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Synthesis of novel 5-(2,5-bis(2,2,2-trifluoroethoxy)phenyl)-1,3,4-oxadiazole-2-thiol derivatives as potential glucosidase inhibitors
- Source :
- Bioorganic chemistry. 114
- Publication Year :
- 2021
-
Abstract
- Background A hybrid molecule of different biologically active substances can improve affinity and efficiency compared to a standard drug. Hence based on this fact, we predict that a combination of fluorine, oxadiazole, sulfur, etc., may enhance α-glucosidase inhibition activity compared to a standard drug. Methods A series of novel 5-(2,5-bis(2,2,2-trifluoroethoxy)phenyl)-1,3,4-oxadiazole-2-thiol derivatives (2a-2i) were synthesized and characterized using spectroscopic techniques such as 1HNMR and LC-MS. In order to evaluate its bioactivity, in vitro α-amylase and α-glycosidase inhibitory activity were performed. In vivo study was carried using a genetic model, Drosophila melanogaster, for assessing the antihyperglycemic effects. Results The compounds 2a-2i demonstrated α-amylase inhibitory activity in the range of IC50 = 40.00–80.00 μg/ml as compare to standard acarbose (IC50 = 34.71 μg/ml). Compounds 2a-2i demonstrated α-glucosidase inhibitory activity in the range of IC50 = 46.01–81.65 μg/ml as compared to standard acarbose (IC50 = 34.72 μg/ml). Docking studies on a target protein, N-terminal subunit of human Maltase-glucoamylase (PDB:2QMJ) was carried and the compounds were found to dock into the active site of the enzyme (Fig. 1). The predicted binding energies of the compounds were calculated. The in vitro studies indicate that compounds 2b and 2g had better activity among the synthesized compounds. Whereas in vivo study indicates that 2b, 2g, and 2i could lower glucose levels in the Drosophila, but then 17–30% reduced capacity than acarbose and may be overcome by adjusting their dosage. Conclusions The in vitro and in vivo studies indicate that compounds 2b and 2g had better activity among the synthesized compounds. This study has recognized that compounds like 2b, 2g, and 2i may be considered potential candidates for further developing a novel class of antidiabetic agents.
- Subjects :
- Male
Oxadiazole
01 natural sciences
Biochemistry
chemistry.chemical_compound
Structure-Activity Relationship
In vivo
Drug Discovery
Genetic model
medicine
Animals
Hypoglycemic Agents
Glycoside Hydrolase Inhibitors
Molecular Biology
Acarbose
Oxadiazoles
biology
Molecular Structure
010405 organic chemistry
Chemistry
Organic Chemistry
Active site
alpha-Glucosidases
Combinatorial chemistry
In vitro
0104 chemical sciences
Molecular Docking Simulation
010404 medicinal & biomolecular chemistry
Drosophila melanogaster
Glucose
Docking (molecular)
Amylases
biology.protein
Female
Target protein
medicine.drug
Protein Binding
Subjects
Details
- ISSN :
- 10902120
- Volume :
- 114
- Database :
- OpenAIRE
- Journal :
- Bioorganic chemistry
- Accession number :
- edsair.doi.dedup.....7c5251aebe7482fe69cca71844b18b9a