Aulia Rahman
Bachelor of Pharmacy Study Program, Faculty of Science and Technology, University of Peradaban, Indonesia

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Interaction Study of 2-Benzoxazolinone Derivatives with DPP-4 and Aldose Reductase Enzymes: Discovery of Novel Antidiabetic Agents Aziez Ismunandar; Aulia Rahman; Helmi Aditya Putra; Syaiful Prayogi; Luthfi Hidayat
MEDFARM: Jurnal Farmasi dan Kesehatan Vol 15 No 1 (2026): Medfarm: Jurnal Farmasi dan Kesehatan
Publisher : LPPM Akafarma Sunan Giri Ponorogo

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.48191/medfarm.v15i1.760

Abstract

Diabetes mellitus (DM) is a metabolic disorder that represents a major global health burden. Its pathophysiology involves impaired insulin function, including pancreatic β-cell dysfunction, insulin resistance, defective insulin secretion, and autoimmune-mediated β-cell destruction. The identification of effective therapeutic agents and novel molecular targets remains a priority in antidiabetic drug discovery. Among potential targets, Aldose Reductase (ALR2) and Dipeptidyl Peptidase-4 (DPP-4) have attracted increasing interest because of their roles in DM progression and complications. Previous studies have suggested that 2-benzoxazolinone derivatives possess promising biological activities and may act as inhibitors of diabetes-related molecular targets. This study aimed to evaluate the interaction of selected 2-benzoxazolinone derivatives with ALR2 and DPP-4 using an in silico approach. Molecular docking was performed using PyRx integrated with AutoDock Vina, while BIOVIA Discovery Studio Visualizer and MarvinSketch were utilized for ligand preparation and interaction analysis. In addition, absorption, distribution, metabolism, excretion, and toxicity (ADMET) properties were predicted using the pKCSM platform. The results showed that compounds 6b (-11.1 kcal/mol; 0.01 µM), 6d (-11.1 kcal/mol; 0.01 µM), and bv10 (-10.8 kcal/mol; 0.01 µM) exhibited binding affinities against ALR2 comparable to the reference inhibitor Zopolrestat (-12.2 kcal/mol; 0.001 µM). For DPP-4, compounds c26 (-7.9 kcal/mol; 1.62 µM), c4 (-7.8 kcal/mol; 1.91 µM), and c6 (-7.7 kcal/mol; 2.27 µM) demonstrated better docking performance than Vildagliptin (-6.6 kcal/mol; 14.5 µM). These compounds also showed generally favorable ADMET profiles. Therefore, they warrant further in vitro and in vivo studies as potential antidiabetic drug candidates.
Computational Investigation of α-Glucosidase Inhibition by Phytochemical Compounds from Muntingia calabura L. Leaves: Insights into Potential Antidiabetic Agents Syaiful Prayogi; Aulia Rahman; Tsaiatul Mahbubah; Nabilla Defira Putri Maisaan
MEDFARM: Jurnal Farmasi dan Kesehatan Vol 14 No 2 (2025): Medfarm: Jurnal Farmasi dan Kesehatan
Publisher : LPPM Akafarma Sunan Giri Ponorogo

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.48191/medfarm.v14i2.682

Abstract

Diabetes Mellitus (DM) is a degenerative disease that poses a major global health problem. It is characterized by increased blood glucose levels (hyperglycemia). Common therapeutic agents for DM include sulfonylureas, biguanides, and α-glucosidase inhibitors. However, the use of α-glucosidase inhibitors is often associated with several issues such as the presence of non-intestinal α-glucosidase in various body cells, gastrointestinal side effects (diarrhea, bloating, abdominal discomfort), and high IC₅₀ values indicating low potency and efficacy against the α-glucosidase enzyme. This study aims to explore the potential of flavonoid compounds from Muntingia calabura L. (kersen) leaves as α-glucosidase inhibitors through in silico analysis. The study was conducted using molecular docking to evaluate the binding affinity and interaction of flavonoid compounds with the α-glucosidase enzyme. The docking results showed that 8 ligands test exhibited strong binding affinities, inhibitors constants, and stable interactions with the active site of α-glucosidase, comparable to standard inhibitors (acarbose). The two most promising ligands as α-glucosidase inhibitors were identified as 20,40-Dihydroxy-30-methoxydihydrochalcone (50) and (-)-30-Methoxy-20,40,β-trihydroxydihydrochalcone (51), exhibiting binding affinities and inhibition constants of –7.33 kcal/mol; 4.27 μM and –7.30 kcal/mol; 4.45 μM, respectively, have promising potential as natural α-glucosidase inhibitors and may serve as lead compounds for the development of new antidiabetic agents. Their inhibitory potential was further supported by favorable ADMET parameters and compliance with Lipinski’s rule of five. Further in vitro and in vivo studies are needed to confirm these findings.