J Chem Theory Comput. 2019 Oct 8;15(10):5716-5726. doi: 10.1021/acs.jctc.9b00540. Epub 2019 Sep 12.
We use state-of-the-art NMR experiments to measure apparent p values in the native protein environment and employ a cutting-edge combination of enhanced sampling and constant pH molecular dynamics (MD) simulations to rationalize strong p shifts. The major timothy grass pollen allergen Phl p 6 serves as an ideal model system for both methods due to its high number of titratable residues despite its comparably small size. We present a proton transition analysis as intuitive tool to depict the captured protonation state ensemble in atomistic detail. Combining microscopic structural details from MD simulations and macroscopic ensemble averages from NMR shifts leads to a comprehensive view on pH dependencies of protonation states and tautomers. Overall, we find striking agreement between simulation-based p predictions and experiment. However, our analyses suggest subtle differences in the underlying molecular origin of the observed p shifts. From accelerated constant pH MD simulations, we identify immediate proximity of opposite charges, followed by vicinity of equal charges as major driving forces for p shifts. NMR experiments on the other hand, suggest only a weak relation of p shifts and close contacts to charged residues, while the strongest influence derives from the dipolar character of α helices. The presented study hence pinpoints opportunities for improvements concerning the theoretical description of protonation state and tautomer probabilities. However, the coherence in the resulting apparent p values from simulations and experiment affirms cpH-aMD as a reliable tool to study allergen dynamics at varying pH levels.
我们使用最先进的 NMR 实验来测量天然蛋白质环境中的表观 p 值,并采用增强采样和恒 pH 分子动力学 (MD) 模拟的前沿组合来合理化强 p 位移。主要的豚草花粉过敏原 Phl p 6 是这两种方法的理想模型系统,因为它具有高数量的可滴定残基,尽管其相对较小。我们提出了质子跃迁分析作为直观工具,以原子细节描绘捕获的质子化状态集合。将 MD 模拟中的微观结构细节与 NMR 位移的宏观整体平均值相结合,可全面了解质子化状态和互变异构体的 pH 依赖性。总体而言,我们发现模拟预测的 p 值与实验值之间存在惊人的一致性。然而,我们的分析表明,观察到的 p 位移的潜在分子起源存在细微差异。从加速的恒 pH MD 模拟中,我们确定了相反电荷的直接接近,然后是等电荷的接近,这是 p 位移的主要驱动力。另一方面,NMR 实验表明,p 位移与带电荷残基的紧密接触之间只有微弱的关系,而最强的影响来自α螺旋的偶极性质。因此,本研究为改进质子化状态和互变异构体概率的理论描述指明了方向。然而,模拟和实验得出的表观 p 值的一致性证实了 cpH-aMD 是研究变 pH 水平下过敏原动力学的可靠工具。