Mechanistic Evaluation of Radical Scavenging Pathways in Ginger Phenolics: A DFT Study of 6-Gingerol, 6-Shogaol, and 6-Paradol

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초록

Understanding the molecular determinants of antioxidant activity in natural phenolic compounds is essential for explaining their biological performance and designing new radical scavengers. In this work, the radical-scavenging mechanisms of three major ginger phenolics-6-gingerol (GIN), 6-shogaol (SHO), and 6-paradol (PAR)-were systematically investigated using density functional theory (DFT) thermochemistry at the M06-2X/6-31+G(d,p) level in the gas phase, benzene, and water. Three canonical pathways-hydrogen atom transfer (HAT), single-electron transfer followed by proton transfer (SET-PT), and sequential proton loss-electron transfer (SPLET)-were evaluated through full optimization and frequency calculations at 298.15 K, combined with the SMD solvation model. Frontier molecular orbital (FMO), molecular electrostatic potential (MEP), and quantum theory of atoms in molecules (QTAIM) analyses were employed to correlate electronic structure with reactivity. The results reveal a distinct solvent-dependent mechanistic crossover. In the gas phase and benzene, the low dielectric constant suppresses charge separation, making HAT the thermodynamically dominant pathway. In water, strong stabilization of ionic species lowers both the ionization and deprotonation barriers, allowing SPLET and SET-PT to become competitive or even preferred. Across all media, the phenolic O-H group is the principal reactive site, while the aliphatic O-H of GIN remains inactive. SHO exhibits the most versatile redox profile, combining a highly conjugated alpha,beta-unsaturated chain with favorable charge delocalization; PAR is somewhat less redox-active, while GIN shows intermediate performance governed by intramolecular hydrogen bonding. The assembled thermodynamics for HOO center dot scavenging confirm that all three phenolics are thermodynamically competent antioxidants (Delta G degrees approximate to -4 kcal mol-1 in water), with comparable driving forces; electronic descriptors indicate SHO is the most redox-flexible, GIN(phenolic) is moderately and PAR is somewhat less charge-transfer-prone, while GIN(aliphatic) remains inactive. These findings provide a comprehensive structure-to-mechanism correlation for ginger phenolics and establish a predictive framework for solvent-controlled antioxidant behavior in phenolic systems.

키워드

density functional theoryantioxidant mechanisms6-gingerol6-shogaol6-paradolhydrogen atom transfersingle-electron transfer-proton transfersequential proton loss-electron transferthermochemistrysolvent effectsmolecular reactivity descriptorshydroperoxyl radicalQTAIM analysisDENSITY-FUNCTIONAL THEORYANTIOXIDANT ACTIVITYELECTRONIC-PROPERTIESOXIDATIVE STRESSHARTREE-FOCKFLAVONOIDSKINETICSDESCRIPTORSPARAMETERSEFFICIENT
제목
Mechanistic Evaluation of Radical Scavenging Pathways in Ginger Phenolics: A DFT Study of 6-Gingerol, 6-Shogaol, and 6-Paradol
저자
Lgaz, HassaneMessali, MouslimLee, Han-seung
DOI
10.3390/ijms262211217
발행일
2025-11
유형
Article
저널명
International Journal of Molecular Sciences
26
22