| Literature DB >> 29756218 |
Sara Del Galdo1, Giordano Mancini1,2, Isabella Daidone3, Laura Zanetti Polzi3, Andrea Amadei4, Vincenzo Barone1,2.
Abstract
The UV-vis spectrum of Tyrosine and its response to different backbone protonation states have been studied by applying the Perturbed Matrix Method (PMM) in conjunction with molecular dynamics (MD) simulations. Herein, we theoretically reproduce the UV-vis absorption spectrum of aqueous solution of Tyrosine in its zwitterionic, anionic and cationic forms, as well as of aqua-p-Cresol (i.e., the moiety that constitutes the side chain portion of Tyrosine). To achieve a better accuracy in the MD sampling, the Tyrosine Force Field (FF) parameters were derived de novo via quantum mechanical calculations. The UV-vis absorption spectra are computed considering the occurring electronic transitions in the vertical approximation for each of the chromophore configurations sampled by the classical MD simulations, thus including the effects of the chromophore semiclassical structural fluctuations. Finally, the explicit treatment of the perturbing effect of the embedding environment permits to fully model the inhomogeneous bandwidth of the electronic spectra. Comparison between our theoretical-computational results and experimental data shows that the used model captures the essential features of the spectroscopic process, thus allowing to perform further analysis on the strict relationship between the quantum properties of the chromophore and the different embedding environments.Entities:
Keywords: Perturbed Matrix Method; Tyrosine; force field refinement; molecular dynamics; semiclassical computational spectroscopy
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Year: 2018 PMID: 29756218 DOI: 10.1002/jcc.25351
Source DB: PubMed Journal: J Comput Chem ISSN: 0192-8651 Impact factor: 3.376