Djeujo Francine Medjiofack, Ragazzi Eugenio, Urettini Miriana, Sauro Beatrice, Cichero Elena, Tonelli Michele, Froldi Guglielmina
Department of Pharmaceutical and Pharmacological Sciences, University of Padova, 35122 Padova, Italy.
Department of Pharmacy, University of Genova, 16128 Genova, Italy.
Pharmaceuticals (Basel). 2022 Feb 8;15(2):205. doi: 10.3390/ph15020205.
Magnolol and luteolin are two natural compounds recognized in several medicinal plants widely used in traditional medicine, including type 2 diabetes mellitus. This research aimed to determine the inhibitory activity of magnolol and luteolin on α-glucosidase activity. Their biological profile was studied by multispectroscopic methods along with inhibitory kinetic analysis and computational experiments. Magnolol and luteolin decreased the enzymatic activity in a concentration-dependent manner. With 0.075 µM α-glucosidase, the IC values were similar for both compounds (~ 32 µM) and significantly lower than for acarbose (815 μM). Magnolol showed a mixed-type antagonism, while luteolin showed a non-competitive inhibition mechanism. Thermodynamic parameters suggested that the binding of magnolol was predominantly sustained by hydrophobic interactions, while luteolin mainly exploited van der Waals contacts and hydrogen bonds. Synchronous fluorescence revealed that magnolol interacted with the target, influencing the microenvironment around tyrosine residues, and circular dichroism explained a rearrangement of the secondary structure of α-glucosidase from the initial α-helix to the final conformation enriched with β-sheet and random coil. Docking studies provided support for the experimental results. Altogether, the data propose magnolol, for the first time, as a potential α-glucosidase inhibitor and add further evidence to the inhibitory role of luteolin.
厚朴酚与木犀草素是两种天然化合物,在包括2型糖尿病在内的多种传统医学中广泛使用的药用植物中均有发现。本研究旨在测定厚朴酚与木犀草素对α-葡萄糖苷酶活性的抑制作用。通过多光谱方法、抑制动力学分析及计算实验对它们的生物学特性进行了研究。厚朴酚与木犀草素均以浓度依赖性方式降低酶活性。对于0.075 μM的α-葡萄糖苷酶,两种化合物的IC值相似(约32 μM),且显著低于阿卡波糖(815 μM)。厚朴酚表现出混合型拮抗作用,而木犀草素表现出非竞争性抑制机制。热力学参数表明,厚朴酚的结合主要由疏水相互作用维持,而木犀草素主要利用范德华力和氢键。同步荧光显示厚朴酚与靶点相互作用,影响酪氨酸残基周围的微环境,圆二色性表明α-葡萄糖苷酶的二级结构从最初的α-螺旋重排为富含β-折叠和无规卷曲的最终构象。对接研究为实验结果提供了支持。总之,这些数据首次提出厚朴酚是一种潜在的α-葡萄糖苷酶抑制剂,并为木犀草素的抑制作用增添了进一步的证据。