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Counter-Current Fractionation-Assisted Bioassay-Guided Separation of Active Compound from Blueberry and the Interaction between the Active Compound and α-Glucosidase

机译:来自蓝莓的反电流分馏辅助生物测定的活性化合物的分离及活性化合物和α-葡糖苷酶之间的相互作用

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摘要

An efficient strategy for the selection of active compounds from blueberry based on counter-current fractionation and bioassay-guided separation was established in this study. Blueberry extract showed potential α-glucosidase inhibitory activity. After extraction by different solvents, the active components were enriched in water. The water extract was divided into six fractions via high-speed counter-current chromatography to further track the active components. Results indicated that the α-glucosidase inhibition rate of F4 was remarkable higher than the others. Cyanidin-3-glucoside (C3G) with a purity of 94.16% was successfully separated from F4 through column chromatography, and its structure was identified by ultraviolet spectral, Fourier-transformed infrared spectroscopy, high-performance liquid chromatography-electrospray ionization-tandem mass spectrometry, 1H nuclear magnetic resonance (NMR), and 13C NMR. The interaction mechanism between C3G and α-glucosidase was clearly characterized and described by spectroscopic methods, including fluorescence and circular dichroism (CD) in combination with molecular docking techniques. C3G could spontaneously bind with α-glucosidase to form complexes by hydrogen bonds. The secondary structure of α-glucosidase changed in varying degrees after complexation with C3G. The α-helical and β-turn contents of α-glucosidase decreased, whereas the β-sheet content and the irregular coil structures increased. Molecular docking speculated that C3G could form hydrogen bonds with α-glucosidase by binding to the active sit (Leu 313, Ser 157, Tyr 158, Phe 314, Arg 315, and two Asp 307). These findings may be useful for the development of functional foods to tackle type 2 diabetes.
机译:本研究建立了基于逆流分馏和生物测定引导分离的蓝莓中选择活性化合物的有效策略。蓝莓提取物显示出潜在的α-葡糖苷酶抑制活性。用不同的溶剂萃取后,将活性成分富含水。通过高速逆流色谱法将水提取物分成六个级分,以进一步追踪活性组分。结果表明,F4的α-葡萄糖苷酶抑制率显着高于其他结果。纯度为94.16%的青霉素-3-葡萄糖苷(C3G)通过柱色谱成功分离,其结构通过紫外光谱,傅里叶转化的红外光谱,高性能液相色谱 - 电喷雾离子化 - 串联质谱法鉴定,1H核磁共振(NMR)和13C NMR。 C3G和α-葡糖苷酶之间的相互作用机理清楚地表征和通过光谱方法描述,包括荧光和圆形二色性(CD)与分子对接技术的组合。 C3G可以与α-葡糖苷酶自发地与氢键形成复合物。 α-葡萄糖苷酶的二次结构在与C3G络合后变化的变化程度。 α-葡糖苷酶的α-螺旋和β-转含量降低,而β-薄片含量和不规则线圈结构增加。分子对接推测,C3G可以通过与活性静止的结合(Leu 313,Ser 157,Tyr 158,PHE 314,Arc 315和两个ASP 307)与α-葡糖苷酶形成氢键。这些发现对于开发功能性食品以解决2型糖尿病。

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