Viswanathan Raji, Dannenberg J J
Department of Chemistry, Yeshiva College, 500 West 185th Street, New York, New York 10033, USA.
J Phys Chem B. 2008 Apr 24;112(16):5199-208. doi: 10.1021/jp8001004. Epub 2008 Apr 3.
We report the first molecular orbital/density functional theory (DFT) calculations on the vibrational frequencies involved in the amide I band of completely geometrically optimized models for beta-sheet peptides based upon (up to 16) glycine residues. These calculations use the B3LYP/D95** level of DFT. The primary means of vibrational coupling occurs through H bond, rather than through space, interactions, which is consistent with a previous report on alpha-helical polyalanines and H-bonding chains of both formamides and 4-pyridones. We decoupled the C=O stretching vibrations using selected 14C substitutions to probe the coupling mechanism and to determine "natural" frequencies for individual 14C=Os. The intermolecular H-bonding interactions affect the geometries of the amide groups. Those near the center of H-bonding chains have long C=O bonds. The C=O bond lengths correlate with these "natural" frequencies, The frequencies obtained from the DFT calculations are generally more coupled, and the most intense are more red shifted than those calculated by transition dipole coupling (TDC). TDC inverts the order of the shifted frequencies compared to DFT in several cases.
我们报道了基于(多达16个)甘氨酸残基的β-折叠肽完全几何优化模型的酰胺I带所涉及振动频率的首次分子轨道/密度泛函理论(DFT)计算。这些计算使用了DFT的B3LYP/D95**水平。振动耦合的主要方式是通过氢键,而非空间相互作用,这与先前关于α-螺旋聚丙氨酸以及甲酰胺和4-吡啶酮的氢键链的报道一致。我们使用选定的14C取代来解耦C=O伸缩振动,以探究耦合机制并确定各个14C=O的“自然”频率。分子间氢键相互作用会影响酰胺基团的几何结构。那些靠近氢键链中心的基团具有较长的C=O键。C=O键长与这些“自然”频率相关。从DFT计算获得的频率通常耦合更强,并且最强烈的频率比通过跃迁偶极耦合(TDC)计算的频率红移更大。在几种情况下,与DFT相比,TDC使频移顺序反转。