| Literature DB >> 27699878 |
Daniele Padula1, Sandro Jurinovich1, Lorenzo Di Bari1, Benedetta Mennucci1.
Abstract
We present a quantum mechanical (QM) simulation of the electronic circular dichroism (ECD) of nucleic acids (NAs). The simulation combines classical molecular dynamics, to obtain the structure and its temperature-dependent fluctuations, with a QM excitonic model to determine the ECD. The excitonic model takes into account environmental effects through a polarizable embedding and uses a refined approach to calculate the electronic couplings in terms of full transition densities. Three NAs with either similar conformations but different base sequences or similar base sequences but different conformations have been investigated and the results were compared with experimental observations; a good agreement was seen in all cases. A detailed analysis of the nature of the ECD bands in terms of their excitonic composition was also carried out. Finally, a comparison between the QM and the DeVoe models clearly revealed the importance of including fluctuations of the excitonic parameters and of accurately determining the electronic couplings. This study demonstrates the feasibility of the ab initio simulation of the ECD spectra of NAs, that is, without the need of experimental structural or electronic data.Entities:
Keywords: circular dichroism; computational chemistry; electronic structure; molecular dynamics; nucleic acids
Mesh:
Substances:
Year: 2016 PMID: 27699878 DOI: 10.1002/chem.201602777
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236