Deciphering Saquinavir–Bovine Serum Albumin Interactions: Spectroscopic and Computational Insights

IF 2.3 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Molecular Recognition Pub Date : 2025-01-02 DOI:10.1002/jmr.3112
Vijayakumar Rajendran, Saravanan Kandasamy, Seshan Gunalan, Sekar Kanagaraj, Gugan Kothandan
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Abstract

Bovine serum albumin (BSA) plays a crucial role as a carrier protein in plasma, binding various ligands, including drugs. Understanding the interaction between BSA and saquinavir, an antiretroviral drug, is essential for predicting its pharmacokinetics and pharmacodynamics. We employed spectroscopic approaches, including circular dichroism spectrometry and fluorescence spectroscopy, to investigate the binding of saquinavir to BSA. CD studies revealed conformational changes upon saquinavir mesylate binding, and the complex was stable up to 45°C during thermal denaturation. Saquinavir quenched the intrinsic fluorescence of BSA, indicating static quenching due to complex formation. Additionally, molecular docking simulations were performed to elucidate the favored binding site and interactions. The molecular docking results revealed that Subdomains IIA and IIB, which are proximal to Sudlow Site I, are the principal binding sites for the antiviral drug saquinavir. The ligand-bound pose of BSA also revealed that residue Trp213, which is adjacent to saquinavir, further validated the results of the fluorescence quenching assay, suggesting that residue Trp213 is quenched upon binding with saquinavir. MD simulations allowed us to explore the dynamic behavior of the BSA–saquinavir complex over time. We observed conformational fluctuations, solvent exposure, flexibility of binding pockets, free energy landscape, and binding energy. This study enhances our understanding of drug–protein interactions and contributes to drug development and optimization.

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解码沙奎那韦-牛血清白蛋白相互作用:光谱和计算见解。
牛血清白蛋白(BSA)作为血浆中的载体蛋白,与包括药物在内的各种配体结合,发挥着至关重要的作用。了解 BSA 与抗逆转录病毒药物沙奎那韦之间的相互作用对于预测其药代动力学和药效学至关重要。我们采用了包括圆二色性光谱法和荧光光谱法在内的光谱方法来研究沙奎那韦与 BSA 的结合。CD 研究显示了甲磺酸沙奎那韦结合后的构象变化,在热变性过程中,复合物在高达 45°C 的温度下保持稳定。沙奎那韦能淬灭 BSA 的固有荧光,这表明复合物的形成导致了静态淬灭。此外,还进行了分子对接模拟,以阐明偏好的结合位点和相互作用。分子对接结果显示,靠近 Sudlow 位点 I 的子域 IIA 和 IIB 是抗病毒药物沙奎那韦的主要结合位点。BSA 的配体结合姿态也显示,与沙奎那韦相邻的残基 Trp213 进一步验证了荧光淬灭试验的结果,表明残基 Trp213 与沙奎那韦结合后会被淬灭。通过 MD 模拟,我们探索了 BSA-沙奎那韦复合物随时间变化的动态行为。我们观察到了构象波动、溶剂暴露、结合口袋的灵活性、自由能景观和结合能。这项研究加深了我们对药物与蛋白质相互作用的理解,有助于药物开发和优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Molecular Recognition
Journal of Molecular Recognition 生物-生化与分子生物学
CiteScore
4.60
自引率
3.70%
发文量
68
审稿时长
2.7 months
期刊介绍: Journal of Molecular Recognition (JMR) publishes original research papers and reviews describing substantial advances in our understanding of molecular recognition phenomena in life sciences, covering all aspects from biochemistry, molecular biology, medicine, and biophysics. The research may employ experimental, theoretical and/or computational approaches. The focus of the journal is on recognition phenomena involving biomolecules and their biological / biochemical partners rather than on the recognition of metal ions or inorganic compounds. Molecular recognition involves non-covalent specific interactions between two or more biological molecules, molecular aggregates, cellular modules or organelles, as exemplified by receptor-ligand, antigen-antibody, nucleic acid-protein, sugar-lectin, to mention just a few of the possible interactions. The journal invites manuscripts that aim to achieve a complete description of molecular recognition mechanisms between well-characterized biomolecules in terms of structure, dynamics and biological activity. Such studies may help the future development of new drugs and vaccines, although the experimental testing of new drugs and vaccines falls outside the scope of the journal. Manuscripts that describe the application of standard approaches and techniques to design or model new molecular entities or to describe interactions between biomolecules, but do not provide new insights into molecular recognition processes will not be considered. Similarly, manuscripts involving biomolecules uncharacterized at the sequence level (e.g. calf thymus DNA) will not be considered.
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