Wang Rong-Zhu, Lin Dong-Qiang, Tong Hong-Fei, Yao Shan-Jing
Key Laboratory of Biomass Chemical Engineering of Ministry of Education, Department of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China.
J Mol Recognit. 2014 May;27(5):250-9. doi: 10.1002/jmr.2356.
Affinity chromatography with synthetic ligands has been focused as the potential alternative to protein A-based chromatography for antibody capture because of its comparable selectivity and efficiency. Better understanding on the molecular interactions between synthetic ligand and antibody is crucial for improving and designing novel ligands. In this work, the molecular interaction mechanism between Fc fragment of IgG and a synthetic ligand (DAAG) was studied with molecular docking and dynamics simulation. The docking results on the consensus binding site (CBS) indicated that DAAG could bind to the CBS with the favorable orientation like a tripod for the top-ranked binding complexes. The ligand-Fc fragment complexes were then tested by molecular dynamics simulation at neutral condition (pH 7.0) for 10 ns. The results indicated that the binding of DAAG on the CBS of Fc fragment was achieved by the multimodal interactions, combining the hydrophobic interaction, electrostatic interaction, hydrogen bond, and so on. It was also found that multiple secondary interactions endowed DAAG with an excellent selectivity to Fc fragment. In addition, molecular dynamics simulation conducted at acidic condition (pH 3.0) showed that the departure of DAAG ligand from the surface of Fc fragment was the result of reduced interaction energies. The binding modes between DAAG and CBS not only shed light on the molecular mechanisms of DAAG for antibody purification but also provide useful information for the improvement of ligand design.
由于其具有可比的选择性和效率,使用合成配体的亲和色谱法已成为基于蛋白A的色谱法用于抗体捕获的潜在替代方法。更好地理解合成配体与抗体之间的分子相互作用对于改进和设计新型配体至关重要。在这项工作中,利用分子对接和动力学模拟研究了IgG的Fc片段与合成配体(DAAG)之间的分子相互作用机制。在共有结合位点(CBS)上的对接结果表明,对于排名靠前的结合复合物,DAAG可以像三脚架一样以有利的方向与CBS结合。然后在中性条件(pH 7.0)下通过分子动力学模拟对配体-Fc片段复合物进行了10 ns的测试。结果表明,DAAG在Fc片段的CBS上的结合是通过多模式相互作用实现的,包括疏水相互作用、静电相互作用、氢键等。还发现多种二级相互作用赋予了DAAG对Fc片段优异的选择性。此外,在酸性条件(pH 3.0)下进行的分子动力学模拟表明,DAAG配体从Fc片段表面的脱离是相互作用能降低的结果。DAAG与CBS之间的结合模式不仅揭示了DAAG用于抗体纯化的分子机制,也为改进配体设计提供了有用信息。