Nitrile and thiocyanate IR probes: Molecular dynamics simulation studies

被引:103
作者
Oh, Kwang-Im [1 ,2 ]
Choi, Jun-Ho [1 ,2 ]
Lee, Joo-Hyun [1 ,2 ]
Han, Jae-Beom [1 ,2 ]
Lee, Hochan [1 ,2 ]
Cho, Minhaeng [1 ,2 ,3 ]
机构
[1] Korea Univ, Dept Chem, Seoul 136701, South Korea
[2] Korea Univ, Ctr Multidimens Spect, Seoul 136701, South Korea
[3] Korea Basic Sci Inst, Multidimens Spect Lab, Seoul 136713, South Korea
关键词
D O I
10.1063/1.2904558
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Nitrile- and thiocyanate-derivatized amino acids have been found to be useful IR probes for investigating their local electrostatic environments in proteins. To shed light on the CN stretch frequency shift and spectral lineshape change induced by interactions with hydrogen-bonding solvent molecules, we carried out both classical and quantum mechanical/molecular mechanical (QM/MM) molecular dynamics (MD) simulations for MeCN and MeSCN in water. These QM/ MM and conventional force field MD simulation results were found to be inconsistent with the experimental results as well as with the high-level ab initio calculation results of MeCN- water and MeSCN-water potential energies. Thus, a new set of atomic partial charges of MeCN and MeSCN is obtained. By using the MD simulation trajectories and the electrostatic potential model recently developed, the CN and SCN stretching mode frequency trajectories were obtained and used to simulate the IR spectra. The C N frequency blueshifts of MeCN and MeSCN in water are estimated to be 9.0 and 1.9 cm(-1), respectively, in comparison with those of gas phase values. These values are found to be in reasonable agreement with the experimentally measured IR spectra of MeCN, MeSCN, beta-cyano-L-alanine, and cyanylated cysteine in water and other polar solvents. (c) 2008 American Institute of Physics.
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页数:10
相关论文
共 74 条
[1]   Vibrational Stark effects of nitriles II. Physical origins of stark effects from experiment and perturbation models [J].
Andrews, SS ;
Boxer, SG .
JOURNAL OF PHYSICAL CHEMISTRY A, 2002, 106 (03) :469-477
[2]   Vibrational stark effects of nitriles I. Methods and experimental results [J].
Andrews, SS ;
Boxer, SG .
JOURNAL OF PHYSICAL CHEMISTRY A, 2000, 104 (51) :11853-11863
[3]   SOLVENT AND PRESSURE-INDUCED PERTURBATIONS OF THE VIBRATIONAL POTENTIAL SURFACE OF ACETONITRILE [J].
BENAMOTZ, D ;
LEE, MR ;
CHO, SY ;
LIST, DJ .
JOURNAL OF CHEMICAL PHYSICS, 1992, 96 (12) :8781-8792
[4]   Liquid water-acetonitrile mixtures at 25 degrees C: The hydrogen-bonded structure studied through infrared absolute integrated absorption intensities [J].
Bertie, JE ;
Lan, ZD .
JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (20) :4111-4119
[5]   Empirical modeling of the peptide amide I band IR intensity in water solution [J].
Bour, P ;
Keiderling, TA .
JOURNAL OF CHEMICAL PHYSICS, 2003, 119 (21) :11253-11262
[6]   On the influence of the water electrostatic field on the amide group vibrational frequencies [J].
Bour, P .
JOURNAL OF CHEMICAL PHYSICS, 2004, 121 (16) :7545-7548
[7]   A quantitative theory and computational approach for the vibrational Stark effect [J].
Brewer, SH ;
Franzen, S .
JOURNAL OF CHEMICAL PHYSICS, 2003, 119 (02) :851-858
[8]  
Case D.A., 2006, AMBER 9
[9]  
Case D.A., 2004, AMBER 8
[10]   The Amber biomolecular simulation programs [J].
Case, DA ;
Cheatham, TE ;
Darden, T ;
Gohlke, H ;
Luo, R ;
Merz, KM ;
Onufriev, A ;
Simmerling, C ;
Wang, B ;
Woods, RJ .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2005, 26 (16) :1668-1688