Glysobuzole
Glysobuzole is an oral antidiabetic drug, it is taken once daily by oral administration and it is water soluble to become pharmaceutically active within the gastrointestinal tract. It is a sulfonamide derivative that is similar to sulfonylureas. Glysobuzole has antihyperglycemic activity, so it is able to lower blood glucose levels by increasing the release of insulin from the pancreatic beta cells. Glysobuzole functions as a modulator in metabolic processes involving insulin and therefore it is used to treat diabetes.
Structure and reactivity
The molecular formula of glysobuzole is C13H17N3O3S2. It is synonymously found under the name isobuzole. Its systematic name is 4-methoxy-N-benzenesulfonamide. Its achiral structure includes a benzene ring connected to a thiadiazole via a sulfonamide. The thiadiazole is bound to an iso-butyl group. The molecular weight is 327.427 Dalton.Synthesis
The general pathway of synthesizing sulfonamides is through a substitution reaction involving an amine and a sulfonyl chloride. Alternatively, this can be done with sulfonate esters and ammonia. However, no literature can be found on such an alternative pathway for the synthesis of glysobuzole. The synthesis of glysobuzole involves three reagents: p-anisylsulfonyl chloride, thiosemicarbazide and isovaleric acid.Thiosemicarbazide will form the five-membered ring in the structure. Before the cyclization of thiosemicarbazide, it will first undergo acylation to form a monothiodiacylhydrazine. This happens under the influence of a carboxylic acid such as isovaleric acid. The acid will donate an acyl group to the thiosemicarbazide. The intermediate compound cyclizes under the influence of an acid catalyst.
A compound very similar to glysobuzole is glybuzole. The two compounds both contain a hypoglycemic part, which are structurally identical. The synthesis pathway of glysobuzole is very similar to the synthesis pathway of glybuzole. For both compounds, the reaction is a bimolecular substitution reaction. When synthesizing glybuzole, pyridine is added as an oxidation step at the end of the reaction. The intermediate compound will have a positive charge. Pyridine takes up the oxygen to remove the positive charge present on the nitrogen atom.