State Key Laboratory of Chemical Engineering, Department of Chemical and Biological Engineering, Zhejiang University, Hangzhou 310027, China.
J Phys Chem B. 2012 Feb 2;116(4):1393-400. doi: 10.1021/jp206817b. Epub 2012 Jan 20.
Hydrophobic charge-induction chromatography (HCIC) with 4-mercaptoethyl-pyridine (MEP) as the ligand is a novel technology for antibody purification. In the present work, the molecular simulation methods were used to investigate the interactions between MEP ligand and Fc fragment of IgG (Fc-A). Six ligands with different structures of spacer arm were studied with molecular docking and dynamics simulation at neutral and acidic pH. The binding modes and the interaction energies were analyzed. The results indicated that all ligands tested could bind into the selected pocket on the C(H2) domain of Fc-A at neutral pH. The pyridine ring on the top of MEP ligands acts as a major role to provide the hydrophobic association and hydrogen bond for the ligand-IgG binding; meanwhile, the sulfone group on the spacer arm might form the additional hydrogen bond and enhance the binding of ligand onto the surface of IgG. The replacements of thioether sulfur atom on the spacer arm with either nitrogen or oxygen atom seem to have little influence on the binding. The influences of pH on the ligand-IgG interactions were also studied with the molecular dynamics simulation. It was found that MEP ligands would departed from the surface of Fc-A at low pH due to the electrostatic repulsion. The ligands with a sulfone group on the spacer arm would weaken the electrostatic repulsion and need more acidic conditions for the departing of ligand. The molecular simulation results were in agreement with some experimental observations, which would be useful to elucidate the molecular mechanism of HCIC and design a novel ligand to improve the efficiency of antibody separation.
疏水性电荷诱导层析(HCIC)使用 4-巯基乙基吡啶(MEP)作为配体,是一种新型的抗体纯化技术。本工作采用分子模拟方法,在中性和酸性 pH 下,通过分子对接和动力学模拟研究了 MEP 配体与 IgG(Fc-A)的 Fc 片段之间的相互作用。研究了六种具有不同间隔臂结构的配体。分析了结合模式和相互作用能。结果表明,所有测试的配体在中性 pH 下都可以结合到 Fc-A 的 C(H2)结构域上的选定口袋中。MEP 配体顶部的吡啶环主要起作用,提供疏水性缔合和氢键,以利于配体与 IgG 的结合;同时,间隔臂上的砜基可能形成额外的氢键,增强配体与 IgG 表面的结合。间隔臂上硫醚硫原子被氮或氧原子取代似乎对结合影响不大。还通过分子动力学模拟研究了 pH 对配体-IgG 相互作用的影响。发现由于静电排斥,在低 pH 下 MEP 配体将从 Fc-A 表面脱离。间隔臂上带有砜基的配体将减弱静电排斥,需要更酸性的条件才能使配体脱离。分子模拟结果与一些实验观察结果一致,这有助于阐明 HCIC 的分子机制并设计新型配体以提高抗体分离效率。