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      Importance of H-Abstraction in the Final Step of Nitrosoalkane Formation in the Mechanism-Based Inactivation of Cytochrome P450 by Amine-Containing Drugs

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          Abstract

          The metabolism of amine-containing drugs by cytochrome P450 enzymes (P450s) is prone to form a nitrosoalkane metabolic intermediate (MI), which subsequently coordinates to the heme iron of a P450, to produce a metabolic-intermediate complex (MIC). This type of P450 inhibition, referred to as mechanism-based inactivation (MBI), presents a serious concern in drug discovery processes. We applied density functional theory (DFT) to the reaction between N-methylhydroxylamine (NMH) and the compound I reactive species of P450, in an effort to elucidate the mechanism of the putative final step of the MI formation in the alkylamine metabolism. Our DFT calculations show that H-abstraction from the hydroxyl group of NMH is the most favorable pathway via which the nitrosoalkane intermediate is produced spontaneously. H-abstraction from the N–H bond was slightly less favorable. In contrast, N-oxidation and H-abstraction from the C–H bond of the methyl group had much higher energy barriers. Hence, if the conversion of NMH to nitrosoalkane is catalyzed by a P450, the reaction should proceed preferentially via H-abstraction, either from the O–H bond or from the N–H bond. Our theoretical analysis of the interaction between the MI and pentacoordinate heme moieties provided further insights into the coordination bond in the MIC.

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            A post-Hartree-Fock model of intermolecular interactions: inclusion of higher-order corrections.

            We have previously demonstrated that the dipole moment of the exchange hole can be used to derive intermolecular C(6) dispersion coefficients [J. Chem. Phys. 122, 154104 (2005)]. This was subsequently the basis for a novel post-Hartree-Fock model of intermolecular interactions [J. Chem. Phys. 123, 024101 (2005)]. In the present work, the model is extended to include higher-order dispersion coefficients C(8) and C(10). The extended model performs very well for prediction of intermonomer separations and binding energies of 45 van der Waals complexes. In particular, it performs twice as well as basis-set extrapolated MP2 theory for dispersion-bound complexes, with minimal computational cost.
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              Theoretical perspective on the structure and mechanism of cytochrome P450 enzymes.

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                Author and article information

                Journal
                Int J Mol Sci
                Int J Mol Sci
                ijms
                International Journal of Molecular Sciences
                Molecular Diversity Preservation International (MDPI)
                1422-0067
                December 2013
                18 December 2013
                : 14
                : 12
                : 24692-24705
                Affiliations
                Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link 637371, Singapore; E-Mails: nandun.t@ 123456ntu.edu.sg , (N.M.T.); pratanph001@ 123456e.ntu.edu.sg (P.C.); xuka0004@ 123456e.ntu.edu.sg (K.X.)
                Author notes
                [* ]Author to whom correspondence should be addressed; E-Mail: hirao@ 123456ntu.edu.sg ; Tel.: +65-6592-2644; Fax: +65-6791-1961.
                Article
                ijms-14-24692
                10.3390/ijms141224692
                3876136
                24351842
                5659ca66-8389-442c-8415-d26f130e9c7c
                © 2013 by the authors; licensee MDPI, Basel, Switzerland

                This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license ( http://creativecommons.org/licenses/by/3.0/).

                History
                : 13 October 2013
                : 27 November 2013
                : 29 November 2013
                Categories
                Article

                Molecular biology
                mechanism-based inactivation,energy decomposition analysis,cytochrome p450,reaction mechanism,metabolic-intermediate complex,density functional theory

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