Synthesis of imidazole derivatives and in silico/in vitro evaluation of potential antidiabetic activity

Authors

  • Sanjana Mareguddi Department of Pharmaceutical Chemistry, BLDEA’s Shri Sanganabasava Mahaswamiji College of Pharmacy and Research Centre, Vijayapur-586 103, Karnataka, India
  • Prabitha Prabhakaran Department of Pharmaceutical Chemistry, JSS College of Pharmacy, JSS Academy of Higher Education & Research, Mysuru-570 010, Karnataka, India
  • Ammar Abdul Razzak Mahmood Department of Pharmaceutical Chemistry, College of Pharmacy, University of Baghdad, Baghdad, Iraq
  • Saleem Javid Yenepoya Pharmacy College and Research Centre, Yenepoya (Deemed to be University) University Road, Deralakatte, Mangalore-575 018, Karnataka, India
  • Nina Bhagyanath Department of Pharmaceutical Chemistry, Al-Ameen College of Pharmacy, Bangalore-560 027, Karnataka, India
  • Somashekhar Mahadevappa Metri Department of Pharmaceutical Chemistry, BLDEA’s Shri Sanganabasava Mahaswamiji College of Pharmacy and Research Centre, Vijayapur-586 103, Karnataka, India

DOI:

https://doi.org/10.56042/ijbb.v63i9.22771

Keywords:

α-Amylase inhibition, Dacarbazine, Imidazole derivatives, Ketoconazole, Losartan

Abstract

Diabetes mellitus (DM) is a chronic metabolic disorder characterized by persistent hyperglycemia due to insulin resistance or deficiency. The imidazole scaffold, a privileged heterocycle in medicinal chemistry, has shown significant promise in targeting key enzymes involved in type 2 DM (T2DM). In this study, eight novel imidazole derivatives were designed, synthesized, and structurally characterized using 1H NMR, 13C NMR, and mass spectrometry. Molecular docking studies against α-amylase and α-glucosidase revealed favourable binding affinities (−7.2 to −8.8 kcal/mol) and strong interactions with key catalytic residues. ADMET predictions using ADMET Lab 3.0 and SwissADME indicated good drug-likeness for most derivatives, and the top docking hit was subjected to a 100 ns molecular dynamics simulation (Desmond), which confirmed complex stability with minimal RMSD fluctuations (~1.8 Å) and persistent hydrogen bonding. In vitro α-amylase inhibition assays demonstrated potent activity, with compound SM-04 exhibiting an IC₅₀ of 21.5 ± 1.2 μM, comparable to the reference drug acarbose (18.9 ± 1.4 μM). MTT assays on 3T3-L1 cells indicated low cytotoxicity for all compounds. Overall, the synthesized imidazole derivatives displayed promising in silico and in vitro antidiabetic potential, supporting their development as leads for T2DM therapy.

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Published

2026-08-26

Issue

Section

Papers

How to Cite

Synthesis of imidazole derivatives and in silico/in vitro evaluation of potential antidiabetic activity. (2026). Indian Journal of Biochemistry and Biophysics (IJBB), 63(9), 1099-1111. https://doi.org/10.56042/ijbb.v63i9.22771

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