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Electric field modulation of reactivity of the nitrogen mustard anticancer drug melphalan: A DFT study on aziridinium ion formation
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DOI:10.1016/j.comptc.2026.115783.png)
Abstract
En 中文
Density functional theory calculations at the omega B97X-D/SMD level were performed for aziridinium-ion formation for the anticancer drug melphalan, the key activation step of the nitrogen-mustard drug under positive and negative external electric fields (EEF) applied along a Cartesian axis. Local electronic responses were characterized using Wiberg bond indices, NBO donor-acceptor interactions, and electron localization function/localized orbital locator (ELF/LOL) descriptors. Positive fields enhance the nN ->sigma*C-Cl interaction, weaken the C-Cl bond, and shift the electron density toward a more dissociated C-Cl environment, demonstrating promotion of aziridinium formation at the electronic-structure level, while negative fields suppress these effects, slowing reactivity to reduce off-target toxicity. In contrast, the activation free energy displays a non-monotonic dependence on field strength. Analysis of field-dependent dipole moments for the reactant and transition state shows that this behavior originates from global field-induced molecular reorientation: the projections of their dipoles onto the fixed Cartesian field direction vary irregularly, leading to a non-linear relative stabilization of the transition state.
Keywords:
Nitrogen mustard chemotherapeutics
Aziridinium ion formation
Density functional theory
Electrochemotherapy
External electric field
Journal
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