| Literature DB >> 27183467 |
Oksana Degtjarik1,2, Jiři Brynda3, Olga Ettrichova1, Michal Kuty1,2, Dhiraj Sinha1,2, Ivana Kuta Smatanova1,2, Jannette Carey1,4, Rüdiger Ettrich1,2, David Řeha1,2.
Abstract
UNLABELLED: Quantum mechanical calculations using the Marcus equation are applied to compare the electron-transfer probability for two distinct crystal structures of the Escherichia coli protein WrbA, an FMN-dependent NAD(P)H: quinone oxidoreductase, with the bound substrate benzoquinone. The calculations indicate that the position of benzoquinone in a new structure reported here and solved at 1.33 Å resolution is more likely to be relevant for the physiological reaction of WrbA than a previously reported crystal structure in which benzoquinone is shifted by ∼5 Å. Because the true electron-acceptor substrate for WrbA is not yet known, the present results can serve to constrain computational docking attempts with potential substrates that may aid in identifying the natural substrate(s) and physiological role(s) of this enzyme. The approach used here highlights a role for quantum mechanical calculations in the interpretation of protein crystal structures.Entities:
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Year: 2016 PMID: 27183467 DOI: 10.1021/acs.jpcb.5b11958
Source DB: PubMed Journal: J Phys Chem B ISSN: 1520-5207 Impact factor: 2.991