Publication:
Antihyperglycemic Hydantoin Derivative: Design, Molecular Docking, Synthesis, Crystal Structure, Computational Studies, Pharmacological and Toxicological Activities

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Abstract

The phenytoin-derived compound 2-(2,5-dioxo-4,4-diphenylimidazolidin-1-yl)-N-(4-methoxyphenyl)acetamide referred to as Cpd3, investigated in this paper, was studied using Density Functional Theory (DFT) with the B3LYP method and 6-311++G(d,p) basis set, and its theoretical structure was validated against the experimental one. Frontier Molecular Orbitals (FMOs) analysis determined the energy gap between LUMO and HOMO, while a Molecular Electrostatic Potential (MEP) map identified nucleophilic and electrophilic regions. Hirshfeld Surface (HS) analysis examined intermolecular interactions. Then Molecular docking revealed strong binding affinities for alpha-glucosidase and alpha-amylase, with binding energies of-7.2 and-7.8 kcal/mol, respectively. These interactions were stabilized by various bonds, including hydrogen bonds and aromatic interactions. In vitro, the newly synthesized compound was evaluated for its antidiabetic activity against alpha-glucosidase and alpha-amylase enzymes and for antioxidant activity by utilizing several tests as DPPH (1, 1-diphenyl-2-picryl hydrazyl), ABTS (2, 2 '-azino-bis (3-ethyl benzthiazoline-6-sulfonicacid) and reducing power test (FRAP). Hydrolase enzyme inhibition assays showed potent inhibitory effects, with an IC50 of 43.58 +/- 1.02 mu M for alpha-glucosidase and 108.28 +/- 1.20 mu M for alpha-amylase, comparable to the standard drug approved Acarbose. These findings suggest Cpd3 as a promising candidate for antihyperglycemic therapy.

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El Moutaouakil Ala Allah, Abderrazzak/0000-0002-4846-4547; Demirtaş, Güneş/0000-0001-9953-4026; Walid, Guerrab/0000-0001-7317-4771; Ramli, Youssef/0000-0002-6885-5692

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Journal of Molecular Structure

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1333

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