Prieto-Rodríguez Juliet A, Lévuok-Mena Kevin P, Cardozo-Muñoz Juan C, Parra-Amin Jorge E, Lopez-Vallejo Fabián, Cuca-Suárez Luis E, Patiño-Ladino Oscar J
Departamento de Química, Facultad de Ciencias, Pontificia Universidad Javeriana, Bogotá 110231, Colombia.
Departamento de Química, Facultad de Ciencias, Universidad Nacional de Colombia, Sede Bogotá, Bogotá 111321, Colombia.
Plants (Basel). 2022 Aug 24;11(17):2188. doi: 10.3390/plants11172188.
Digestive enzymes are currently considered important therapeutic targets for the treatment of obesity and some associated metabolic diseases, such as type 2 diabetes. is a species characterized by the presence of bioactive constituents, particularly prenylated benzoic acid derivatives. In this study, the inhibitory potential of chemical constituents from and some synthesized compounds was determined on digestive enzymes (pancreatic lipase (PL) and α-glucosidase (AG)). The methodology included isolating and identifying secondary metabolites from , synthesizing some analogs, and a molecular docking study. The chemical study allowed the isolation of four prenylated benzoic acid derivatives (-). Four analogs (-) were synthesized. Seven compounds were found to significantly inhibit the catalytic activity of PL with IC values between 28.32 and 55.8 µM. On the other hand, only two compounds ( and ) were active as inhibitors of AG with IC values lower than 155 µM, standing out as the potential multitarget of these chromane compounds. Enzyme kinetics and molecular docking studies showed that the bioactive compounds mainly interact with amino acids other than those of the catalytic site in both PL and AG. This work constitutes the first report on the antidiabetic and antiobesity potential of substances derived from .
消化酶目前被认为是治疗肥胖症和一些相关代谢疾病(如2型糖尿病)的重要治疗靶点。[具体物种名称]是一种以存在生物活性成分,特别是异戊烯基化苯甲酸衍生物为特征的物种。在本研究中,测定了[具体物种名称]的化学成分和一些合成化合物对消化酶(胰脂肪酶(PL)和α-葡萄糖苷酶(AG))的抑制潜力。该方法包括从[具体物种名称]中分离和鉴定次生代谢物、合成一些类似物以及进行分子对接研究。化学研究使得能够分离出四种异戊烯基化苯甲酸衍生物(-[具体衍生物名称])。合成了四种类似物(-[具体类似物名称])。发现七种化合物能显著抑制PL的催化活性,其IC值在28.32至55.8µM之间。另一方面,只有两种化合物([具体化合物名称1]和[具体化合物名称2])作为AG的抑制剂具有活性,IC值低于155µM,是这些色满化合物潜在的多靶点。酶动力学和分子对接研究表明,生物活性化合物主要与PL和AG中催化位点以外的氨基酸相互作用。这项工作构成了关于[具体物种名称]衍生物质的抗糖尿病和抗肥胖潜力的首次报道。