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构象灵活性对二价双特异性抗体在多孔阳离子交换树脂上吸附动力学的影响。

Role of configurational flexibility on the adsorption kinetics of bivalent bispecific antibodies on porous cation exchange resins.

机构信息

Department of Chemical Engineering, University of Virginia, Charlottesville, VA, USA.

Purification Process Sciences, BioPharmaceuticals Development, AstraZeneca, Gaithersburg, MD, USA.

出版信息

J Chromatogr A. 2021 Oct 11;1655:462479. doi: 10.1016/j.chroma.2021.462479. Epub 2021 Aug 20.

Abstract

The adsorption kinetics of a monoclonal antibody (mAb) used as a reference and of bivalent bispecific antibodies (BiSAb) on a macroporous cation exchanger is studied experimentally by examining the transient patterns of bound protein within the particles using confocal microscopy for a range of protein concentrations, buffer concentrations and pH, and temperatures. The mAb adsorption kinetics is controlled by pore diffusion and conforms to the classical shrinking core model. While the mAb adsorption rate increases with temperature, the ratio of effective and free solution diffusivity, D /D, remains constant and has a value of 0.20. The BiSAb's structure is comprised of scFv domains that are genetically fused to a framework IgG through flexible peptide linkers which results in conformational flexibility leading to multiple binding forms with varying affinity for the adsorbent surface. As a result, adsorption of the BiSAbs shows complex patterns of total bound protein within the particles. These BiSAb adsorption patterns are influenced by buffer ionic strength, pH, and temperature in unique ways. Sharper intraparticle profiles are observed for conditions where the binding strength is greater (lower buffer concentration and/or pH) or when the protein is chemically crosslinked to restrict configurational flexibility. Temperature affects the BiSAb pore diffusivity as well as the interconversion kinetics. While the effects of temperature on BiSAb transport are also described by a constant D /D = 0.15, the temperature also affects the rate of interconversion between binding forms leading to faster equilibration at higher temperatures. A phenomenological model indicates that the interplay of pore diffusion and adsorption with the kinetically limited interconversion between binding forms is responsible for the experimental trends.

摘要

实验研究了单克隆抗体(mAb)和二价双特异性抗体(BiSAb)在大孔阳离子交换剂上的吸附动力学,通过共聚焦显微镜检查了在一系列蛋白质浓度、缓冲液浓度和 pH 值及温度条件下颗粒内结合蛋白的瞬态模式。mAb 的吸附动力学受孔扩散控制,符合经典收缩核模型。尽管 mAb 的吸附速率随温度升高而增加,但有效和自由溶液扩散系数的比值 D /D 保持不变,为 0.20。BiSAb 的结构由 scFv 结构域组成,通过柔性肽接头与框架 IgG 基因融合,导致构象灵活性,从而产生具有不同吸附剂表面亲和力的多种结合形式。因此,BiSAb 的吸附表现出颗粒内总结合蛋白的复杂模式。这些 BiSAb 吸附模式受到缓冲离子强度、pH 值和温度的独特影响。在结合强度更大(较低的缓冲液浓度和/或 pH 值)或蛋白质通过化学交联来限制构象灵活性的情况下,观察到更尖锐的颗粒内轮廓。温度影响 BiSAb 的孔扩散以及互变异构动力学。尽管温度对 BiSAb 传输的影响也可以用恒定的 D /D = 0.15 来描述,但温度也会影响结合形式之间的互变异构速率,从而导致在较高温度下更快达到平衡。一种唯象模型表明,孔扩散和吸附与结合形式之间动力学限制的互变异构之间的相互作用是导致实验趋势的原因。

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