Crystallographic, Topological, Antidiabetic, and Docking Evaluation of an Azo-Enamine Ligand and its Triphenyltin(IV) Coordination Polymer

Abstract

The ligand 2-((E)-((Z)-3-(((2-hydroxyethyl)amino)methylene)-4-oxocyclohexa-1,5-dien-1-yl)diazenyl)benzoic acid (H3L) was synthesized and structurally characterized for the first time. Single-crystal X-ray diffraction study confirmed that H3L adopts a stable azo-enamine tautomeric form in solid state stabilized by intramolecular hydrogen bonding. The corresponding polymeric triphenyltin(IV) complex [Ph3Sn(IV)HL] (1) was also synthesized and characterized by FTIR, multinuclear NMR, and X-ray crystallography. Structural analysis revealed a five-coordinate distorted trigonal bipyramidal geometry around the Sn(IV) center. Topological analysis of both structures highlighted distinct hydrogen-bonded and valence-bonded network topologies (2C1 and sql types, respectively), underscoring supramolecular structural features. In vitro α-glucosidase inhibition studies demonstrated that H3L possesses strong inhibitory activity, particularly in DMSO (79.36%, IC50 ≈ 26.8 µg/mL), outperforming the standard inhibitor acarbose, while complex 1 showed negligible inhibition. Molecular docking against α-glucosidase (PDB ID: 5ZCB) supported these findings, showing that (H3L) exhibits a more favorable binding affinity (MolDock score: –87.92 kcal/mol) and a stronger interaction profile than acarbose. These results highlight the potential of (H3L) as a promising lead compound for the development of α-glucosidase inhibitors.

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Article information

Article type
Paper
Submitted
04 Sep 2025
Accepted
06 Mar 2026
First published
20 Mar 2026

New J. Chem., 2026, Accepted Manuscript

Crystallographic, Topological, Antidiabetic, and Docking Evaluation of an Azo-Enamine Ligand and its Triphenyltin(IV) Coordination Polymer

A. Das, D. Nama, C. Majumder, S. Roy, S. S. Singh, A. Sandham, S. Pradeep Singh, M. Roy and T. K. Misra, New J. Chem., 2026, Accepted Manuscript , DOI: 10.1039/D5NJ03575A

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