Molecular mechanics force field-based map for peptide amide-I mode in solution and its application to alanine di- and tripeptides.
Kaicong Cai, Chen Han, Jianping Wang
Index: Phys. Chem. Chem. Phys. 11(40) , 9149-59, (2009)
Full Text: HTML
Abstract
A molecular mechanics (MM) force field-based empirical electrostatic potential map (MM map) for amide-I vibrations is developed with the aim of seeking a quick and reasonable approach to computing local mode parameters and their distributions in solution phase. Using N-methylacetamide (NMA) as a model compound, the instantaneous amide-I normal-mode parameters (transition frequency and dipole) obtained at the level of MM force fields are converted to solution phase values by a four-site potential scheme, but without the need for quantum mechanical frequency computations of solute-solvent clusters as are required in constructing ab initio-based electrostatic potential or field maps. The linear IR line shape of the amide-I mode in NMA obtained from the frequency-time correlation function on the basis of the MM map are found to be comparable to those from the ab initio-based maps. Our results show that the amide-I local mode parameters are largely determined by the solvated peptide structure rather than by explicit solvent molecules, suggesting an inherent local structure sensitivity of the amide-I mode in solvated peptides. Applications to alanine di- and tripeptides are satisfactorily demonstrated, showing its usefulness as an alternative approach in providing vibrational parameters for the simulation of linear IR and 2D IR spectra of the amide-I modes in polypeptides.
Related Compounds
Related Articles:
2012-07-14
[J. Chem. Phys. 137(2) , 024102, (2012)]
2007-09-01
[Eur. J. Pharm. Sci. 32(1) , 69-76, (2007)]
2007-10-28
[Phys. Chem. Chem. Phys. 9(40) , 5423-35, (2007)]
2010-01-21
[J. Phys. Chem. B 114(2) , 1204-12, (2010)]
2013-04-11
[J. Phys. Chem. B 117(14) , 3689-706, (2013)]