene chain, for both the protonated and deprotonated states that represent the dark and photoactivated states, respectively. Particular attention was paid to the torsional degrees of freedom that determine the shape of the molecule, and hence its interactions with the protein binding pocket. While most torsional degrees of freedom in retinal are characterized by large energetic barriers that minimize structural fluctuations under physiological temperatures, the C6-C7 dihedral defining the relative orientation of the β-ionone ring to the polyene chain has both modest barrier heights and a torsional energy surface that changes dramatically with protonation of the Schiff base. This surprising coupling between conformational degrees of freedom and protonation state is further quantified by calculations of the pKa as a function of the C6-C7 dihedral angle. Notably, pKa shifts of greater than two units arise from torsional fluctuations observed in molecular dynamics simulations of the full ligand-protein-membrane system. It follows that fluctuations in the protonation state of the Schiff base occur prior to forming the activated MII state. These new results shed light on important mechanistic aspects of retinal conformational changes that are involved in the activation of rhodopsin in the visual process.
我们使用量子化学计算方法研究了视黄醛中席夫碱的质子化状态与构象能之间的关系。席夫碱是与激活 G 蛋白偶联受体视蛋白的共价结合配体。在该系统的实验结构测定和大规模分子模拟的指导下,我们分别检查了质子化和去质子化状态(分别代表黑暗和光激活状态)下视黄醛多烯链中每个键的旋转。特别关注决定分子形状的扭转自由度,从而决定其与蛋白质结合口袋的相互作用。虽然视黄醛中的大多数扭转自由度都具有较大的能量障碍,可在生理温度下最小化结构波动,但 C6-C7 二面角定义了 β-紫罗兰酮环与多烯链的相对方向,其势垒高度适中,且随着席夫碱的质子化,扭转能面会发生剧烈变化。这种构象自由度与质子化状态之间的惊人耦合通过计算 pKa 随 C6-C7 二面角的变化进一步量化。值得注意的是,来自于全配体-蛋白质-膜系统分子动力学模拟中观察到的扭转波动,导致了 pKa 超过两个单位的变化。因此,席夫碱的质子化状态的波动发生在形成激活的 MII 状态之前。这些新结果揭示了视黄醛构象变化在视觉过程中激活视蛋白的重要机制方面。