中文名称 | 英文名称 | CAS号 | 化学式 | 分子量 |
---|---|---|---|---|
—— | (3-(benzyloxy)-4-chlorophenyl)methanol | 1252762-51-8 | C14H13ClO2 | 248.709 |
4-氯-3-羟基苯甲醛 | 4-chloro-3-hydroxybenzaldehyde | 56962-12-0 | C7H5ClO2 | 156.569 |
中文名称 | 英文名称 | CAS号 | 化学式 | 分子量 |
---|---|---|---|---|
—— | (3-(benzyloxy)-4-chlorophenyl)methanol | 1252762-51-8 | C14H13ClO2 | 248.709 |
—— | 4-(2-nitrovinyl)-1-chloro-2-(phenylmethoxy)benzene | 903578-38-1 | C15H12ClNO3 | 289.718 |
—— | (R)-4-(3-(benzyloxy)-4-chlorophenyl)pyrrolidin-2-one | 903578-40-5 | C17H16ClNO2 | 301.773 |
In the recent past, we have synthesized and reported different derivatives of oxadiazoles as potential α-glucosidase inhibitors, keeping in mind, the pharmacological aspects of oxadiazole moiety and in continuation of our ongoing research on the chemistry and bioactivity of new heterocyclic compounds.
1,3,4-Oxadiazole derivatives (1-14) have been synthesized and characterized by different spectroscopic techniques such as 1H-, 13C-NMR and HREI-MS.
The synthetic derivatives were screened for α-glucosidase inhibitory potential. All compounds exhibited good inhibitory activity with IC50 values ranging between 0.80 ± 0.1 to 45.1 ± 1.7 μM in comparison with the standard acarbose having IC50 value 38.45 ± 0.80 μM.
Thirteen compounds 1-6 and 8-14 showed potential inhibitory activity as compared to the standard acarbose having IC50 value 38.45 ± 0.80 μM, however, only one compound 7 (IC50 = 45.1 ± 1.7 μM) was found to be less active. Compound 14 (IC50 = 0.80 ± 0.1 μM) showed promising inhibitory activity among all synthetic derivatives. Molecular docking studies were also conducted for the active compounds to understand the ligand-enzyme binding interactions.