Rossi Mariana, Chutia Sucismita, Scheffler Matthias, Blum Volker
Fritz-Haber-Institut der Max-Planck-Gesellschaft, Berlin, D-14195 Germany.
J Phys Chem A. 2014 Sep 4;118(35):7349-59. doi: 10.1021/jp412055r. Epub 2014 Jan 22.
We assess the performance of a group of exchange-correlation functionals for predicting the secondary structure of peptide chains, up to a new many-body dispersion corrected hybrid density functional, dubbed PBE0+MBD* by its original authors. For the purpose of validation, we first compare to published, high-level benchmark conformational energy hierarchies (coupled cluster at the singles, doubles, and perturbative triples level, CCSD(T)) for 73 conformers of small three-residue peptides, establishing that the van der Waals corrected PBE0 functional yields an average error of only ∼20 meV (∼0.5 kcal/mol). This compares to ∼40-50 meV for nondispersion corrected PBE0 and 40-100 meV for different empirical force fields (estimated for the alanine tetrapeptide). For longer peptide chains that form a secondary structure, CCSD(T) level benchmark data are currently unaffordable. We thus turn to the experimentally well studied Ac-Phe-Ala5-LysH(+) peptide, for which four closely competing conformers were established by infrared spectroscopy. For comparison, an exhaustive theoretical conformational space exploration yields at least 11 competing low energy minima. We show that (i) the many-body dispersion correction, (ii) the hybrid functional nature of PBE0+MBD*, and (iii) zero-point corrections are needed to reveal the four experimentally observed structures as the minima that would be populated at low temperature.
我们评估了一组交换关联泛函预测肽链二级结构的性能,直至一种新的多体色散校正杂化密度泛函,其原作者将其命名为PBE0+MBD*。为了进行验证,我们首先将其与已发表的、针对73个小三肽残基构象异构体的高水平基准构象能量层次(单、双激发和微扰三激发水平的耦合簇方法,CCSD(T))进行比较,结果表明经范德华校正的PBE0泛函产生的平均误差仅约为20毫电子伏特(约0.5千卡/摩尔)。相比之下,未经色散校正的PBE0的误差约为40 - 50毫电子伏特,不同经验力场的误差为40 - 100毫电子伏特(针对丙氨酸四肽估算)。对于形成二级结构的较长肽链,目前无法负担CCSD(T)水平的基准数据。因此,我们转向实验研究充分的Ac-Phe-Ala5-LysH(+)肽,通过红外光谱确定了其四个紧密竞争的构象异构体。作为对比,详尽的理论构象空间探索产生了至少11个竞争的低能量极小值。我们表明(i)多体色散校正,(ii)PBE0+MBD*的杂化泛函性质,以及(iii)零点校正对于揭示四个实验观测到的结构作为低温下会占据的极小值是必要的。