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Free Radicals in Chemical Biology: from Chemical Behavior to Biomarker Development
Published on: April 15, 2013
Radical-Radical Interactions among Reduced Uracil Bases, Including Uracil Anion Radical and Hydrogenated Uracil
Jing Zhao1, Ruofei Hu2, Yuxiang Bu3
1College of Life Science, Dezhou University, Dezhou 253023, People's Republic of China.
Abstract:
Employing density functional theory (DFT), we systematically investigate the structural, electronic, and magnetic spin-coupling properties of a series of homogeneous and heterogeneous dimers of reduced uracil radicals (U•-, U6H•, U5H•, U4H•). Different hydrogen-bonding (Watson-Crick, Hoogsteen, and minor-groove) and π-π stacking configurations are examined. DFT and complete active space self-consistent field calculations reveal that the double-electron reduced, hydrogen-bonded base pairs (U6H•U6H•, U5H•U5H•, U6H•U5H•, U4H•U4H•) exhibit diradical character with tunable ferromagnetic (FM) or antiferromagnetic (AFM) coupling. Hydrogen-bonded dimers linked through Watson-Crick sites typically form weakly coupled open-shell singlets, while Hoogsteen or minor-groove connections significantly enhance AFM coupling strength. These magnetic interactions are governed by a balance of hydrogen bonding, electrostatic repulsion, and radical coupling. Notably, the U6H•U•- and U5H•U•- pairs form stable, nonmagnetic closed-shell complexes under strong hydrogen bonding. For the U•-U•- dimer, double-electron reduction induces metastability, leading to a negative yet barrier-hindered dissociation energy, an unusual phenomenon arising from competing hydrogen-bond attraction and electrostatic repulsion. In contrast, π-π stacked systems exhibit significantly stronger magnetic coupling and richer magnetic behavior. This work provides the first theoretical prediction of the electronic properties of potentially doubly reduced uracil-uracil base pairs, offering new insights into their magnetic tunability.
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