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解析伊布替尼与人血清白蛋白的结合特征:实验与理论模拟相结合。

Comprehending binding features between ibrutinib and Human Alpha-1 acid glycoprotein: Combined experimental approaches and theoretical simulations.

机构信息

College of Pharmaceutic Science, Zhejiang University of Technology, Hangzhou 310032, China.

College of Pharmaceutic Science, Zhejiang University of Technology, Hangzhou 310032, China.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2023 Jan 15;285:121834. doi: 10.1016/j.saa.2022.121834. Epub 2022 Sep 6.

DOI:10.1016/j.saa.2022.121834
PMID:36116409
Abstract

Human alpha-1 acidic glycoprotein (HAG) is one of the proteins widely present in the blood, and the level of HAG in patients with cancer and inflammation is significantly increased. As one of transport proteins in the blood, the ability of HAG to bind with a drug, especially alkaline drugs, affects significantly the drug content at the target site, which in turn affects the efficacy of the drug. In this study, the interaction mechanism between HAG and the first generation Bruton's tyrosine kinase (BTK) inhibitor namely ibrutinib was explored by a combination of multi-spectroscopic techniques and theoretical calculations. The findings revealed that the quenching and binding constants of the HAG-ibrutinib system both reduced as the temperature rose, demonstrating that ibrutinib quenched the intrinsic fluorescence of HAG in a static manner. It was confirmed that HAG and ibrutinib formed a 1:1 complex with moderate affinity due to the binding constant of around 10 M and accompanied by Förster resonance energy transfer. It was verified by thermodynamic parameter analysis and competition assays as well as molecular simulation that the existence of hydrogen bonds, van der Waals forces, and hydrophobic forces in the complexation of HAG and ibrutinib.The findings from theoretical calculations including molecular docking and theoretical calculation simulation confirmed that ibrutinib bound to the barrel hydrophobic pocket of HAG with a binding energy of -41.9 kJ∙mol, and the the binding constant of around 10 M and the contribution of each residue in the complexation of ibrutinib and HAG. Additionally, it can be confirmed that metal ions affected the binding interaction of ibrutinib with HAG, among them, some promoted binding while others inhibited it.

摘要

人α-1 酸性糖蛋白(HAG)是血液中广泛存在的蛋白质之一,癌症和炎症患者的 HAG 水平显著升高。作为血液中的一种转运蛋白,HAG 与药物,尤其是碱性药物的结合能力,显著影响药物在靶位的含量,进而影响药物的疗效。本研究采用多种光谱技术和理论计算相结合的方法,探讨了 HAG 与第一代布鲁顿酪氨酸激酶(BTK)抑制剂伊布替尼的相互作用机制。结果表明,随着温度的升高,HAG-伊布替尼体系的猝灭和结合常数均降低,表明伊布替尼以静态方式猝灭 HAG 的内源性荧光。由于结合常数约为 10 M,伴随着Förster 共振能量转移,证实 HAG 和伊布替尼形成了中等亲和力的 1:1 复合物。通过热力学参数分析、竞争实验和分子模拟证实了复合物中氢键、范德华力和疏水作用力的存在。包括分子对接和理论计算模拟在内的理论计算结果证实,伊布替尼与 HAG 的桶状疏水口袋结合,结合能为-41.9 kJ·mol -1,结合常数约为 10 M,以及复合物中每个残基的贡献。此外,可以证实金属离子影响伊布替尼与 HAG 的结合相互作用,其中一些促进结合,而另一些则抑制结合。

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