1. Academic Validation
  2. Multitarget Action of Xanthones from Garcinia mangostana against α-Amylase, α-Glucosidase and Pancreatic Lipase

Multitarget Action of Xanthones from Garcinia mangostana against α-Amylase, α-Glucosidase and Pancreatic Lipase

  • Molecules. 2022 May 20;27(10):3283. doi: 10.3390/molecules27103283.
Juan Cardozo-Muñoz 1 Luis E Cuca-Suárez 1 Juliet A Prieto-Rodríguez 2 Fabian Lopez-Vallejo 1 Oscar J Patiño-Ladino 1
Affiliations

Affiliations

  • 1 Departamento de Química, Facultad de Ciencias, Universidad Nacional de Colombia, Sede Bogotá, Bogotá 111321, Colombia.
  • 2 Departamento de Química, Facultad de Ciencias, Pontificia Universidad Javeriana, Bogotá 110231, Colombia.
Abstract

Digestive Enzymes such α-amylase (AA), α-glucosidase (AG) and pancreatic Lipase (PL), play an important role in the metabolism of carbohydrates and lipids, being attractive therapeutic targets for the treatment of type 2 diabetes and obesity. Garcinia mangostana is an interesting species because there have been identified Xanthones with the potential to inhibit these Enzymes. In this study, the multitarget inhibitory potential of Xanthones from G. mangostana against AA, AG and PL was assessed. The methodology included the isolation and identification of bioactive Xanthones, the synthesis of some derivatives and a molecular docking study. The chemical study allowed the isolation of five Xanthones (1-5). Six derivatives (6-11) were synthesized from the major compound, highlighting the proposal of a new solvent-free methodology with microwave irradiation for obtaining aromatic compounds with tetrahydropyran cycle. Compounds with multitarget activity correspond to 2, 4, 5, 6 and 9, highlighting 6 with IC50 values of 33.3 µM on AA, 69.2 µM on AG and 164.4 µM on PL. Enzymatic kinetics and molecular docking studies showed that the bioactive Xanthones are mainly competitive inhibitors on AA, mixed inhibitors on AG and non-competitive inhibitors on PL. The molecular coupling study established that the presence of methoxy, hydroxyl and carbonyl groups are important in the activity and interaction of polyfunctional Xanthones, highlighting their importance depending on the mode of inhibition.

Keywords

Garcinia mangostana; digestive enzymes; obesity; pancreatic lipase; type 2 diabetes; xanthones; α-amylase; α-glucosidase.

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