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多光谱法研究橙皮苷与牛血清白蛋白的相互作用及分子对接分析。

Multispectroscopic exploration and molecular docking analysis on interaction of eriocitrin with bovine serum albumin.

机构信息

Department of Biological Sciences, School of Life Science, Liaoning University, Shenyang, China.

出版信息

J Mol Recognit. 2019 Jul;32(7):e2779. doi: 10.1002/jmr.2779. Epub 2019 Jan 31.

Abstract

Eriocitrin is a flavanone glycoside, which exists in lemon or lime citrus fruits. It possesses antioxidant, anticancer, and anti-allergy activities. In order to investigate the pharmacokinetics and pharmacological mechanisms of eriocitrin in vivo, the interaction between eriocitrin and bovine serum albumin (BSA) was studied under the simulated physiological conditions by multispectroscopic and molecular docking methods. The results well indicated that eriocitrin and BSA formed a new eriocitrin-BSA complex because of intermolecular interactions, which was demonstrated by the results of ultraviolet-visible (UV-vis) absorption spectra. The intrinsic fluorescence of BSA was quenched by eriocitrin, and static quenching was the quenching mechanism. The number of binding sites (n) and binding constant (K ) at 310 K were 1.22 and 2.84 × 10  L mol , respectively. The values of thermodynamic parameters revealed that the binding process was spontaneous, and the main forces were the hydrophobic interaction. The binding distance between eriocitrin and BSA was 3.43 nm. In addition, eriocitrin changed the conformation of BSA, which was proved by synchronous fluorescence and circular dichroism (CD) spectra. The results of site marker competitive experiments suggested that eriocitrin was more likely to be inserted into the subdomain IIA (site I), which was further certified by molecular docking studies.

摘要

橙皮苷是一种类黄酮糖苷,存在于柠檬或酸橙等柑橘类水果中。它具有抗氧化、抗癌和抗过敏活性。为了研究橙皮苷在体内的药代动力学和药理机制,采用多光谱和分子对接方法,在模拟生理条件下研究了橙皮苷与牛血清白蛋白(BSA)之间的相互作用。结果表明,橙皮苷与 BSA 之间由于分子间相互作用形成了新的橙皮苷-BSA 复合物,这是由紫外可见(UV-vis)吸收光谱的结果证明的。橙皮苷猝灭了 BSA 的内源荧光,猝灭机制为静态猝灭。在 310 K 时,结合位点数(n)和结合常数(K)分别为 1.22 和 2.84×10 L mol。热力学参数值表明,结合过程是自发的,主要作用力是疏水相互作用。橙皮苷与 BSA 之间的结合距离为 3.43nm。此外,橙皮苷改变了 BSA 的构象,这一点通过同步荧光和圆二色性(CD)光谱得到了证明。位点标记竞争实验的结果表明,橙皮苷更有可能插入到亚结构域 IIA(位点 I),这进一步通过分子对接研究得到了证实。

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