Design, synthesis, and computational assessment of bis ‑oxadiazole ligands targeting α-amylase and α-glucosidase: DFT, docking, and ADME studies

AIM: Type 2 diabetes mellitus (T2DM) is a chronic metabolic disorder characterized by persistent hyperglycemia, mainly due to postprandial glucose elevation. Inhibition of carbohydrate-hydrolyzing enzymes such as α-glucosidase and α-amylase is an effective strategy for its management. This study aimed to design, synthesize, characterize, and evaluate a series of bis-oxadiazole derivatives as potential anti-diabetic agents. METHODS: The target compounds were synthesized via multistep organic synthesis and structurally confirmed using spectroscopic techniques including FTIR, NMR, and HRMS. The in-vitro anti-diabetic potential was assessed through α-glucosidase and α-amylase inhibition assays. In addition, molecular docking studies were performed to investigate binding interactions and conformational stability within the active sites of both enzymes. Absorption, distribution, metabolism, excretion, and toxicity (ADMET) profiling was also carried out to evaluate drug-likeness and pharmacokinetic properties. RESULTS: = 5.50 and 5.60 μM, respectively). Compound 10 exhibited the most potent inhibitory activity against both enzymes, showing strong binding affinity and key hydrogen-bonding and hydrophobic interactions in docking studies. The spectroscopic characterization confirmed the successful formation of all target compounds. ADMET analysis indicated favorable pharmacokinetic and toxicity profiles for the most active derivatives. CONCLUSION: The combined experimental and computational results demonstrate significant structure-activity relationships within the bis-oxadiazole scaffold, identifying compound 10 as a promising lead candidate for further optimization as a dual enzyme inhibitor for diabetes management.

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Publication Details

Journal
Future Medicinal Chemistry
Published
2026-09-18
DOI
https://doi.org/10.1080/17568919.2026.2732262
Primary Topic
Natural Antidiabetic Agents Studies
Type
article
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article

Design, synthesis, and computational assessment of bis ‑oxadiazole ligands targeting α-amylase and α-glucosidase: DFT, docking, and ADME studies

Bibi Nazia Murtaza, Faez Falah Alshehri, Aftab Ahmad Khan, Hamdy Kashtoh et al.
Future Medicinal Chemistry
Natural Antidiabetic Agents Studies
article

Design, synthesis, and computational assessment of bis ‑oxadiazole ligands targeting α-amylase and α-glucosidase: DFT, docking, and ADME studies

Bibi Nazia Murtaza, Faez Falah Alshehri, Aftab Ahmad Khan, Hamdy Kashtoh, Magdi E. A. Zaki, Eman Alzahrani, Sobhi M. Gomha, Shoaib Khan, Sirajul Haq, Jamoliddin Razzokov, Tayyiaba Iqbal
article en

Abstract

AIM: Type 2 diabetes mellitus (T2DM) is a chronic metabolic disorder characterized by persistent hyperglycemia, mainly due to postprandial glucose elevation. Inhibition of carbohydrate-hydrolyzing enzymes such as α-glucosidase and α-amylase is an effective strategy for its management. This study aimed to design, synthesize, characterize, and evaluate a series of bis-oxadiazole derivatives as potential anti-diabetic agents. METHODS: The target compounds were synthesized via multistep organic synthesis and structurally confirmed using spectroscopic techniques including FTIR, NMR, and HRMS. The in-vitro anti-diabetic potential was assessed through α-glucosidase and α-amylase inhibition assays. In addition, molecular docking studies were performed to investigate binding interactions and conformational stability within the active sites of both enzymes. Absorption, distribution, metabolism, excretion, and toxicity (ADMET) profiling was also carried out to evaluate drug-likeness and pharmacokinetic properties. RESULTS: = 5.50 and 5.60 μM, respectively). Compound 10 exhibited the most potent inhibitory activity against both enzymes, showing strong binding affinity and key hydrogen-bonding and hydrophobic interactions in docking studies. The spectroscopic characterization confirmed the successful formation of all target compounds. ADMET analysis indicated favorable pharmacokinetic and toxicity profiles for the most active derivatives. CONCLUSION: The combined experimental and computational results demonstrate significant structure-activity relationships within the bis-oxadiazole scaffold, identifying compound 10 as a promising lead candidate for further optimization as a dual enzyme inhibitor for diabetes management.

Future Medicinal Chemistry
University of Central Asia (KG), China Three Gorges University (CN), Taif University (SA), Shaqra University (SA), Tashkent State Technical University named after Islam Karimov (UZ), Abbottabad University of Science and Technology (PK), Islamic University (BD), Tashkent Institute of Irrigation and Agricultural Mechanization Engineers (UZ), Karshi State University (UZ), Islamic University of Madinah (SA), Yeungnam University (KR)
Good health and well-being
Openalex Percentile: Top 11%
Natural Antidiabetic Agents Studies
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