Department of Chemistry and Biochemistry, University of California San Diego, 9500 Gilman Drive, La Jolla, California, 92093.
San Diego Supercomputer Center, University of California San Diego, 9500 Gilman Drive, La Jolla, California, 92093.
J Comput Chem. 2017 Jul 5;38(18):1631-1639. doi: 10.1002/jcc.24804. Epub 2017 May 3.
Combined quantum mechanical molecular mechanics (QM/MM) calculations have become a popular methodology for efficient and accurate description of large molecular systems. In this work we introduce our development of a QM/MM framework based on two well-known codes-NWChem and AMBER. As an initial application area we are focused on excited state properties of small molecules in an aqueous phase using an analogue of the green fluorescent protein (GFP) chromophore as a particular test case. Our approach incorporates high level coupled cluster theory for the analysis of excited states providing a reliable theoretical analysis of effects of an aqueous solvation environment on the photochemical properties of the GFP chromophore. Using a systematic approach, which involves comparison of gas phase and aqueous phase results for different protonation states and conformations, we resolve existing uncertainties regarding the theoretical interpretation of experimental data. We observe that the impact of aqueous environment on charged states generally results in blue shifts of the absorption spectra, but the magnitude of the effect is sensitive to both protonation state and conformation and can be rationalized based on charge movement into the area of higher/lower external electrostatic potentials. At neutral pH levels the experimentally observed absorption signal is most likely coming from the phenol protonated form. Our results also show that the high level electron correlated method is essential for a proper description of excited states of GFP. © 2017 Wiley Periodicals, Inc.
结合量子力学分子力学(QM/MM)计算已成为一种高效、准确描述大分子体系的流行方法。在这项工作中,我们引入了一个基于两个著名代码——NWChem 和 AMBER 的 QM/MM 框架。作为初始应用领域,我们专注于水溶液中小分子的激发态性质,以绿色荧光蛋白(GFP)发色团的类似物作为特定的测试案例。我们的方法结合了高级耦合簇理论来分析激发态,为 GFP 发色团的光化学性质受水溶剂环境的影响提供了可靠的理论分析。通过一种系统的方法,包括比较不同质子化状态和构象的气相和液相结果,我们解决了关于实验数据理论解释的现有不确定性。我们观察到,水环境对带电态的影响通常导致吸收光谱的蓝移,但这种影响的大小对质子化状态和构象都很敏感,可以根据电荷向更高/更低的外部静电势区域的移动来合理化。在中性 pH 水平下,实验观察到的吸收信号很可能来自酚羟基质子化形式。我们的结果还表明,高级电子相关方法对于正确描述 GFP 的激发态是必不可少的。© 2017 威利父子公司