Department of Chemistry, Cotton University, Guwahati, Assam, 781001, India.
Department of Chemistry, Cotton University, Guwahati, Assam, 781001, India.
J Mol Graph Model. 2022 Mar;111:108077. doi: 10.1016/j.jmgm.2021.108077. Epub 2021 Nov 11.
This article reports the interaction between a synthetic statin, fluvastatin with bovine milk protein, β-lactoglobulin (BLG) through docking, constant pH molecular dynamics simulation (cpHMD) and binding free energy calculations. Docking provides the best fitted binding mode of the ligand with the receptor. We have carried out MD simulations of the protein and protein-ligand complex at two different pH viz. 7.0 and 1.5. We have found that the protein shows more compact behavior at pH 1.5 and this behavior is more prominent on complexation with the ligand. In support of this we have utilized the properties viz. root mean square deviations, root mean square fluctuations, radius of gyration, protein-ligand hydrogen bond and binding free energy calculations. Calculation of radius of gyration shows that the value decreases from 14.51 Å to 14.03 Å on complexation at pH 1.5. Calculations of hydrogen bonds at pH 1.5 confirms that hydrogen bonding interactions of the binding residues of the protein with the ligand provides stability to the complex. We have used molecular mechanics-generalized Born surface area (MMGBSA) method to estimate binding free energies of the protein with the ligand. MMGBSA calculations suggest that there is favorable binding interactions between the protein and the ligand with major contributions from Van der Waals interactions. We have found that the net average binding free energy is -29.394 kcal/mol that reveals a favorable binding interactions of BLG with the ligand. This study suggests that in spite of the acidic environment in the stomach BLG can act as a carrier for the acid-sensitive drug molecules such as fluvastatin because of its highly stable conformational behavior in the acidic pH.
本文通过对接、恒 pH 分子动力学模拟 (cpHMD) 和结合自由能计算,报道了合成他汀类药物氟伐他汀与牛乳蛋白 β-乳球蛋白 (BLG) 之间的相互作用。对接提供了配体与受体最佳拟合的结合模式。我们在两种不同 pH 值(分别为 7.0 和 1.5)下对蛋白质和蛋白质-配体复合物进行了 MD 模拟。我们发现,在 pH 1.5 下,蛋白质表现出更紧凑的行为,这种行为在与配体结合时更为明显。我们利用均方根偏差、均方根波动、回转半径、蛋白质-配体氢键和结合自由能计算等性质来支持这一观点。计算回转半径表明,在 pH 1.5 下复合物形成时,值从 14.51 Å 减小到 14.03 Å。在 pH 1.5 下氢键计算证实,蛋白质与配体结合残基的氢键相互作用为复合物提供了稳定性。我们使用分子力学-广义 Born 表面积(MMGBSA)方法来估计蛋白质与配体的结合自由能。MMGBSA 计算表明,蛋白质与配体之间存在有利的结合相互作用,主要来自范德华相互作用。我们发现,净平均结合自由能为-29.394 kcal/mol,这表明 BLG 与配体之间存在有利的结合相互作用。这项研究表明,尽管胃中的环境呈酸性,但 BLG 可以作为酸敏感药物分子(如氟伐他汀)的载体,因为它在酸性 pH 下具有高度稳定的构象行为。