4.7 Article

Mechanism-Based Insights into Removing the Mutagenicity of Aromatic Amines by Small Structural Alterations

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JOURNAL OF MEDICINAL CHEMISTRY
卷 64, 期 12, 页码 8545-8563

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AMER CHEMICAL SOC
DOI: 10.1021/acs.jmedchem.1c00514

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This study investigates the mechanism of N-hydroxylation of aromatic and heteroaromatic amines by CYP1A2 using density functional theory calculations, finding that bioactivation follows an anionic pathway. The results demonstrate that mutagenicity of ArNH2 can be removed by disrupting geometric and electrostatic fit to CYP1A2.
Aromatic and heteroaromatic amines (ArNH2) are activated by cytochrome P450 monooxygenases, primarily CYP1A2, into reactive N-arylhydroxylamines that can lead to covalent adducts with DNA nucleobases. Hereby, we give hands-on mechanism-based guidelines to design mutagenicity-free ArNH2. The mechanism of N-hydroxylation of ArNH2 by CYP1A2 is investigated by density functional theory (DFT) calculations. Two putative pathways are considered, the radicaloid route that goes via the classical ferryl-oxo oxidant and an alternative anionic pathway through Fenton-like oxidation by ferriheme-bound H2O2. Results suggest that bioactivation of ArNH2 follows the anionic pathway. We demonstrate that H-bonding and/or geometric fit of ArNH2 to CYP1A2 as well as feasibility of both proton abstraction by the ferriheme-peroxo base and heterolytic cleavage of arylhydroxylamines render molecules mutagenic. Mutagenicity of ArNH2 can be removed by structural alterations that disrupt geometric and/or electrostatic fit to CYP1A2, decrease the acidity of the NH2 group, destabilize arylnitrenium ions, or disrupt their pre-covalent transition states with guanine.

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