食品科学 ›› 2026, Vol. 47 ›› Issue (17): 10-18.doi: 10.7506/spkx1002-6630-20260116-136

• 基础研究 • 上一篇    下一篇

4 种黄酮类化合物对黄嘌呤氧化酶的抑制作用及机制

杨诗魁,欧隽滢,黄才欢,郑洁,刘付,欧仕益   

  1. (暨南大学生命科学技术学院,广东?广州 510632)
  • 出版日期:2026-09-15 发布日期:2026-09-03
  • 基金资助:
    国家自然科学基金面上项目(32372450)

Inhibitory Effects and Underlying Mechanisms of Four Flavonoids against Xanthine Oxidase

YANG Shikui, OU Junying, HUANG Caihuan, ZHENG Jie, LIU Fu, OU Shiyi   

  1. (College of Life Science and Technology, Jinan University, Guangzhou 510632, China)
  • Online:2026-09-15 Published:2026-09-03

摘要: 本研究探讨木犀草素、槲皮素、桑色素和漆黄素4 种黄酮类化合物对黄嘌呤氧化酶(xanthine oxidase,XOD)活性的抑制作用,旨在揭示结构差异对抑制活性的影响机制,为天然产物来源的XOD抑制剂研发提供科学支撑。研究采用酶动力学、圆二色性(circular dichroism,CD)光谱、荧光光谱及分子对接技术进行分析,探究木犀草素、槲皮素、桑色素和漆黄素4 种黄酮类化合物对XOD的抑制作用及机制。结果显示,4 种化合物均显著抑制XOD活性,其中木犀草素(半抑制浓度(half maximal inhibitory concentration,IC50)=1.68 μmol/L)和槲皮素(IC50=1.77 μmol/L)抑制效果最优,显著高于阳性对照别嘌呤醇(IC50=20.29 μmol/L)。抑制动力学结果表明,其抑制类型为混合型抑制,且在酶上均仅存在单一结合位点(n≈1),木犀草素结合亲和力最强(抑制常数为2.21 nmol/L)。CD光谱结果显示,黄酮类化合物破坏了XOD活性位点构象,使α-螺旋相对含量从24.8%增加到34.6%~45.4%。荧光光谱证实,黄酮类化合物通过静态猝灭方式猝灭XOD本征荧光,结合过程为自发放热反应过程(ΔH<0,ΔG<0),主要作用力为氢键和范德华力。分子对接模拟表明,B环二羟基是关键结合位点,与XOD活性口袋残基形成氢键网络;A环5,7-二羟基通过分子内氢键维持骨架平面性,增强结合稳定性,而羟基位置及空间排布差异会影响结合效果。

关键词: 黄嘌呤氧化酶;尿酸;分子对接;抑制机理

Abstract: This study aims to investigate the inhibitory effects of luteolin, quercetin, morin, and fisetin against xanthine oxidase (XOD) and to elucidate the mechanism of the effect of structural differences among the four flavonoids on their XOD inhibitory activity. Enzyme kinetics analysis, circular dichroism (CD) spectroscopy, fluorescence spectroscopy, and molecular docking were used in this study. The results showed that all four compounds significantly inhibited XOD activity. Luteolin and quercetin, with half maximal inhibitory concentration (IC50) of 1.68 and 1.77 μmol/L, respectively, exhibited stronger inhibitory effects than morin, fisetin, and the positive control allopurinol (IC50 = 20.29 μmol/L). Inhibition kinetics revealed a mixed-type inhibition mechanism, and each compound bound to a single site on the enzyme (n ≈ 1). Luteolin showed the highest binding affinity with an inhibition constant (Ki) of 2.21 nmol/L. CD spectroscopy indicated that the flavonoids disrupted the conformation of the active site of XOD, increasing the α-helix content from 24.8% to 34.6%–45.4%. Fluorescence spectroscopy confirmed that the flavonoids statically quenched the intrinsic fluorescence of XOD, with the binding process being spontaneous and exothermic (ΔH < 0, ΔG < 0), primarily driven by hydrogen bonds and van der Waals forces. Molecular docking simulations suggested that the ortho-dihydroxyl group on the B ring is a key binding site, forming a hydrogen bond network with residues in the XOD active pocket; the 5,7-dihydroxyl group on the A ring maintains the planarity of the flavonoid skeleton via intramolecular hydrogen bonding, resulting in enhancing binding stability, while differences in hydroxyl position and spatial arrangement affect the binding affinity.

Key words: xanthine oxidase; uric acid; molecular docking; inhibition mechanism

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