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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Chemical modification of protein A chromatography ligands with polyethylene glycol. I: Effects on IgG adsorption equilibrium, kinetics, and transport
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Chemical modification of protein A chromatography ligands with polyethylene glycol. I: Effects on IgG adsorption equilibrium, kinetics, and transport

机译:聚乙二醇的蛋白质A色谱配体的化学改性。 I:对IgG吸附均衡,动力学和运输的影响

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Chemical modification of Protein A (ProA) chromatography ligands with polyethylene glycol (PEGylation) has been proposed as a strategy to increase the process selectivity and resin robustness by providing the ligand with a steric repulsion barrier against non-specific binding. This article comprises a comprehensive study of lgG adsorption and transport in Repligen CaptivA PriMAB resin with PEGylated ProA ligands that are modified using 5.2 and 21.5 kDa PEG chains. We studied the impact of the molecular weight of the PEG as well as the extent of PEGylation for the 5.2 kDa PEG modification. In all cases, PEGylation of ProA ligands decreases the resin average pore size, particle porosity, and static binding capacity for IgG proportional to the volume of conjugated PEG in the resin. Resin batch uptake experiments conducted in bulk via a stirred-tank system and with individual resin particles under confocal laser scanning microscopy suggests that PEGylation introduces heterogeneity into lgG binding kinetics: a fraction of the IgG binding sites are transformed from typical fast association kinetic behavior to slow kinetic behavior. pH gradient elution experiments of an IgG molecule on the modified resins show an increase in IgG elution pH for all modified resins, implying a decrease in IgG-ProA binding affinity on modification. Despite losses in static binding capacity for all resins with PEGylated ligands, the loss of dynamic binding capacity at 10% breakthrough (DBC10%) ranged more broadly from almost 0-47% depending on the PEG molecular weight and the extent of PEGylation. Minimal losses in DBC10% were observed with a low extent of PEGylation with a smaller molecular weight PEG, while higher losses were observed at higher extents of PEGylation and with higher molecular weight PEG due to decreased static binding capacity and increased mass transfer resistance. This work provides insight into the practical implications for resin performance if PEGylation is considered as
机译:已经提出了用聚乙二醇(PEG化)的蛋白质A(PROA)色谱配体的化学改性作为通过提供与非特异性结合的空间排斥屏障的配体增加工艺选择性和树脂鲁棒性的策略。本文包括用Pegymated ProA配体在副克拉夫普林阿布树脂中进行综合研究,其使用5.2和21.5kDa peg链改性。我们研究了PEG分子量的影响以及5.2kDa PEG改性的PEG化程度。在所有情况下,PROA配体的PEG化降低了与树脂中共轭栓的体积成比例的IgG的树脂平均孔径,颗粒孔隙率和静态结合能力。树脂批量采用通过搅拌罐系统在体积中进行的批量摄取实验,并在共聚焦激光扫描显微镜下用各个树脂颗粒表明,PEG化将异质性引入LGG结合动力学中:IgG结合位点的一部分从典型的快速关联动态转化为慢速动力学行为。改性树脂上的IgG分子的pH梯度洗脱实验显示出所有改性树脂的IgG洗脱pH的增加,这意味着IgG-Proa结合亲和力的改性的降低。尽管对具有聚乙二醇化配体的所有树脂的静态结合能力损失,但是根据PEG分子量和聚乙二醇化的程度,在10%突破(DBC10%)下的动态结合能力损失从近于0-47%的损失范围更广泛。通过具有较小分子量PEG的聚乙二醇化的低程度观察到DBC10%的最小损失,而在PEG化的较高范围内观察到较高的损失,并且由于静态结合能力降低和增加的传质阻力,具有更高的分子量PEG。如果PEG化被认为是如此,则这项工作提供了对树脂性能的实际影响的洞察力

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