ArticleJournal of the American Chemical Society2011
Catalytic mechanism of cytochrome P450 for 5'-hydroxylation of nicotine: fundamental reaction pathways and stereoselectivity.
Article in Journal of the American Chemical Society, 2011. The graph could read no effect estimate from its abstract, so it casts no vote on the map. An erratum has been issued. Cited by 21 papers.
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Who cites it
21 citing papers in PubMed, 122 citations in OpenAlex.
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- Computational Understanding of the Selectivities in Metalloenzymes.Frontiers in chemistry · 2018Review
- Catalytic Mechanisms for Cofactor-Free Oxidase-Catalyzed Reactions: Reaction Pathways of Uricase-Catalyzed Oxidation and Hydration of Uric Acid.ACS catalysis · 2017Article
- The new competitive mechanism of hydrogen bonding interactions and transition process for the hydroxyphenyl imidazo [1, 2-a] pyridine in mixed liquid solution.Scientific reports · 2017Article
- Schiff base derived from thiosemicarbazone and anthracene showed high potential in overcoming multidrug resistance in vitro with low drug resistance index.Drug design, development and therapy · 2017Article
- Insights into the Competing Mechanisms and Origin of Enantioselectivity for N-Heterocyclic Carbene-Catalyzed Reaction of Aldehyde with Enamide.Scientific reports · 2016Article
- Theoretical Study of the ESIPT Process for a New Natural Product Quercetin.Scientific reports · 2016Article
- Radicalization and Radical Catalysis of Biomass Sugars: Insights from First-principles Studies.Scientific reports · 2016Article
- Fundamental reaction pathway and free energy profile of proteasome inhibition by syringolin A (SylA).Organic & biomolecular chemistry · 2015Article
- Probing Difference in Binding Modes of Inhibitors to MDMX by Molecular Dynamics Simulations and Different Free Energy Methods.PloS one · 2015Article
- Binding free energies for nicotine analogs inhibiting cytochrome P450 2A6 by a combined use of molecular dynamics simulations and QM/MM-PBSA calculations.Bioorganic & medicinal chemistry · 2014Article
- Fundamental reaction pathway for peptide metabolism by proteasome: insights from first-principles quantum mechanical/molecular mechanical free energy calculations.The journal of physical chemistry. B · 2013Article
- Reaction pathway and free energy profile for papain-catalyzed hydrolysis of N-acetyl-Phe-Gly 4-nitroanilide.Biochemistry · 2013Article
- The substitution reaction of (CNC)Fe-2N₂ with CO.Journal of molecular modeling · 2013Article
- Quantum mechanics/molecular mechanics modeling of regioselectivity of drug metabolism in cytochrome P450 2C9.Journal of the American Chemical Society · 2013Article
- Quantum chemistry as a tool in asymmetric biocatalysis: limonene epoxide hydrolase test case.Angewandte Chemie (International ed. in English) · 2013Article
- Catalytic mechanism of cytochrome P450 for N-methylhydroxylation of nicotine: reaction pathways and regioselectivity of the enzymatic nicotine oxidation.Dalton transactions (Cambridge, England : 2003) · 2013Article
- Fundamental reaction pathway and free energy profile for inhibition of proteasome by Epoxomicin.Journal of the American Chemical Society · 2012Article
- Computational prediction of metabolism: sites, products, SAR, P450 enzyme dynamics, and mechanisms.Journal of chemical information and modeling · 2012Review
Corrections and comments
- Erratum issued
Authors and funding
4 authors at 3 institutions in 2 countries.
Funding
Abstract
A series of computational methods were used to study how cytochrome P450 2A6 (CYP2A6) interacts with (S)-(-)-nicotine, demonstrating that the dominant molecular species of (S)-(-)-nicotine in CYP2A6 active site exists in the free base state (with two conformations, SR(t) and SR(c)), despite the fact that the protonated state is dominant for the free ligand in solution. The computational results reveal that the dominant pathway of nicotine metabolism in CYP2A6 is through nicotine free base oxidation. Further, first-principles quantum mechanical/molecular mechanical free energy (QM/MM-FE) calculations were carried out to uncover the detailed reaction pathways for the CYP2A6-catalyzed nicotine 5'-hydroxylation reaction. In the determined CYP2A6-(S)-(-)-nicotine binding structures, the oxygen of Compound I (Cpd I) can abstract a hydrogen from either the trans-5'- or the cis-5'-position of (S)-(-)-nicotine. CYP2A6-catalyzed (S)-(-)-nicotine 5'-hydroxylation consists of two reaction steps, that is, the hydrogen transfer from the 5'-position of (S)-(-)-nicotine to the oxygen of Cpd I (the H-transfer step), followed by the recombination of the (S)-(-)-nicotine moiety with the iron-bound hydroxyl group to generate the 5'-hydroxynicotine product (the O-rebound step). The H-transfer step is rate-determining. The 5'-hydroxylation proceeds mainly with the stereoselective loss of the trans-5'-hydrogen, that is, the 5'-hydrogen trans to the pyridine ring. The calculated overall stereoselectivity of ∼97% favoring the trans-5'-hydroxylation is close to the observed stereoselectivity of 89-94%. This is the first time it has been demonstrated that a CYP substrate exists dominantly in one protonation state (cationic species) in solution, but uses its less-favorable protonation state (neutral free base) to perform the enzymatic reaction.
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