首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Molecular mechanism of hydrophobic charge-induction chromatography: Interactions between the immobilized _4-mercaptoethyl-pyridine ligand and IgG
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Molecular mechanism of hydrophobic charge-induction chromatography: Interactions between the immobilized _4-mercaptoethyl-pyridine ligand and IgG

机译:疏水电荷诱导色谱的分子机理:固定化的4-巯基乙基吡啶配体与IgG的相互作用

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摘要

Hydrophobic charge-induction chromatography (HCIC) is a novel bioseparation technology, especially for antibody purification. In order to better understand the molecular mechanism of HCIC, the typical ligand of 4-mercaptoethyl-pyridine (MEP) was coupled onto the cellulose matrix, and the binding and departing of IgG were studied with the molecular dynamics simulation. Based on the previous work with free MEP ligand (J. Phys. Chem. B, 116 (4) (2012) 1393-1400), the pocket around TYR319 and LEU309 on the C _(H2) domain of IgG was selected as the potential binding site for the Fc fragment of IgG (Fc-A), and the complex of matrix-ligand-Fc-A was formed for the molecular simulation. Both single ligand and ligand net were investigated in the present work. It was found that the MEP ligand immobilized on the cellulose matrix could capture the Fc-A at neutral pH during the simulation, and the Fc-A would depart quickly when pH was changed to 4.0. The hydrophobic interactions and hydrogen bonds controlled the binding of Fc-A on the immobilized ligands at neutral pH and the electrostatic repulsion caused the departing of Fc-A at acid condition. For the ligand net, multipoint binding was found, while one ligand dominated the binding of Fc-A and other ligands might enhance the adsorption of protein. In addition, the adsorption isotherm and the isothermal titration calorimetry (ITC) were used to evaluate the molecular interactions. The experimental results indicated that the hydrophobic interaction is the major driving force for the adsorption of IgG on the MEP resin, which was in good agreement with those findings of molecular simulation. The molecular simulation and thermodynamic results verified strongly the molecular mechanism of HCIC - the hydrophobic interactions for binding and the charge-induction repulsion for elution. Better understanding on the molecular interactions would be beneficial to design new HCIC ligands for improving the efficiency of antibody separation.
机译:疏水电荷诱导色谱法(HCIC)是一种新颖的生物分离技术,特别是用于抗体纯化。为了更好地了解HCIC的分子机理,将4-巯基乙基吡啶(MEP)的典型配体偶联到纤维素基质上,并通过分子动力学模拟研究了IgG的结合和离去。基于先前对游离MEP配体的研究(J.Phys.Chem.B,116(4)(2012)1393-1400),选择IgG C_(H2)域上TYR319和LEU309周围的口袋作为IgG(Fc-A)Fc片段的潜在结合位点,形成基质-配体-Fc-A的复合物用于分子模拟。在本工作中研究了单个配体和配体网。发现在模拟过程中,固定在纤维素基质上的MEP配体可以在中性pH值下捕获Fc-A,并且当pH值更改为4.0时,Fc-A会迅速脱离。疏水相互作用和氢键在中性pH下控制Fc-A在固定配体上的结合,静电排斥导致Fc-A在酸性条件下脱离。对于配体网络,发现了多点结合,而一个配体主导了Fc-A的结合,其他配体可能增强了蛋白质的吸附。此外,吸附等温线和等温滴定热法(ITC)用于评估分子相互作用。实验结果表明,疏水相互作用是IgG在MEP树脂上吸附的主要驱动力,与分子模拟的结果相吻合。分子模拟和热力学结果强烈验证了HCIC的分子机理-疏水相互作用的结合和电荷诱导排斥的洗脱。对分子相互作用的更好理解将有助于设计新的HCIC配体,以提高抗体分离的效率。

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