Otaki Hiroki, Yagi Kiyoshi, Ishiuchi Shun-Ichi, Fujii Masaaki, Sugita Yuji
Laboratory for Chemistry and Life Science, Institute for Innovative Research, Tokyo Institute of Technology , 4259 Nagatsuta-cho, Midori-ku, Yokohama 226-8503, Japan.
RIKEN Advanced Institute for Computational Science , 7-1-26 Minatojima-Minamimachi, Chuo-ku, Kobe, Hyogo 650-0047, Japan.
J Phys Chem B. 2016 Oct 6;120(39):10199-10213. doi: 10.1021/acs.jpcb.6b06672. Epub 2016 Sep 27.
An accurate theoretical prediction of the vibrational spectrum of polypeptides remains to be a challenge due to (1) their conformational flexibility and (2) non-negligible anharmonic effects. The former makes the search for conformers that contribute to the spectrum difficult, and the latter requires an expensive, quantum mechanical calculation for both electrons and vibrations. Here, we propose a new theoretical approach, which implements an enhanced conformational sampling by the replica-exchange molecular dynamics method, a structural clustering to identify distinct conformations, and a vibrational structure calculation by the second-order vibrational quasi-degenerate perturbation theory (VQDPT2). A systematic mode-selection scheme is developed to reduce the cost of VQDPT2 and the generation of a potential energy surface by the electronic structure calculation. The proposed method is applied to a pentapeptide, SIVSF-NH, for which the infrared spectrum has recently been measured in the gas phase with high resolution in the OH and NH stretching region. The theoretical spectrum of the lowest energy conformer is obtained with a mean absolute deviation of 11.2 cm from the experimental spectrum. Furthermore, the NH stretching frequencies of the five lowest energy conformers are found to be consistent with the literature values measured for small peptides with a similar secondary structure. Therefore, the proposed method is a promising way to analyze the vibrational spectrum of polypeptides.
由于(1)多肽的构象灵活性和(2)不可忽略的非谐效应,对其振动光谱进行准确的理论预测仍然是一项挑战。前者使得寻找对光谱有贡献的构象异构体变得困难,而后者需要对电子和振动进行昂贵的量子力学计算。在此,我们提出一种新的理论方法,该方法通过副本交换分子动力学方法实现增强的构象采样、通过结构聚类来识别不同的构象,并通过二阶振动准简并微扰理论(VQDPT2)进行振动结构计算。开发了一种系统的模式选择方案,以降低VQDPT2的成本以及通过电子结构计算生成势能面的成本。所提出的方法应用于五肽SIVSF-NH,最近已在气相中对其OH和NH伸缩区域进行了高分辨率的红外光谱测量。获得了最低能量构象异构体的理论光谱,与实验光谱的平均绝对偏差为11.2 cm。此外,发现五个最低能量构象异构体的NH伸缩频率与具有相似二级结构的小肽的文献值一致。因此,所提出的方法是分析多肽振动光谱的一种有前途的方法。